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  • Biochemistry and Biotechnology
  • Occupational Health and Environmental Toxicology
  • Rats
  • 2010-2014  (61)
  • 1980-1984
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  • 2011  (61)
  • 1
    Publication Date: 2011-02-19
    Description: Although formation and stabilization of long-lasting associative memories are thought to require time-dependent coordinated hippocampal-cortical interactions, the underlying mechanisms remain unclear. Here, we present evidence that neurons in the rat cortex must undergo a "tagging process" upon encoding to ensure the progressive hippocampal-driven rewiring of cortical networks that support remote memory storage. This process was AMPA- and N-methyl-D-aspartate receptor-dependent, information-specific, and capable of modulating remote memory persistence by affecting the temporal dynamics of hippocampal-cortical interactions. Post-learning reinforcement of the tagging process via time-limited epigenetic modifications resulted in improved remote memory retrieval. Thus, early tagging of cortical networks is a crucial neurobiological process for remote memory formation whose functional properties fit the requirements imposed by the extended time scale of systems-level memory consolidation.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Lesburgueres, Edith -- Gobbo, Oliviero L -- Alaux-Cantin, Stephanie -- Hambucken, Anne -- Trifilieff, Pierre -- Bontempi, Bruno -- New York, N.Y. -- Science. 2011 Feb 18;331(6019):924-8. doi: 10.1126/science.1196164.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Institut des Maladies Neurodegeneratives, CNRS UMR 5293, Universites Bordeaux 1 et 2, Talence, France.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21330548" target="_blank"〉PubMed〈/a〉
    Keywords: Acetylation ; Animals ; Epigenesis, Genetic ; Excitatory Amino Acid Antagonists/pharmacology ; Food Preferences ; Frontal Lobe/*physiology ; Hippocampus/*physiology ; Histones/metabolism ; Learning ; Male ; *Memory, Long-Term ; Neural Pathways ; Neuronal Plasticity ; Neurons/cytology/*physiology ; Odors ; Rats ; Rats, Sprague-Dawley ; Receptors, AMPA/metabolism ; Receptors, N-Methyl-D-Aspartate/metabolism ; Reinforcement (Psychology) ; Signal Transduction ; Synapses/*physiology ; Synaptic Transmission
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    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 2
    Publication Date: 2011-09-10
    Description: Engineered fluorescent protein (FP) chimeras that modulate their fluorescence in response to changes in calcium ion (Ca(2+)) concentration are powerful tools for visualizing intracellular signaling activity. However, despite a decade of availability, the palette of single FP-based Ca(2+) indicators has remained limited to a single green hue. We have expanded this palette by developing blue, improved green, and red intensiometric indicators, as well as an emission ratiometric indicator with an 11,000% ratio change. This series enables improved single-color Ca(2+) imaging in neurons and transgenic Caenorhabditis elegans. In HeLa cells, Ca(2+) was imaged in three subcellular compartments, and, in conjunction with a cyan FP-yellow FP-based indicator, Ca(2+) and adenosine 5'-triphosphate were simultaneously imaged. This palette of indicators paints the way to a colorful new era of Ca(2+) imaging.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3560286/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3560286/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Zhao, Yongxin -- Araki, Satoko -- Wu, Jiahui -- Teramoto, Takayuki -- Chang, Yu-Fen -- Nakano, Masahiro -- Abdelfattah, Ahmed S -- Fujiwara, Manabi -- Ishihara, Takeshi -- Nagai, Takeharu -- Campbell, Robert E -- 94487/Canadian Institutes of Health Research/Canada -- 99085/Canadian Institutes of Health Research/Canada -- Canadian Institutes of Health Research/Canada -- New York, N.Y. -- Science. 2011 Sep 30;333(6051):1888-91. doi: 10.1126/science.1208592. Epub 2011 Sep 8.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Chemistry, University of Alberta, Edmonton, Alberta T6G 2G2, Canada.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21903779" target="_blank"〉PubMed〈/a〉
    Keywords: Adenosine Triphosphate/metabolism ; Animals ; Animals, Genetically Modified ; Caenorhabditis elegans ; Calcium/*analysis ; *Calcium Signaling ; *Directed Molecular Evolution ; Fluorescence ; Fluorescence Resonance Energy Transfer ; Green Fluorescent Proteins/*chemistry/genetics ; HeLa Cells ; Humans ; Luminescent Proteins/*chemistry/genetics ; Molecular Sequence Data ; Neurons/metabolism ; *Protein Engineering ; Rats ; Recombinant Fusion Proteins/*chemistry ; Spectrometry, Fluorescence ; Transfection
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  • 3
    Publication Date: 2011-03-26
    Description: Axon-dendrite polarization is crucial for neural network wiring and information processing in the brain. Polarization begins with the transformation of a single neurite into an axon and its subsequent rapid extension, which requires coordination of cellular energy status to allow for transport of building materials to support axon growth. We found that activation of the energy-sensing adenosine 5'-monophosphate (AMP)-activated protein kinase (AMPK) pathway suppressed axon initiation and neuronal polarization. Phosphorylation of the kinesin light chain of the Kif5 motor protein by AMPK disrupted the association of the motor with phosphatidylinositol 3-kinase (PI3K), preventing PI3K targeting to the axonal tip and inhibiting polarization and axon growth.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3325765/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3325765/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Amato, Stephen -- Liu, Xiuxin -- Zheng, Bin -- Cantley, Lewis -- Rakic, Pasko -- Man, Heng-Ye -- GM41890/GM/NIGMS NIH HHS/ -- GM56203/GM/NIGMS NIH HHS/ -- K99CA133245/CA/NCI NIH HHS/ -- MH07907/MH/NIMH NIH HHS/ -- R00 CA133245/CA/NCI NIH HHS/ -- R01 GM056203/GM/NIGMS NIH HHS/ -- R01 NS014841/NS/NINDS NIH HHS/ -- R01 NS014841-32/NS/NINDS NIH HHS/ -- New York, N.Y. -- Science. 2011 Apr 8;332(6026):247-51. doi: 10.1126/science.1201678. Epub 2011 Mar 24.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Biology, Boston University, 5 Cummington Street, Boston, MA 02215, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21436401" target="_blank"〉PubMed〈/a〉
    Keywords: AMP-Activated Protein Kinases/*metabolism ; Aminoimidazole Carboxamide/analogs & derivatives/pharmacology ; Animals ; Axons/enzymology/*physiology/ultrastructure ; *Cell Polarity/drug effects ; Cells, Cultured ; Hippocampus/cytology/embryology ; Metformin/pharmacology ; Mice ; Microtubule-Associated Proteins/metabolism ; Neurons/cytology/drug effects/enzymology/*physiology ; Phosphatidylinositol 3-Kinase/*metabolism ; Phosphorylation ; Proto-Oncogene Proteins c-akt/metabolism ; Rats ; Recombinant Fusion Proteins/metabolism ; Ribonucleotides/pharmacology ; Signal Transduction ; Tissue Culture Techniques
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    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 4
    Publication Date: 2011-03-19
    Description: Decreased cardiac contractility is a central feature of systolic heart failure. Existing drugs increase cardiac contractility indirectly through signaling cascades but are limited by their mechanism-related adverse effects. To avoid these limitations, we previously developed omecamtiv mecarbil, a small-molecule, direct activator of cardiac myosin. Here, we show that it binds to the myosin catalytic domain and operates by an allosteric mechanism to increase the transition rate of myosin into the strongly actin-bound force-generating state. Paradoxically, it inhibits adenosine 5'-triphosphate turnover in the absence of actin, which suggests that it stabilizes an actin-bound conformation of myosin. In animal models, omecamtiv mecarbil increases cardiac function by increasing the duration of ejection without changing the rates of contraction. Cardiac myosin activation may provide a new therapeutic approach for systolic heart failure.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4090309/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4090309/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Malik, Fady I -- Hartman, James J -- Elias, Kathleen A -- Morgan, Bradley P -- Rodriguez, Hector -- Brejc, Katjusa -- Anderson, Robert L -- Sueoka, Sandra H -- Lee, Kenneth H -- Finer, Jeffrey T -- Sakowicz, Roman -- Baliga, Ramesh -- Cox, David R -- Garard, Marc -- Godinez, Guillermo -- Kawas, Raja -- Kraynack, Erica -- Lenzi, David -- Lu, Pu Ping -- Muci, Alexander -- Niu, Congrong -- Qian, Xiangping -- Pierce, Daniel W -- Pokrovskii, Maria -- Suehiro, Ion -- Sylvester, Sheila -- Tochimoto, Todd -- Valdez, Corey -- Wang, Wenyue -- Katori, Tatsuo -- Kass, David A -- Shen, You-Tang -- Vatner, Stephen F -- Morgans, David J -- 1-R43-HL-66647-1/HL/NHLBI NIH HHS/ -- R01 HL106511/HL/NHLBI NIH HHS/ -- R43 HL066647/HL/NHLBI NIH HHS/ -- New York, N.Y. -- Science. 2011 Mar 18;331(6023):1439-43. doi: 10.1126/science.1200113.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Preclinical Research and Development, Cytokinetics, Inc., South San Francisco, CA 94080, USA. fmalik@cytokinetics.com〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21415352" target="_blank"〉PubMed〈/a〉
    Keywords: Actin Cytoskeleton/metabolism ; Actins/metabolism ; Adenosine Triphosphatases/metabolism ; Adenosine Triphosphate/metabolism ; Adrenergic beta-Agonists/pharmacology ; Allosteric Regulation ; Animals ; Binding Sites ; Calcium/metabolism ; Cardiac Myosins/chemistry/*metabolism ; Cardiac Output/drug effects ; Dogs ; Female ; Heart Failure, Systolic/*drug therapy/physiopathology ; Isoproterenol/pharmacology ; Male ; Myocardial Contraction/*drug effects ; Myocytes, Cardiac/*drug effects/physiology ; Phosphates/metabolism ; Protein Binding ; Protein Conformation ; Protein Isoforms/chemistry/metabolism ; Rats ; Rats, Sprague-Dawley ; Urea/*analogs & derivatives/chemistry/metabolism/pharmacology ; Ventricular Function, Left/drug effects
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  • 5
    Publication Date: 2011-07-09
    Description: When new learning occurs against the background of established prior knowledge, relevant new information can be assimilated into a schema and thereby expand the knowledge base. An animal model of this important component of memory consolidation reveals that systems memory consolidation can be very fast. In experiments with rats, we found that the hippocampal-dependent learning of new paired associates is associated with a striking up-regulation of immediate early genes in the prelimbic region of the medial prefrontal cortex, and that pharmacological interventions targeted at that area can prevent both new learning and the recall of remotely and even recently consolidated information. These findings challenge the concept of distinct fast (hippocampal) and slow (cortical) learning systems, and shed new light on the neural mechanisms of memory assimilation into schemas.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Tse, Dorothy -- Takeuchi, Tomonori -- Kakeyama, Masaki -- Kajii, Yasushi -- Okuno, Hiroyuki -- Tohyama, Chiharu -- Bito, Haruhiko -- Morris, Richard G M -- G0700447/Medical Research Council/United Kingdom -- Medical Research Council/United Kingdom -- New York, N.Y. -- Science. 2011 Aug 12;333(6044):891-5. doi: 10.1126/science.1205274. Epub 2011 Jul 7.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Centre for Cognitive and Neural Systems, University of Edinburgh, Edinburgh EH8 9JZ, UK.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21737703" target="_blank"〉PubMed〈/a〉
    Keywords: 6-Cyano-7-nitroquinoxaline-2,3-dione/pharmacology ; Animals ; Cues ; Cytoskeletal Proteins/genetics ; Early Growth Response Protein 1/genetics ; *Genes, Immediate-Early ; Hippocampus/*physiology ; Learning ; Male ; *Memory ; *Mental Recall ; Neocortex/*physiology ; Nerve Tissue Proteins/genetics ; Prefrontal Cortex/*physiology ; Rats ; Receptors, AMPA/antagonists & inhibitors ; Receptors, N-Methyl-D-Aspartate/antagonists & inhibitors ; Synaptic Transmission/drug effects ; *Transcriptional Activation ; Up-Regulation
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  • 6
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    American Association for the Advancement of Science (AAAS)
    Publication Date: 2011-02-05
    Description: Once initiated near the soma, an action potential (AP) is thought to propagate autoregeneratively and distribute uniformly over axonal arbors. We challenge this classic view by showing that APs are subject to waveform modulation while they travel down axons. Using fluorescent patch-clamp pipettes, we recorded APs from axon branches of hippocampal CA3 pyramidal neurons ex vivo. The waveforms of axonal APs increased in width in response to the local application of glutamate and an adenosine A(1) receptor antagonist to the axon shafts, but not to other unrelated axon branches. Uncaging of calcium in periaxonal astrocytes caused AP broadening through ionotropic glutamate receptor activation. The broadened APs triggered larger calcium elevations in presynaptic boutons and facilitated synaptic transmission to postsynaptic neurons. This local AP modification may enable axonal computation through the geometry of axon wiring.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Sasaki, Takuya -- Matsuki, Norio -- Ikegaya, Yuji -- New York, N.Y. -- Science. 2011 Feb 4;331(6017):599-601. doi: 10.1126/science.1197598.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Laboratory of Chemical Pharmacology, Graduate School of Pharmaceutical Sciences, University of Tokyo, Tokyo 113-0033, Japan.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21292979" target="_blank"〉PubMed〈/a〉
    Keywords: *Action Potentials/drug effects ; Adenosine/metabolism/pharmacology ; Adenosine A1 Receptor Antagonists/pharmacology ; Animals ; Astrocytes/metabolism ; Axons/drug effects/*physiology ; CA3 Region, Hippocampal/*cytology/physiology ; Calcium/metabolism ; Excitatory Postsynaptic Potentials ; Glutamic Acid/pharmacology ; In Vitro Techniques ; Patch-Clamp Techniques ; Potassium Channels/metabolism ; Presynaptic Terminals/physiology ; Pyramidal Cells/*physiology ; Rats ; Rats, Wistar ; Receptor, Adenosine A1/metabolism ; Receptors, AMPA/metabolism ; *Synaptic Transmission ; Xanthines/pharmacology ; gamma-Aminobutyric Acid/pharmacology
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  • 7
    Publication Date: 2011-07-19
    Description: Reward-motivated behavior is strongly influenced by the learned significance of contextual stimuli in the environment. However, the neural pathways that mediate context-reward relations are not well understood. We have identified a circuit from area CA3 of dorsal hippocampus to ventral tegmental area (VTA) that uses lateral septum (LS) as a relay. Theta frequency stimulation of CA3 excited VTA dopamine (DA) neurons and inhibited non-DA neurons. DA neuron excitation was likely mediated by disinhibition because local antagonism of gamma-aminobutyric acid receptors blocked responses to CA3 stimulation. Inactivating components of the CA3-LS-VTA pathway blocked evoked responses in VTA and also reinstatement of cocaine-seeking by contextual stimuli. This transsynaptic link between hippocampus and VTA appears to be an important substrate by which environmental context regulates goal-directed behavior.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3150711/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3150711/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Luo, Alice H -- Tahsili-Fahadan, Pouya -- Wise, Roy A -- Lupica, Carl R -- Aston-Jones, Gary -- F31-MH071093/MH/NIMH NIH HHS/ -- R37 DA006214/DA/NIDA NIH HHS/ -- R37-DA006214/DA/NIDA NIH HHS/ -- UL1 RR029882/RR/NCRR NIH HHS/ -- ZIA DA000471-07/Intramural NIH HHS/ -- New York, N.Y. -- Science. 2011 Jul 15;333(6040):353-7. doi: 10.1126/science.1204622.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Behavioral Neuroscience Section, Behavioral Neuroscience Research Branch, National Institute on Drug Abuse Intramural Research Program, National Institutes of Health, Baltimore, MD 21224, USA. alice_luo@hotmail.com〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21764750" target="_blank"〉PubMed〈/a〉
    Keywords: Action Potentials ; Animals ; Behavior, Animal ; Brain Mapping ; CA3 Region, Hippocampal/*physiology ; Cocaine/administration & dosage ; Dopamine/physiology ; Drug-Seeking Behavior ; Electric Stimulation ; GABA Agonists/pharmacology ; GABA Antagonists/pharmacology ; Hippocampus/physiology ; Male ; Models, Neurological ; Neural Inhibition ; Neural Pathways ; Neurons/*physiology ; Rats ; Rats, Sprague-Dawley ; *Reward ; Self Administration ; Septal Nuclei/*physiology ; Theta Rhythm ; Ventral Tegmental Area/*physiology ; gamma-Aminobutyric Acid/administration & dosage/physiology
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  • 8
    Publication Date: 2011-11-15
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Markram, Henry -- New York, N.Y. -- Science. 2011 Nov 11;334(6057):748-9. doi: 10.1126/science.334.6057.748.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22076354" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; *Brain/physiology ; *Computer Simulation ; Consciousness ; Humans ; *Models, Neurological ; Rats ; Research Support as Topic ; Software
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  • 9
    Publication Date: 2011-07-02
    Description: Central amygdala (CeA) projections to hypothalamic and brain stem nuclei regulate the behavioral and physiological expression of fear, but it is unknown whether these different aspects of the fear response can be separately regulated by the CeA. We combined fluorescent retrograde tracing of CeA projections to nuclei that modulate fear-related freezing or cardiovascular responses with in vitro electrophysiological recordings and with in vivo monitoring of related behavioral and physiological parameters. CeA projections emerged from separate neuronal populations with different electrophysiological characteristics and different response properties to oxytocin. In vivo, oxytocin decreased freezing responses in fear-conditioned rats without affecting the cardiovascular response. Thus, neuropeptidergic signaling can modulate the CeA outputs through separate neuronal circuits and thereby individually steer the various aspects of the fear response.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Viviani, Daniele -- Charlet, Alexandre -- van den Burg, Erwin -- Robinet, Camille -- Hurni, Nicolas -- Abatis, Marios -- Magara, Fulvio -- Stoop, Ron -- New York, N.Y. -- Science. 2011 Jul 1;333(6038):104-7. doi: 10.1126/science.1201043.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Centre for Psychiatric Neuroscience, Department of Psychiatry, Lausanne University Hospital Center, University of Lausanne, CH-1015 Lausanne, Switzerland.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21719680" target="_blank"〉PubMed〈/a〉
    Keywords: Amygdala/*physiology ; Animals ; Bombesin/pharmacology ; Brain Stem/*physiology ; Conditioning (Psychology) ; Fear/*physiology ; Female ; GABA-A Receptor Agonists/pharmacology ; Heart Rate/drug effects ; Hypothalamus/*physiology ; Male ; Muscimol/pharmacology ; Neural Inhibition ; Neural Pathways/physiology ; Neurons/*physiology ; Oxytocin/agonists/analogs & derivatives/pharmacology/*physiology ; Patch-Clamp Techniques ; Periaqueductal Gray/*physiology ; Rats ; Rats, Sprague-Dawley
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  • 10
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    American Association for the Advancement of Science (AAAS)
    Publication Date: 2011-12-14
    Description: Whereas human pro-social behavior is often driven by empathic concern for another, it is unclear whether nonprimate mammals experience a similar motivational state. To test for empathically motivated pro-social behavior in rodents, we placed a free rat in an arena with a cagemate trapped in a restrainer. After several sessions, the free rat learned to intentionally and quickly open the restrainer and free the cagemate. Rats did not open empty or object-containing restrainers. They freed cagemates even when social contact was prevented. When liberating a cagemate was pitted against chocolate contained within a second restrainer, rats opened both restrainers and typically shared the chocolate. Thus, rats behave pro-socially in response to a conspecific's distress, providing strong evidence for biological roots of empathically motivated helping behavior.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3760221/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3760221/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Ben-Ami Bartal, Inbal -- Decety, Jean -- Mason, Peggy -- DA022429/DA/NIDA NIH HHS/ -- DA022978/DA/NIDA NIH HHS/ -- R01 DA022978/DA/NIDA NIH HHS/ -- R21 DA022429/DA/NIDA NIH HHS/ -- New York, N.Y. -- Science. 2011 Dec 9;334(6061):1427-30. doi: 10.1126/science.1210789.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Psychology, University of Chicago, Chicago, IL, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22158823" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; *Behavior, Animal ; Cooperative Behavior ; *Empathy ; Female ; Helping Behavior ; Male ; Motivation ; Rats ; Rats, Sprague-Dawley ; Restraint, Physical ; *Social Behavior ; *Stress, Psychological
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  • 11
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    American Association for the Advancement of Science (AAAS)
    Publication Date: 2011-04-16
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Vogel, Gretchen -- New York, N.Y. -- Science. 2011 Apr 15;332(6027):300-1. doi: 10.1126/science.332.6027.300.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21493838" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Brain/cytology/growth & development/*physiology ; Embryo, Mammalian/physiology ; Embryonic Stem Cells/physiology ; *Genetic Variation ; Genome, Human ; Humans ; *Interspersed Repetitive Sequences ; Long Interspersed Nucleotide Elements/*genetics ; Methyl-CpG-Binding Protein 2/genetics ; Mice ; *Neurogenesis ; Neurons/cytology/*physiology ; Rats ; Stem Cells/cytology/*physiology
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  • 12
    Publication Date: 2011-03-10
    Description: Memories are more easily disrupted than improved. Many agents can impair memories during encoding and consolidation. In contrast, the armamentarium of potential memory enhancers is so far rather modest. Moreover, the effect of the latter appears to be limited to enhancing new memories during encoding and the initial period of cellular consolidation, which can last from a few minutes to hours after learning. Here, we report that overexpression in the rat neocortex of the protein kinase C isozyme protein kinase Mzeta (PKMzeta) enhances long-term memory, whereas a dominant negative PKMzeta disrupts memory, even long after memory has been formed.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Shema, Reut -- Haramati, Sharon -- Ron, Shiri -- Hazvi, Shoshi -- Chen, Alon -- Sacktor, Todd Charlton -- Dudai, Yadin -- MH57068/MH/NIMH NIH HHS/ -- R01 MH53576/MH/NIMH NIH HHS/ -- New York, N.Y. -- Science. 2011 Mar 4;331(6021):1207-10. doi: 10.1126/science.1200215.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neurobiology, Weizmann Institute of Science, Rehovot 76100, Israel.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21385716" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Conditioning (Psychology) ; Gene Expression ; Gene Transfer Techniques ; Genetic Vectors ; Isoenzymes/genetics/metabolism ; Lentivirus/genetics ; Male ; *Memory, Long-Term ; Mutant Proteins/metabolism ; Mutation ; Neocortex/*metabolism ; Neurons/metabolism ; Protein Kinase C/*genetics/*metabolism ; Rats ; Rats, Wistar
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  • 13
    Publication Date: 2011-10-25
    Description: Use-dependent forms of synaptic plasticity have been extensively characterized at chemical synapses, but a relationship between natural activity and strength at electrical synapses remains elusive. The thalamic reticular nucleus (TRN), a brain area rich in gap-junctional (electrical) synapses, regulates cortical attention to the sensory surround and participates in shifts between arousal states; plasticity of electrical synapses may be a key mechanism underlying these processes. We observed long-term depression resulting from coordinated burst firing in pairs of coupled TRN neurons. Changes in gap-junctional communication were asymmetrical, indicating that regulation of connectivity depends on the direction of use. Modification of electrical synapses resulting from activity in coupled neurons is likely to be a widespread and powerful mechanism for dynamic reorganization of electrically coupled neuronal networks.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Haas, Julie S -- Zavala, Baltazar -- Landisman, Carole E -- New York, N.Y. -- Science. 2011 Oct 21;334(6054):389-93. doi: 10.1126/science.1207502.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Children's Hospital, Department of Neurology, Harvard University, 300 Longwood Avenue, Boston, MA 02115, USA. julie.haas@gmail.com〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22021860" target="_blank"〉PubMed〈/a〉
    Keywords: Action Potentials ; Animals ; Electrical Synapses/*physiology ; In Vitro Techniques ; Intralaminar Thalamic Nuclei/cytology/*physiology ; *Long-Term Synaptic Depression ; Membrane Potentials ; Nerve Net/physiology ; Neurons/*physiology ; Patch-Clamp Techniques ; Rats ; Rats, Sprague-Dawley ; Sodium/metabolism ; Tetrodotoxin/pharmacology
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  • 14
    Publication Date: 2011-02-05
    Description: N-glycosylation of eukaryotic proteins helps them fold and traverse the cellular secretory pathway and can increase their stability, although the molecular basis for stabilization is poorly understood. Glycosylation of proteins at naive sites (ones that normally are not glycosylated) could be useful for therapeutic and research applications but currently results in unpredictable changes to protein stability. We show that placing a phenylalanine residue two or three positions before a glycosylated asparagine in distinct reverse turns facilitates stabilizing interactions between the aromatic side chain and the first N-acetylglucosamine of the glycan. Glycosylating this portable structural module, an enhanced aromatic sequon, in three different proteins stabilizes their native states by -0.7 to -2.0 kilocalories per mole and increases cellular glycosylation efficiency.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3099596/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3099596/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Culyba, Elizabeth K -- Price, Joshua L -- Hanson, Sarah R -- Dhar, Apratim -- Wong, Chi-Huey -- Gruebele, Martin -- Powers, Evan T -- Kelly, Jeffery W -- AI072155/AI/NIAID NIH HHS/ -- F32 GM086039/GM/NIGMS NIH HHS/ -- F32 GM086039-03/GM/NIGMS NIH HHS/ -- GM051105/GM/NIGMS NIH HHS/ -- R01 AI072155/AI/NIAID NIH HHS/ -- R01 AI072155-04/AI/NIAID NIH HHS/ -- R01 GM051105/GM/NIGMS NIH HHS/ -- R01 GM051105-15/GM/NIGMS NIH HHS/ -- New York, N.Y. -- Science. 2011 Feb 4;331(6017):571-5. doi: 10.1126/science.1198461.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Chemistry, The Scripps Research Institute, La Jolla, CA 92037, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21292975" target="_blank"〉PubMed〈/a〉
    Keywords: Acetylglucosamine/chemistry ; Acid Anhydride Hydrolases/*chemistry ; Amino Acid Sequence ; Animals ; Antigens, CD2/*chemistry ; Asparagine/chemistry ; Glycosylation ; Humans ; Models, Molecular ; Mutagenesis, Site-Directed ; Mutant Proteins/chemistry ; Peptidylprolyl Isomerase/*chemistry ; Phenylalanine/chemistry ; Polysaccharides/chemistry ; Protein Conformation ; Protein Engineering ; Protein Folding ; *Protein Stability ; Protein Structure, Tertiary ; Rats ; Thermodynamics
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  • 15
    Publication Date: 2011-01-29
    Description: Hypertrophic scarring and poor intrinsic axon growth capacity constitute major obstacles for spinal cord repair. These processes are tightly regulated by microtubule dynamics. Here, moderate microtubule stabilization decreased scar formation after spinal cord injury in rodents through various cellular mechanisms, including dampening of transforming growth factor-beta signaling. It prevented accumulation of chondroitin sulfate proteoglycans and rendered the lesion site permissive for axon regeneration of growth-competent sensory neurons. Microtubule stabilization also promoted growth of central nervous system axons of the Raphe-spinal tract and led to functional improvement. Thus, microtubule stabilization reduces fibrotic scarring and enhances the capacity of axons to grow.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3330754/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3330754/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Hellal, Farida -- Hurtado, Andres -- Ruschel, Jorg -- Flynn, Kevin C -- Laskowski, Claudia J -- Umlauf, Martina -- Kapitein, Lukas C -- Strikis, Dinara -- Lemmon, Vance -- Bixby, John -- Hoogenraad, Casper C -- Bradke, Frank -- R01 HD057632/HD/NICHD NIH HHS/ -- R01 HD057632-04/HD/NICHD NIH HHS/ -- R01 NS059866/NS/NINDS NIH HHS/ -- R01 NS059866-03/NS/NINDS NIH HHS/ -- R01 NS059866-04/NS/NINDS NIH HHS/ -- New York, N.Y. -- Science. 2011 Feb 18;331(6019):928-31. doi: 10.1126/science.1201148. Epub 2011 Jan 27.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Axonal Growth and Regeneration Group, Max Planck Institute of Neurobiology, Martinsried, Germany.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21273450" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Axons/*physiology ; Cells, Cultured ; Chondroitin Sulfate Proteoglycans/metabolism ; Cicatrix/pathology/*prevention & control ; Female ; Ganglia, Spinal/cytology ; Kinesin/metabolism ; Microtubules/drug effects/*metabolism ; Paclitaxel/*administration & dosage/pharmacology ; Protein Transport ; Rats ; Rats, Sprague-Dawley ; Sensory Receptor Cells/physiology ; Signal Transduction ; Smad2 Protein/metabolism ; Spinal Cord/cytology/drug effects ; Spinal Cord Injuries/*drug therapy/pathology/*physiopathology ; *Spinal Cord Regeneration ; Transforming Growth Factor beta/metabolism
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  • 16
    Publication Date: 2011-12-17
    Description: Acid evokes pain by exciting nociceptors; the acid sensors are proton-gated ion channels that depolarize neurons. The naked mole-rat (Heterocephalus glaber) is exceptional in its acid insensitivity, but acid sensors (acid-sensing ion channels and the transient receptor potential vanilloid-1 ion channel) in naked mole-rat nociceptors are similar to those in other vertebrates. Acid inhibition of voltage-gated sodium currents is more profound in naked mole-rat nociceptors than in mouse nociceptors, however, which effectively prevents acid-induced action potential initiation. We describe a species-specific variant of the nociceptor sodium channel Na(V)1.7, which is potently blocked by protons and can account for acid insensitivity in this species. Thus, evolutionary pressure has selected for an Na(V)1.7 gene variant that tips the balance from proton-induced excitation to inhibition of action potential initiation to abolish acid nociception.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Smith, Ewan St John -- Omerbasic, Damir -- Lechner, Stefan G -- Anirudhan, Gireesh -- Lapatsina, Liudmila -- Lewin, Gary R -- New York, N.Y. -- Science. 2011 Dec 16;334(6062):1557-60. doi: 10.1126/science.1213760.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neuroscience, Max-Delbruck Center for Molecular Medicine, Berlin-Buch, Germany. ewan.smith@mdc-berlin.de〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22174253" target="_blank"〉PubMed〈/a〉
    Keywords: Acid Sensing Ion Channels ; Acids/metabolism/*pharmacology ; Action Potentials ; Amino Acid Motifs ; Animals ; Ganglia, Spinal/cytology/physiology ; Mice ; Mole Rats/genetics/*physiology ; NAV1.7 Voltage-Gated Sodium Channel ; Nerve Tissue Proteins/metabolism ; Nociception/*physiology ; Rats ; Sodium Channels/genetics/*metabolism ; TRPV Cation Channels/metabolism
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  • 17
    Publication Date: 2011-04-30
    Description: Grid cells in parahippocampal cortices fire at vertices of a periodic triangular grid that spans the entire recording environment. Such precise neural computations in space have been proposed to emerge from equally precise temporal oscillations within cells or within the local neural circuitry. We found that grid-like firing patterns in the entorhinal cortex vanished when theta oscillations were reduced after intraseptal lidocaine infusions in rats. Other spatially modulated cells in the same cortical region and place cells in the hippocampus retained their spatial firing patterns to a larger extent during these periods without well-organized oscillatory neuronal activity. Precisely timed neural activity within single cells or local networks is thus required for periodic spatial firing but not for single place fields.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Koenig, Julie -- Linder, Ashley N -- Leutgeb, Jill K -- Leutgeb, Stefan -- New York, N.Y. -- Science. 2011 Apr 29;332(6029):592-5. doi: 10.1126/science.1201685.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Neurobiology Section and Center for Neural Circuits and Behavior, Division of Biological Sciences, University of California, San Diego, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21527713" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Entorhinal Cortex/cytology/*physiology ; Hippocampus/cytology/*physiology ; Lidocaine/pharmacology ; Male ; Membrane Potentials ; Motor Activity ; Nerve Net/physiology ; Neural Pathways ; Neurons/*physiology ; Periodicity ; Rats ; Rats, Long-Evans ; Septum Pellucidum/drug effects/physiology ; *Space Perception ; *Theta Rhythm/drug effects
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  • 18
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    American Association for the Advancement of Science (AAAS)
    Publication Date: 2011-09-10
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Hidalgo, Cecilia -- Donoso, Paulina -- New York, N.Y. -- Science. 2011 Sep 9;333(6048):1388-90. doi: 10.1126/science.1212183.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Physiology and Biophysics Program, Institute of Biomedical Sciences, and Center of Molecular Studies of the Cell, Faculty of Medicine, Universidad de Chile, Santiago, Chile. chidalgo@med.uchile.cl〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21903799" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Calcium/*metabolism ; Calcium Channels/metabolism ; Calcium Signaling ; Glutathione/metabolism ; *Mechanotransduction, Cellular ; Membrane Glycoproteins/metabolism ; Mice ; Muscular Dystrophy, Animal/physiopathology ; Myocardial Contraction ; Myocytes, Cardiac/*physiology ; NADPH Oxidase/metabolism ; Oxidation-Reduction ; Rats ; Reactive Oxygen Species/*metabolism ; Ryanodine Receptor Calcium Release Channel/metabolism
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  • 19
    Publication Date: 2011-02-11
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Saper, Clifford B -- England -- Nature. 2011 Feb 10;470(7333):179-81. doi: 10.1038/470179a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21307926" target="_blank"〉PubMed〈/a〉
    Keywords: Aggression/drug effects/*physiology ; Animals ; Cats ; Electric Stimulation ; Female ; Gene Expression Regulation/genetics ; Genes, fos/genetics ; Humans ; Male ; Mice ; Neural Inhibition/drug effects/genetics/physiology ; Neural Pathways/drug effects/physiology ; Neurons/drug effects/physiology ; Rats ; Sex Characteristics ; Sexual Behavior, Animal/drug effects/physiology ; Time Factors ; Ventromedial Hypothalamic Nucleus/anatomy & histology/*cytology/drug ; effects/*physiology ; Violence
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  • 20
    Publication Date: 2011-01-29
    Description: We report that, in the rat, administering insulin-like growth factor II (IGF-II, also known as IGF2) significantly enhances memory retention and prevents forgetting. Inhibitory avoidance learning leads to an increase in hippocampal expression of IGF-II, which requires the transcription factor CCAAT enhancer binding protein beta and is essential for memory consolidation. Furthermore, injections of recombinant IGF-II into the hippocampus after either training or memory retrieval significantly enhance memory retention and prevent forgetting. To be effective, IGF-II needs to be administered within a sensitive period of memory consolidation. IGF-II-dependent memory enhancement requires IGF-II receptors, new protein synthesis, the function of activity-regulated cytoskeletal-associated protein and glycogen-synthase kinase 3 (GSK3). Moreover, it correlates with a significant activation of synaptic GSK3beta and increased expression of GluR1 (also known as GRIA1) alpha-amino-3-hydroxy-5-methyl-4-isoxasolepropionic acid receptor subunits. In hippocampal slices, IGF-II promotes IGF-II receptor-dependent, persistent long-term potentiation after weak synaptic stimulation. Thus, IGF-II may represent a novel target for cognitive enhancement therapies.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3908455/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3908455/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Chen, Dillon Y -- Stern, Sarah A -- Garcia-Osta, Ana -- Saunier-Rebori, Bernadette -- Pollonini, Gabriella -- Bambah-Mukku, Dhananjay -- Blitzer, Robert D -- Alberini, Cristina M -- F31-MH816213/MH/NIMH NIH HHS/ -- R01 MH065635/MH/NIMH NIH HHS/ -- R01 MH074736/MH/NIMH NIH HHS/ -- R01-GM054508/GM/NIGMS NIH HHS/ -- R01-MH065635/MH/NIMH NIH HHS/ -- R01-MH074736/MH/NIMH NIH HHS/ -- R21-DA29298/DA/NIDA NIH HHS/ -- T32 MH087004/MH/NIMH NIH HHS/ -- T32-MH087004/MH/NIMH NIH HHS/ -- England -- Nature. 2011 Jan 27;469(7331):491-7. doi: 10.1038/nature09667.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neuroscience, Mount Sinai School of Medicine, New York, New York 10029, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21270887" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; CCAAT-Enhancer-Binding Protein-beta/metabolism ; Gene Expression Regulation ; Hippocampus/drug effects/*metabolism ; Insulin-Like Growth Factor II/*metabolism/pharmacology ; Long-Term Potentiation/physiology ; Male ; Memory/drug effects/*physiology ; Rats ; Rats, Long-Evans ; Time Factors
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  • 21
    Publication Date: 2011-07-15
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Zukor, Katherine -- He, Zhigang -- England -- Nature. 2011 Jul 13;475(7355):177-8. doi: 10.1038/475178a.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Kirby Program in Neuroscience, Children's Hospital Boston, Boston, Massachusetts 02115, USA. katherine.zukor@childrens.harvard.edu〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21753842" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Axons/physiology ; Chondroitin ABC Lyase/metabolism ; Chondroitin Sulfate Proteoglycans/metabolism ; Diaphragm/innervation/physiology ; Electromyography ; Extracellular Matrix/metabolism ; Humans ; Nerve Regeneration/*physiology ; Neuronal Plasticity/physiology ; Phrenic Nerve/cytology/physiology/transplantation ; Rats ; *Respiration ; Spinal Cord Injuries/*physiopathology
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  • 22
    Publication Date: 2011-11-08
    Description: Human pluripotent stem cells (PSCs) are a promising source of cells for applications in regenerative medicine. Directed differentiation of PSCs into specialized cells such as spinal motoneurons or midbrain dopamine (DA) neurons has been achieved. However, the effective use of PSCs for cell therapy has lagged behind. Whereas mouse PSC-derived DA neurons have shown efficacy in models of Parkinson's disease, DA neurons from human PSCs generally show poor in vivo performance. There are also considerable safety concerns for PSCs related to their potential for teratoma formation or neural overgrowth. Here we present a novel floor-plate-based strategy for the derivation of human DA neurons that efficiently engraft in vivo, suggesting that past failures were due to incomplete specification rather than a specific vulnerability of the cells. Midbrain floor-plate precursors are derived from PSCs 11 days after exposure to small molecule activators of sonic hedgehog (SHH) and canonical WNT signalling. Engraftable midbrain DA neurons are obtained by day 25 and can be maintained in vitro for several months. Extensive molecular profiling, biochemical and electrophysiological data define developmental progression and confirm identity of PSC-derived midbrain DA neurons. In vivo survival and function is demonstrated in Parkinson's disease models using three host species. Long-term engraftment in 6-hydroxy-dopamine-lesioned mice and rats demonstrates robust survival of midbrain DA neurons derived from human embryonic stem (ES) cells, complete restoration of amphetamine-induced rotation behaviour and improvements in tests of forelimb use and akinesia. Finally, scalability is demonstrated by transplantation into parkinsonian monkeys. Excellent DA neuron survival, function and lack of neural overgrowth in the three animal models indicate promise for the development of cell-based therapies in Parkinson's disease.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3245796/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3245796/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Kriks, Sonja -- Shim, Jae-Won -- Piao, Jinghua -- Ganat, Yosif M -- Wakeman, Dustin R -- Xie, Zhong -- Carrillo-Reid, Luis -- Auyeung, Gordon -- Antonacci, Chris -- Buch, Amanda -- Yang, Lichuan -- Beal, M Flint -- Surmeier, D James -- Kordower, Jeffrey H -- Tabar, Viviane -- Studer, Lorenz -- NS052671/NS/NINDS NIH HHS/ -- P50 NS047085/NS/NINDS NIH HHS/ -- P50 NS071669/NS/NINDS NIH HHS/ -- P50 NS071669-03/NS/NINDS NIH HHS/ -- England -- Nature. 2011 Nov 6;480(7378):547-51. doi: 10.1038/nature10648.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Center for Stem Cell Biology, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, New York, New York 10065, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22056989" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; *Brain Tissue Transplantation ; Cell Differentiation ; Cell Line ; Cell Survival ; Dopaminergic Neurons/*cytology/*transplantation ; Embryonic Stem Cells/*cytology ; Female ; Humans ; Macaca mulatta ; Mesencephalon/cytology ; Mice ; Mice, Inbred NOD ; Mice, SCID ; Parkinson Disease/*therapy ; Rats ; Rats, Sprague-Dawley
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  • 23
    Publication Date: 2011-09-09
    Description: The calcium-transporting ATPase ATP2A2, also known as SERCA2a, is a critical ATPase responsible for Ca(2+) re-uptake during excitation-contraction coupling. Impaired Ca(2+) uptake resulting from decreased expression and reduced activity of SERCA2a is a hallmark of heart failure. Accordingly, restoration of SERCA2a expression by gene transfer has proved to be effective in improving cardiac function in heart-failure patients, as well as in animal models. The small ubiquitin-related modifier (SUMO) can be conjugated to lysine residues of target proteins, and is involved in many cellular processes. Here we show that SERCA2a is SUMOylated at lysines 480 and 585 and that this SUMOylation is essential for preserving SERCA2a ATPase activity and stability in mouse and human cells. The levels of SUMO1 and the SUMOylation of SERCA2a itself were greatly reduced in failing hearts. SUMO1 restitution by adeno-associated-virus-mediated gene delivery maintained the protein abundance of SERCA2a and markedly improved cardiac function in mice with heart failure. This effect was comparable to SERCA2A gene delivery. Moreover, SUMO1 overexpression in isolated cardiomyocytes augmented contractility and accelerated Ca(2+) decay. Transgene-mediated SUMO1 overexpression rescued cardiac dysfunction induced by pressure overload concomitantly with increased SERCA2a function. By contrast, downregulation of SUMO1 using small hairpin RNA (shRNA) accelerated pressure-overload-induced deterioration of cardiac function and was accompanied by decreased SERCA2a function. However, knockdown of SERCA2a resulted in severe contractile dysfunction both in vitro and in vivo, which was not rescued by overexpression of SUMO1. Taken together, our data show that SUMOylation is a critical post-translational modification that regulates SERCA2a function, and provide a platform for the design of novel therapeutic strategies for heart failure.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3443490/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3443490/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Kho, Changwon -- Lee, Ahyoung -- Jeong, Dongtak -- Oh, Jae Gyun -- Chaanine, Antoine H -- Kizana, Eddy -- Park, Woo Jin -- Hajjar, Roger J -- HL080498/HL/NHLBI NIH HHS/ -- HL093183/HL/NHLBI NIH HHS/ -- P20 HL100396/HL/NHLBI NIH HHS/ -- P20 HL100396-02/HL/NHLBI NIH HHS/ -- P20HL100396/HL/NHLBI NIH HHS/ -- R01 HL078731/HL/NHLBI NIH HHS/ -- R01 HL078731-04/HL/NHLBI NIH HHS/ -- R01 HL080498/HL/NHLBI NIH HHS/ -- R01 HL080498-05/HL/NHLBI NIH HHS/ -- R01 HL083156/HL/NHLBI NIH HHS/ -- R01 HL083156-05/HL/NHLBI NIH HHS/ -- R01 HL088434/HL/NHLBI NIH HHS/ -- R01 HL088434-02/HL/NHLBI NIH HHS/ -- England -- Nature. 2011 Sep 7;477(7366):601-5. doi: 10.1038/nature10407.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Cardiovascular Research Center, Mount Sinai School of Medicine, 1 Gustave L. Levy Place, Box 1030, New York, New York 10029, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21900893" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; HEK293 Cells ; Heart Failure/*metabolism/physiopathology ; Humans ; Lysine/metabolism ; Mice ; Rats ; Rats, Sprague-Dawley ; SUMO-1 Protein/genetics/*metabolism ; Sarcoplasmic Reticulum Calcium-Transporting ATPases/*metabolism ; *Sumoylation ; Sus scrofa
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  • 24
    Publication Date: 2011-02-26
    Description: Pituitary adenylate cyclase-activating polypeptide (PACAP) is known to broadly regulate the cellular stress response. In contrast, it is unclear if the PACAP-PAC1 receptor pathway has a role in human psychological stress responses, such as post-traumatic stress disorder (PTSD). Here we find, in heavily traumatized subjects, a sex-specific association of PACAP blood levels with fear physiology, PTSD diagnosis and symptoms in females. We examined 44 single nucleotide polymorphisms (SNPs) spanning the PACAP (encoded by ADCYAP1) and PAC1 (encoded by ADCYAP1R1) genes, demonstrating a sex-specific association with PTSD. A single SNP in a putative oestrogen response element within ADCYAP1R1, rs2267735, predicts PTSD diagnosis and symptoms in females only. This SNP also associates with fear discrimination and with ADCYAP1R1 messenger RNA expression in human brain. Methylation of ADCYAP1R1 in peripheral blood is also associated with PTSD. Complementing these human data, ADCYAP1R1 mRNA is induced with fear conditioning or oestrogen replacement in rodent models. These data suggest that perturbations in the PACAP-PAC1 pathway are involved in abnormal stress responses underlying PTSD. These sex-specific effects may occur via oestrogen regulation of ADCYAP1R1. PACAP levels and ADCYAP1R1 SNPs may serve as useful biomarkers to further our mechanistic understanding of PTSD.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3046811/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3046811/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Ressler, Kerry J -- Mercer, Kristina B -- Bradley, Bekh -- Jovanovic, Tanja -- Mahan, Amy -- Kerley, Kimberly -- Norrholm, Seth D -- Kilaru, Varun -- Smith, Alicia K -- Myers, Amanda J -- Ramirez, Manuel -- Engel, Anzhelika -- Hammack, Sayamwong E -- Toufexis, Donna -- Braas, Karen M -- Binder, Elisabeth B -- May, Victor -- AG034504/AG/NIA NIH HHS/ -- DA019624/DA/NIDA NIH HHS/ -- HD27468/HD/NICHD NIH HHS/ -- M01RR00039/RR/NCRR NIH HHS/ -- MH071537/MH/NIMH NIH HHS/ -- P20RR16435/RR/NCRR NIH HHS/ -- R01 AG034504/AG/NIA NIH HHS/ -- R01 HD027468/HD/NICHD NIH HHS/ -- R01 HD027468-13/HD/NICHD NIH HHS/ -- UL1 TR000454/TR/NCATS NIH HHS/ -- Howard Hughes Medical Institute/ -- England -- Nature. 2011 Feb 24;470(7335):492-7. doi: 10.1038/nature09856.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Howard Hughes Medical Institute, Chevy Chase, Maryland 20815, USA. kressle@emory.edu〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21350482" target="_blank"〉PubMed〈/a〉
    Keywords: Amygdala/metabolism ; Animals ; Conditioning, Classical/physiology ; CpG Islands/genetics ; DNA Methylation ; Estrogens/metabolism/pharmacology ; Fear/physiology ; Female ; Gene Expression Regulation/drug effects ; Genetic Association Studies ; Genetic Predisposition to Disease/*genetics ; Humans ; Male ; Mice ; Pituitary Adenylate Cyclase-Activating Polypeptide/*blood/chemistry ; Polymorphism, Single Nucleotide/genetics ; RNA, Messenger/analysis/biosynthesis/genetics ; Rats ; Receptors, Pituitary Adenylate Cyclase-Activating Polypeptide, Type I/*genetics ; Response Elements/genetics ; Septal Nuclei/drug effects/metabolism ; Sex Characteristics ; Stress Disorders, Post-Traumatic/*blood/*genetics/physiopathology/psychology
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  • 25
    Publication Date: 2011-03-25
    Description: Melanoma is a tumour of transformed melanocytes, which are originally derived from the embryonic neural crest. It is unknown to what extent the programs that regulate neural crest development interact with mutations in the BRAF oncogene, which is the most commonly mutated gene in human melanoma. We have used zebrafish embryos to identify the initiating transcriptional events that occur on activation of human BRAF(V600E) (which encodes an amino acid substitution mutant of BRAF) in the neural crest lineage. Zebrafish embryos that are transgenic for mitfa:BRAF(V600E) and lack p53 (also known as tp53) have a gene signature that is enriched for markers of multipotent neural crest cells, and neural crest progenitors from these embryos fail to terminally differentiate. To determine whether these early transcriptional events are important for melanoma pathogenesis, we performed a chemical genetic screen to identify small-molecule suppressors of the neural crest lineage, which were then tested for their effects on melanoma. One class of compound, inhibitors of dihydroorotate dehydrogenase (DHODH), for example leflunomide, led to an almost complete abrogation of neural crest development in zebrafish and to a reduction in the self-renewal of mammalian neural crest stem cells. Leflunomide exerts these effects by inhibiting the transcriptional elongation of genes that are required for neural crest development and melanoma growth. When used alone or in combination with a specific inhibitor of the BRAF(V600E) oncogene, DHODH inhibition led to a marked decrease in melanoma growth both in vitro and in mouse xenograft studies. Taken together, these studies highlight developmental pathways in neural crest cells that have a direct bearing on melanoma formation.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3759979/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3759979/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉White, Richard Mark -- Cech, Jennifer -- Ratanasirintrawoot, Sutheera -- Lin, Charles Y -- Rahl, Peter B -- Burke, Christopher J -- Langdon, Erin -- Tomlinson, Matthew L -- Mosher, Jack -- Kaufman, Charles -- Chen, Frank -- Long, Hannah K -- Kramer, Martin -- Datta, Sumon -- Neuberg, Donna -- Granter, Scott -- Young, Richard A -- Morrison, Sean -- Wheeler, Grant N -- Zon, Leonard I -- K08 AR055368/AR/NIAMS NIH HHS/ -- R01 CA103846/CA/NCI NIH HHS/ -- R01 HG002668/HG/NHGRI NIH HHS/ -- R01 HG002668-08/HG/NHGRI NIH HHS/ -- T32 CA009172/CA/NCI NIH HHS/ -- Biotechnology and Biological Sciences Research Council/United Kingdom -- Howard Hughes Medical Institute/ -- England -- Nature. 2011 Mar 24;471(7339):518-22. doi: 10.1038/nature09882.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Stem Cell Program and Hematology/Oncology, Children's Hospital Boston, Howard Hughes Medical Institute, Harvard Medical School, Boston, Massachusetts 02115, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21430780" target="_blank"〉PubMed〈/a〉
    Keywords: Amino Acid Substitution ; Animals ; Animals, Genetically Modified ; Cell Differentiation/drug effects ; Cell Line, Tumor ; Cell Lineage/drug effects ; Disease Models, Animal ; Gene Expression Regulation, Neoplastic ; Genes, p53/genetics ; Humans ; Isoxazoles/pharmacology/therapeutic use ; Melanoma/drug therapy/enzymology/*genetics/*pathology ; Mice ; Neural Crest/drug effects/*enzymology/metabolism/pathology ; Oxidoreductases Acting on CH-CH Group Donors/antagonists & inhibitors/*metabolism ; Proto-Oncogene Proteins B-raf/antagonists & ; inhibitors/chemistry/genetics/metabolism ; Rats ; Stem Cells/cytology/drug effects/pathology ; *Transcription, Genetic/drug effects/physiology ; Xenograft Model Antitumor Assays ; Zebrafish/embryology/genetics
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  • 26
    Publication Date: 2011-01-14
    Description: Brain changes in response to nerve damage or cochlear trauma can generate pathological neural activity that is believed to be responsible for many types of chronic pain and tinnitus. Several studies have reported that the severity of chronic pain and tinnitus is correlated with the degree of map reorganization in somatosensory and auditory cortex, respectively. Direct electrical or transcranial magnetic stimulation of sensory cortex can temporarily disrupt these phantom sensations. However, there is as yet no direct evidence for a causal role of plasticity in the generation of pain or tinnitus. Here we report evidence that reversing the brain changes responsible can eliminate the perceptual impairment in an animal model of noise-induced tinnitus. Exposure to intense noise degrades the frequency tuning of auditory cortex neurons and increases cortical synchronization. Repeatedly pairing tones with brief pulses of vagus nerve stimulation completely eliminated the physiological and behavioural correlates of tinnitus in noise-exposed rats. These improvements persisted for weeks after the end of therapy. This method for restoring neural activity to normal may be applicable to a variety of neurological disorders.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3295231/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3295231/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Engineer, Navzer D -- Riley, Jonathan R -- Seale, Jonathan D -- Vrana, Will A -- Shetake, Jai A -- Sudanagunta, Sindhu P -- Borland, Michael S -- Kilgard, Michael P -- R43 DC010084-01/DC/NIDCD NIH HHS/ -- R44 DC010084-03/DC/NIDCD NIH HHS/ -- England -- Nature. 2011 Feb 3;470(7332):101-4. doi: 10.1038/nature09656. Epub 2011 Jan 12.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Cortical Plasticity Laboratory, Behavioral and Brain Sciences, University of Texas at Dallas, Richardson, Texas 75080, USA. navzer@utdallas.edu〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21228773" target="_blank"〉PubMed〈/a〉
    Keywords: Acoustic Stimulation ; Animals ; Auditory Perception/physiology ; Behavior, Animal/physiology ; Disease Models, Animal ; Electric Stimulation ; Female ; Models, Neurological ; Neuronal Plasticity/*physiology ; Noise/adverse effects ; Rats ; Rats, Sprague-Dawley ; Tinnitus/etiology/pathology/*physiopathology/*therapy ; Vagus Nerve/physiology
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  • 27
    Publication Date: 2011-09-20
    Description: Dynamin-related proteins (DRPs) are multi-domain GTPases that function via oligomerization and GTP-dependent conformational changes to play central roles in regulating membrane structure across phylogenetic kingdoms. How DRPs harness self-assembly and GTP-dependent conformational changes to remodel membranes is not understood. Here we present the crystal structure of an assembly-deficient mammalian endocytic DRP, dynamin 1, lacking the proline-rich domain, in its nucleotide-free state. The dynamin 1 monomer is an extended structure with the GTPase domain and bundle signalling element positioned on top of a long helical stalk with the pleckstrin homology domain flexibly attached on its opposing end. Dynamin 1 dimer and higher order dimer multimers form via interfaces located in the stalk. Analysis of these interfaces provides insight into DRP family member specificity and regulation and provides a framework for understanding the biogenesis of higher order DRP structures and the mechanism of DRP-mediated membrane scission events.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4075756/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4075756/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Ford, Marijn G J -- Jenni, Simon -- Nunnari, Jodi -- DRG-2004-09/Howard Hughes Medical Institute/ -- R01 GM062942/GM/NIGMS NIH HHS/ -- R01 GM097432/GM/NIGMS NIH HHS/ -- R01GM062942S1/GM/NIGMS NIH HHS/ -- R01GM097432/GM/NIGMS NIH HHS/ -- England -- Nature. 2011 Sep 18;477(7366):561-6. doi: 10.1038/nature10441.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Molecular and Cellular Biology, University of California, Davis, Davis, California 95616, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21927001" target="_blank"〉PubMed〈/a〉
    Keywords: Amino Acid Sequence ; Amino Acid Substitution ; Animals ; Crystallization ; Crystallography, X-Ray ; Dynamin I/*chemistry/genetics/metabolism ; Guanosine Triphosphate/metabolism ; Humans ; Models, Molecular ; Molecular Sequence Data ; Nucleotides ; Protein Binding ; Protein Conformation ; Protein Multimerization/genetics ; Protein Structure, Tertiary/genetics ; Rats
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  • 28
    Publication Date: 2011-11-05
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Hunt, Terry L -- Lipo, Carl P -- England -- Nature. 2011 Nov 2;479(7371):41. doi: 10.1038/479041c.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22051666" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; *Archaeology ; Emigration and Immigration/history ; Europe/ethnology ; History, 18th Century ; Literature, Modern ; Polynesia ; Rats ; Trees ; Violence/history/prevention & control
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  • 29
    Publication Date: 2011-10-25
    Description: Neuronal exocytosis is catalysed by the SNAP receptor protein syntaxin-1A, which is clustered in the plasma membrane at sites where synaptic vesicles undergo exocytosis. However, how syntaxin-1A is sequestered is unknown. Here we show that syntaxin clustering is mediated by electrostatic interactions with the strongly anionic lipid phosphatidylinositol-4,5-bisphosphate (PIP2). Using super-resolution stimulated-emission depletion microscopy on the plasma membranes of PC12 cells, we found that PIP2 is the dominant inner-leaflet lipid in microdomains about 73 nanometres in size. This high accumulation of PIP2 was required for syntaxin-1A sequestering, as destruction of PIP2 by the phosphatase synaptojanin-1 reduced syntaxin-1A clustering. Furthermore, co-reconstitution of PIP2 and the carboxy-terminal part of syntaxin-1A in artificial giant unilamellar vesicles resulted in segregation of PIP2 and syntaxin-1A into distinct domains even when cholesterol was absent. Our results demonstrate that electrostatic protein-lipid interactions can result in the formation of microdomains independently of cholesterol or lipid phases.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3409895/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3409895/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉van den Bogaart, Geert -- Meyenberg, Karsten -- Risselada, H Jelger -- Amin, Hayder -- Willig, Katrin I -- Hubrich, Barbara E -- Dier, Markus -- Hell, Stefan W -- Grubmuller, Helmut -- Diederichsen, Ulf -- Jahn, Reinhard -- P01 GM072694/GM/NIGMS NIH HHS/ -- England -- Nature. 2011 Oct 23;479(7374):552-5. doi: 10.1038/nature10545.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neurobiology, Max Planck Institute for Biophysical Chemistry, Am Fassberg 11, 37077 Gottingen, Germany.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22020284" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Cholesterol ; Membrane Microdomains/*chemistry/metabolism ; Microscopy, Confocal ; Molecular Dynamics Simulation ; Nerve Tissue Proteins/metabolism ; PC12 Cells ; Phosphatidylinositol 4,5-Diphosphate/*chemistry/*metabolism ; Phosphoric Monoester Hydrolases/metabolism ; *Protein Binding ; Rats ; *Static Electricity ; Syntaxin 1/*chemistry/*metabolism ; Unilamellar Liposomes/chemistry/metabolism
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  • 30
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    Unknown
    Nature Publishing Group (NPG)
    Publication Date: 2011-04-29
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Colwell, Christopher S -- England -- Nature. 2011 Apr 28;472(7344):427-8. doi: 10.1038/472427a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21525924" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Behavior, Animal/physiology ; Cerebral Cortex/*cytology/*physiology ; Electroencephalography ; Humans ; Models, Neurological ; Rats ; Sleep/*physiology ; Sleep Deprivation/physiopathology ; Wakefulness/*physiology
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  • 31
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    Unknown
    Nature Publishing Group (NPG)
    Publication Date: 2011-07-15
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Gilbert, Natasha -- England -- Nature. 2011 Jul 12;475(7355):150-1. doi: 10.1038/475150a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21753825" target="_blank"〉PubMed〈/a〉
    Keywords: Animal Testing Alternatives/statistics & numerical data/trends ; Animals ; Chemical Industry/*legislation & jurisprudence/methods/*standards ; Ecotoxicology/legislation & jurisprudence/methods/standards ; Europe ; European Union ; *Government Regulation ; Growth/drug effects ; Humans ; Rats ; Reproduction/drug effects ; Toxicity Tests/methods/standards ; Toxicology/*legislation & jurisprudence/methods/*standards
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  • 32
    Publication Date: 2011-04-29
    Description: In an awake state, neurons in the cerebral cortex fire irregularly and electroencephalogram (EEG) recordings display low-amplitude, high-frequency fluctuations. During sleep, neurons oscillate between 'on' periods, when they fire as in an awake brain, and 'off' periods, when they stop firing altogether and the EEG displays high-amplitude slow waves. However, what happens to neuronal firing after a long period of being awake is not known. Here we show that in freely behaving rats after a long period in an awake state, cortical neurons can go briefly 'offline' as in sleep, accompanied by slow waves in the local EEG. Neurons often go offline in one cortical area but not in another, and during these periods of 'local sleep', the incidence of which increases with the duration of the awake state, rats are active and display an 'awake' EEG. However, they are progressively impaired in a sugar pellet reaching task. Thus, although both the EEG and behaviour indicate wakefulness, local populations of neurons in the cortex may be falling asleep, with negative consequences for performance.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3085007/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3085007/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Vyazovskiy, Vladyslav V -- Olcese, Umberto -- Hanlon, Erin C -- Nir, Yuval -- Cirelli, Chiara -- Tononi, Giulio -- DP1 OD000579/OD/NIH HHS/ -- DP1 OD000579-05/OD/NIH HHS/ -- P20 MH077967/MH/NIMH NIH HHS/ -- P20 MH077967-04/MH/NIMH NIH HHS/ -- England -- Nature. 2011 Apr 28;472(7344):443-7. doi: 10.1038/nature10009.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Psychiatry, University of Wisconsin-Madison, Madison, 6001 Research Park Boulevard, Wisconsin 53719, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21525926" target="_blank"〉PubMed〈/a〉
    Keywords: Action Potentials ; Animals ; Behavior, Animal/physiology ; Cerebral Cortex/*cytology/*physiology ; Electroencephalography ; Male ; Models, Neurological ; Rats ; Rats, Inbred WKY ; Reward ; Sleep/*physiology ; Sleep Deprivation/physiopathology ; Wakefulness/*physiology
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  • 33
    Publication Date: 2011-05-24
    Description: Among ion channels, only the nicotinic-receptor superfamily has evolved to generate both cation- and anion-selective members. Although other, structurally unrelated, neurotransmitter-gated cation channels exist, no other type of neurotransmitter-gated anion channel, and thus no other source of fast synaptic inhibitory signals, has been described so far. In addition to the seemingly straightforward electrostatic effect of the presence (in the cation-selective members) or absence (in the anion-selective ones) of a ring of pore-facing carboxylates, mutational studies have identified other features of the amino-acid sequence near the intracellular end of the pore-lining transmembrane segments (M2) that are also required to achieve the high charge selectivity shown by native channels. However, the mechanism underlying this more subtle effect has remained elusive and a subject of speculation. Here we show, using single-channel electrophysiological recordings to estimate the protonation state of native ionizable side chains, that anion-selective-type sequences favour whereas cation-selective-type sequences prevent the protonation of the conserved, buried basic residues at the intracellular entrance of the pore (the M2 0' position). We conclude that the previously unrecognized tunable charge state of the 0' ring of buried basic side chains is an essential feature of these channels' versatile charge-selectivity filter.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3121909/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3121909/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Cymes, Gisela D -- Grosman, Claudio -- R01 NS042169/NS/NINDS NIH HHS/ -- R01 NS042169-07/NS/NINDS NIH HHS/ -- R01-NS042169/NS/NINDS NIH HHS/ -- England -- Nature. 2011 May 22;474(7352):526-30. doi: 10.1038/nature10015.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Molecular and Integrative Physiology, Center for Biophysics and Computational Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21602825" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Binding Sites ; Electric Conductivity ; HEK293 Cells ; Humans ; Kinetics ; Ligands ; Mice ; Mutation ; Proline/genetics ; Protein Subunits ; Protons ; Rats ; Receptors, Cholinergic/genetics/metabolism ; Receptors, Glycine/genetics/metabolism ; Receptors, Nicotinic/*chemistry/classification/genetics/*metabolism ; Static Electricity
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  • 34
    Publication Date: 2011-06-17
    Description: Since it was discovered that the anti-hypertensive agent ifenprodil has neuroprotective activity through its effects on NMDA (N-methyl-D-aspartate) receptors, a determined effort has been made to understand the mechanism of action and to develop improved therapeutic compounds on the basis of this knowledge. Neurotransmission mediated by NMDA receptors is essential for basic brain development and function. These receptors form heteromeric ion channels and become activated after concurrent binding of glycine and glutamate to the GluN1 and GluN2 subunits, respectively. A functional hallmark of NMDA receptors is that their ion-channel activity is allosterically regulated by binding of small compounds to the amino-terminal domain (ATD) in a subtype-specific manner. Ifenprodil and related phenylethanolamine compounds, which specifically inhibit GluN1 and GluN2B NMDA receptors, have been intensely studied for their potential use in the treatment of various neurological disorders and diseases, including depression, Alzheimer's disease and Parkinson's disease. Despite considerable enthusiasm, mechanisms underlying the recognition of phenylethanolamines and ATD-mediated allosteric inhibition remain limited owing to a lack of structural information. Here we report that the GluN1 and GluN2B ATDs form a heterodimer and that phenylethanolamine binds at the interface between GluN1 and GluN2B, rather than within the GluN2B cleft. The crystal structure of the heterodimer formed between the GluN1b ATD from Xenopus laevis and the GluN2B ATD from Rattus norvegicus shows a highly distinct pattern of subunit arrangement that is different from the arrangements observed in homodimeric non-NMDA receptors and reveals the molecular determinants for phenylethanolamine binding. Restriction of domain movement in the bi-lobed structure of the GluN2B ATD, by engineering of an inter-subunit disulphide bond, markedly decreases sensitivity to ifenprodil, indicating that conformational freedom in the GluN2B ATD is essential for ifenprodil-mediated allosteric inhibition of NMDA receptors. These findings pave the way for improving the design of subtype-specific compounds with therapeutic value for neurological disorders and diseases.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3171209/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3171209/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Karakas, Erkan -- Simorowski, Noriko -- Furukawa, Hiro -- MH085926/MH/NIMH NIH HHS/ -- P30 EB009998/EB/NIBIB NIH HHS/ -- R01 MH085926/MH/NIMH NIH HHS/ -- R01 MH085926-01A1/MH/NIMH NIH HHS/ -- R01 MH085926-02/MH/NIMH NIH HHS/ -- R01 MH085926-03/MH/NIMH NIH HHS/ -- England -- Nature. 2011 Jun 15;475(7355):249-53. doi: 10.1038/nature10180.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Cold Spring Harbor Laboratory, WM Keck Structural Biology Laboratory, 1 Bungtown Road, Cold Spring Harbor, New York 11724, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21677647" target="_blank"〉PubMed〈/a〉
    Keywords: 2-Hydroxyphenethylamine/chemistry/*metabolism/pharmacology ; Allosteric Regulation/drug effects ; Animals ; Binding Sites ; Crystallography, X-Ray ; Disulfides/chemistry/metabolism ; Movement ; Neuroprotective Agents/pharmacology ; Piperidines/chemistry/*metabolism/pharmacology ; Protein Multimerization ; Protein Structure, Tertiary ; Protein Subunits/chemistry/metabolism ; Rats ; Receptors, N-Methyl-D-Aspartate/antagonists & inhibitors/*chemistry/*metabolism ; Xenopus laevis
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  • 35
    Publication Date: 2011-01-29
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Graff, Johannes -- Tsai, Li-Huei -- England -- Nature. 2011 Jan 27;469(7331):474-5. doi: 10.1038/469474a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21270879" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Cognition/drug effects/*physiology ; Gene Expression Regulation/drug effects ; Hippocampus/drug effects ; Humans ; Insulin-Like Growth Factor II/metabolism/pharmacology ; Memory/drug effects/*physiology ; Oligonucleotides, Antisense/pharmacology ; Rats
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  • 36
    Publication Date: 2011-10-08
    Description: Left ventricular mass (LVM) is a highly heritable trait and an independent risk factor for all-cause mortality. So far, genome-wide association studies have not identified the genetic factors that underlie LVM variation, and the regulatory mechanisms for blood-pressure-independent cardiac hypertrophy remain poorly understood. Unbiased systems genetics approaches in the rat now provide a powerful complementary tool to genome-wide association studies, and we applied integrative genomics to dissect a highly replicated, blood-pressure-independent LVM locus on rat chromosome 3p. Here we identified endonuclease G (Endog), which previously was implicated in apoptosis but not hypertrophy, as the gene at the locus, and we found a loss-of-function mutation in Endog that is associated with increased LVM and impaired cardiac function. Inhibition of Endog in cultured cardiomyocytes resulted in an increase in cell size and hypertrophic biomarkers in the absence of pro-hypertrophic stimulation. Genome-wide network analysis unexpectedly implicated ENDOG in fundamental mitochondrial processes that are unrelated to apoptosis. We showed direct regulation of ENDOG by ERR-alpha and PGC1alpha (which are master regulators of mitochondrial and cardiac function), interaction of ENDOG with the mitochondrial genome and ENDOG-mediated regulation of mitochondrial mass. At baseline, the Endog-deleted mouse heart had depleted mitochondria, mitochondrial dysfunction and elevated levels of reactive oxygen species, which were associated with enlarged and steatotic cardiomyocytes. Our study has further established the link between mitochondrial dysfunction, reactive oxygen species and heart disease and has uncovered a role for Endog in maladaptive cardiac hypertrophy.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3189541/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3189541/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉McDermott-Roe, Chris -- Ye, Junmei -- Ahmed, Rizwan -- Sun, Xi-Ming -- Serafin, Anna -- Ware, James -- Bottolo, Leonardo -- Muckett, Phil -- Canas, Xavier -- Zhang, Jisheng -- Rowe, Glenn C -- Buchan, Rachel -- Lu, Han -- Braithwaite, Adam -- Mancini, Massimiliano -- Hauton, David -- Marti, Ramon -- Garcia-Arumi, Elena -- Hubner, Norbert -- Jacob, Howard -- Serikawa, Tadao -- Zidek, Vaclav -- Papousek, Frantisek -- Kolar, Frantisek -- Cardona, Maria -- Ruiz-Meana, Marisol -- Garcia-Dorado, David -- Comella, Joan X -- Felkin, Leanne E -- Barton, Paul J R -- Arany, Zoltan -- Pravenec, Michal -- Petretto, Enrico -- Sanchis, Daniel -- Cook, Stuart A -- 087183/Wellcome Trust/United Kingdom -- MC_U120085815/Medical Research Council/United Kingdom -- MC_U120097112/Medical Research Council/United Kingdom -- British Heart Foundation/United Kingdom -- Medical Research Council/United Kingdom -- Wellcome Trust/United Kingdom -- England -- Nature. 2011 Oct 5;478(7367):114-8. doi: 10.1038/nature10490.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Medical Research Council Clinical Sciences Centre, Faculty of Medicine, Imperial College London, Hammersmith Hospital, Du Cane Road, London W12 ONN, UK.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21979051" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Apoptosis ; Body Weight/genetics ; Cardiomegaly/*enzymology/genetics/*pathology/physiopathology ; Cell Respiration ; Chromosomes, Mammalian/genetics ; Crosses, Genetic ; Endodeoxyribonucleases/deficiency/genetics/*metabolism ; Female ; Gene Expression Regulation ; Genes, Mitochondrial/genetics ; Hypertrophy, Left Ventricular/enzymology/genetics/pathology/physiopathology ; Lipid Metabolism ; Male ; Mitochondria/genetics/*metabolism/pathology ; Organ Size/genetics ; Quantitative Trait Loci/genetics ; RNA-Binding Proteins/metabolism ; Rats ; Rats, Inbred Strains ; Reactive Oxygen Species/metabolism ; Receptors, Estrogen/metabolism ; Transcription Factors/metabolism
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  • 37
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    Nature Publishing Group (NPG)
    Publication Date: 2011-03-25
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉DeWeerdt, Sarah -- England -- Nature. 2011 Mar 24;471(7339):S22-4. doi: 10.1038/471S22a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21430718" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Brassica/chemistry ; Breeding ; Cooking ; Curcumin/pharmacology ; *Diet/statistics & numerical data ; Fruit/chemistry ; Genetic Variation/genetics ; Genistein/pharmacology ; Genome, Human/genetics ; Humans ; Isothiocyanates ; Metagenome ; Mice ; Neoplasms/chemically induced/*diet therapy/*prevention & control ; Phytotherapy ; Rats ; Reproducibility of Results ; Risk Management ; Stilbenes/pharmacology ; Thiocyanates/pharmacology ; Time Factors ; Vegetables/chemistry
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  • 38
    Publication Date: 2011-03-11
    Description: Activation of microglia and inflammation-mediated neurotoxicity are suggested to play a decisive role in the pathogenesis of several neurodegenerative disorders. Activated microglia release pro-inflammatory factors that may be neurotoxic. Here we show that the orderly activation of caspase-8 and caspase-3/7, known executioners of apoptotic cell death, regulate microglia activation through a protein kinase C (PKC)-delta-dependent pathway. We find that stimulation of microglia with various inflammogens activates caspase-8 and caspase-3/7 in microglia without triggering cell death in vitro and in vivo. Knockdown or chemical inhibition of each of these caspases hindered microglia activation and consequently reduced neurotoxicity. We observe that these caspases are activated in microglia in the ventral mesencephalon of Parkinson's disease (PD) and the frontal cortex of individuals with Alzheimer's disease (AD). Taken together, we show that caspase-8 and caspase-3/7 are involved in regulating microglia activation. We conclude that inhibition of these caspases could be neuroprotective by targeting the microglia rather than the neurons themselves.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Burguillos, Miguel A -- Deierborg, Tomas -- Kavanagh, Edel -- Persson, Annette -- Hajji, Nabil -- Garcia-Quintanilla, Albert -- Cano, Josefina -- Brundin, Patrik -- Englund, Elisabet -- Venero, Jose L -- Joseph, Bertrand -- England -- Nature. 2011 Apr 21;472(7343):319-24. doi: 10.1038/nature09788. Epub 2011 Mar 9.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Oncology-Pathology, Cancer Centrum Karolinska, Karolinska Institutet, 171 76, Stockholm, Sweden.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21389984" target="_blank"〉PubMed〈/a〉
    Keywords: Alzheimer Disease/enzymology/pathology ; Animals ; Caspase 3/deficiency/metabolism ; Caspase 7/deficiency/metabolism ; Caspase 8/genetics/metabolism ; Caspase Inhibitors ; Caspases/deficiency/*metabolism ; Cell Death/drug effects ; Cells, Cultured ; Dopamine/metabolism ; Enzyme Activation ; Frontal Lobe/enzymology/pathology ; Gene Knockdown Techniques ; Humans ; Lipopolysaccharides/pharmacology ; Mice ; Microglia/drug effects/*physiology ; Neostriatum/metabolism ; Neurotoxicity Syndromes/*enzymology/metabolism/*pathology ; Parkinson Disease/enzymology/pathology ; Protein Kinase C-delta/chemistry/metabolism ; Rats ; *Signal Transduction ; Substantia Nigra/enzymology/pathology ; Toll-Like Receptor 4/metabolism
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  • 39
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    Nature Publishing Group (NPG)
    Publication Date: 2011-10-28
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Callaway, Ewen -- England -- Nature. 2011 Oct 25;478(7370):444-6. doi: 10.1038/478444a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22031418" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; DNA Contamination ; Disease Outbreaks ; Evolution, Molecular ; Genome, Bacterial/*genetics ; History, 19th Century ; History, Ancient ; History, Medieval ; Humans ; Insect Vectors/microbiology ; London/epidemiology ; Phylogeny ; Plague/epidemiology/history/*microbiology/transmission ; Polymerase Chain Reaction ; Rats ; Reproducibility of Results ; Yersinia pestis/classification/*genetics/isolation & purification
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  • 40
    Publication Date: 2011-03-23
    Description: The Rho family of GTPases have important roles in the morphogenesis of the dendritic spines of neurons in the brain and synaptic plasticity by modulating the organization of the actin cytoskeleton. Here we used two-photon fluorescence lifetime imaging microscopy to monitor the activity of two Rho GTPases-RhoA and Cdc42-in single dendritic spines undergoing structural plasticity associated with long-term potentiation in CA1 pyramidal neurons in cultured slices of rat hippocampus. When long-term volume increase was induced in a single spine using two-photon glutamate uncaging, RhoA and Cdc42 were rapidly activated in the stimulated spine. These activities decayed over about five minutes, and were then followed by a phase of persistent activation lasting more than half an hour. Although active RhoA and Cdc42 were similarly mobile, their activity patterns were different. RhoA activation diffused out of the stimulated spine and spread over about 5 microm along the dendrite. In contrast, Cdc42 activation was restricted to the stimulated spine, and exhibited a steep gradient at the spine necks. Inhibition of the Rho-Rock pathway preferentially inhibited the initial spine growth, whereas the inhibition of the Cdc42-Pak pathway blocked the maintenance of sustained structural plasticity. RhoA and Cdc42 activation depended on Ca(2+)/calmodulin-dependent kinase (CaMKII). Thus, RhoA and Cdc42 relay transient CaMKII activation to synapse-specific, long-term signalling required for spine structural plasticity.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3105377/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3105377/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Murakoshi, Hideji -- Wang, Hong -- Yasuda, Ryohei -- R01 DA027807/DA/NIDA NIH HHS/ -- R01 MH080047/MH/NIMH NIH HHS/ -- R01 MH080047-01/MH/NIMH NIH HHS/ -- R01 MH080047-02/MH/NIMH NIH HHS/ -- R01 MH080047-03/MH/NIMH NIH HHS/ -- R01 MH080047-04/MH/NIMH NIH HHS/ -- R01 MH080047-05/MH/NIMH NIH HHS/ -- R01 NS068410/NS/NINDS NIH HHS/ -- R01 NS068410-01/NS/NINDS NIH HHS/ -- R01 NS068410-02/NS/NINDS NIH HHS/ -- R01 NS068410-03/NS/NINDS NIH HHS/ -- Howard Hughes Medical Institute/ -- England -- Nature. 2011 Apr 7;472(7341):100-4. doi: 10.1038/nature09823. Epub 2011 Mar 20.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neurobiology, Duke University Medical Center, Durham, NC 27710, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21423166" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Calcium-Calmodulin-Dependent Protein Kinase Type 2/metabolism ; Dendritic Spines/*enzymology/*physiology ; Enzyme Activation ; GTPase-Activating Proteins/antagonists & inhibitors/metabolism ; Humans ; Learning/physiology ; Long-Term Potentiation/physiology ; Microscopy, Fluorescence ; Neuronal Plasticity/*physiology ; Phosphoproteins/antagonists & inhibitors/metabolism ; Pyramidal Cells/physiology ; Rats ; Signal Transduction ; Time Factors ; rho GTP-Binding Proteins/antagonists & inhibitors/*metabolism ; rhoA GTP-Binding Protein/antagonists & inhibitors/metabolism
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  • 41
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    Nature Publishing Group (NPG)
    Publication Date: 2011-04-15
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Fox, Douglas -- England -- Nature. 2011 Apr 14;472(7342):156-8. doi: 10.1038/472156a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21490649" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Biomedical Enhancement/ethics/history/*methods ; Brain/cytology/physiology ; Clinical Trials as Topic ; Creativity ; Depression/therapy ; Electric Stimulation ; *Electric Stimulation Therapy/history/instrumentation/methods ; History, 19th Century ; History, 20th Century ; History, 21st Century ; Humans ; Learning/*physiology ; Military Personnel/education ; Rats ; Stroke/rehabilitation
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  • 42
    Publication Date: 2011-02-01
    Description: Genetic variation in CHRNA5, the gene encoding the alpha5 nicotinic acetylcholine receptor subunit, increases vulnerability to tobacco addiction and lung cancer, but the underlying mechanisms are unknown. Here we report markedly increased nicotine intake in mice with a null mutation in Chrna5. This effect was 'rescued' in knockout mice by re-expressing alpha5 subunits in the medial habenula (MHb), and recapitulated in rats through alpha5 subunit knockdown in MHb. Remarkably, alpha5 subunit knockdown in MHb did not alter the rewarding effects of nicotine but abolished the inhibitory effects of higher nicotine doses on brain reward systems. The MHb extends projections almost exclusively to the interpeduncular nucleus (IPN). We found diminished IPN activation in response to nicotine in alpha5 knockout mice. Further, disruption of IPN signalling increased nicotine intake in rats. Our findings indicate that nicotine activates the habenulo-interpeduncular pathway through alpha5-containing nAChRs, triggering an inhibitory motivational signal that acts to limit nicotine intake.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3079537/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3079537/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Fowler, Christie D -- Lu, Qun -- Johnson, Paul M -- Marks, Michael J -- Kenny, Paul J -- DA020686/DA/NIDA NIH HHS/ -- DA026693/DA/NIDA NIH HHS/ -- F32 DA026693/DA/NIDA NIH HHS/ -- P30 DA015663/DA/NIDA NIH HHS/ -- P30 DA015663-10/DA/NIDA NIH HHS/ -- P30DA015663/DA/NIDA NIH HHS/ -- R01 DA020686/DA/NIDA NIH HHS/ -- R01 DA020686-05/DA/NIDA NIH HHS/ -- England -- Nature. 2011 Mar 31;471(7340):597-601. doi: 10.1038/nature09797. Epub 2011 Jan 30.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Laboratory for Behavioral and Molecular Neuroscience, Department of Molecular Therapeutics, The Scripps Research Institute-Scripps Florida, Jupiter, Florida 33458, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21278726" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Female ; Habenula/drug effects/*metabolism/physiology ; Male ; Mice ; Mice, Knockout ; Nicotine/*metabolism/pharmacokinetics/pharmacology ; Rats ; Receptors, Nicotinic/deficiency/genetics/*metabolism ; Reward ; *Signal Transduction/drug effects ; Tobacco Use Disorder/genetics/metabolism
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  • 43
    Publication Date: 2011-02-26
    Description: The cellular basis of depressive disorders is poorly understood. Recent studies in monkeys indicate that neurons in the lateral habenula (LHb), a nucleus that mediates communication between forebrain and midbrain structures, can increase their activity when an animal fails to receive an expected positive reward or receives a stimulus that predicts aversive conditions (that is, disappointment or anticipation of a negative outcome). LHb neurons project to, and modulate, dopamine-rich regions, such as the ventral tegmental area (VTA), that control reward-seeking behaviour and participate in depressive disorders. Here we show that in two learned helplessness models of depression, excitatory synapses onto LHb neurons projecting to the VTA are potentiated. Synaptic potentiation correlates with an animal's helplessness behaviour and is due to an enhanced presynaptic release probability. Depleting transmitter release by repeated electrical stimulation of LHb afferents, using a protocol that can be effective for patients who are depressed, markedly suppresses synaptic drive onto VTA-projecting LHb neurons in brain slices and can significantly reduce learned helplessness behaviour in rats. Our results indicate that increased presynaptic action onto LHb neurons contributes to the rodent learned helplessness model of depression.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3285101/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3285101/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Li, Bo -- Piriz, Joaquin -- Mirrione, Martine -- Chung, ChiHye -- Proulx, Christophe D -- Schulz, Daniela -- Henn, Fritz -- Malinow, Roberto -- 1R01MH091903-01/MH/NIMH NIH HHS/ -- R01 AG032132/AG/NIA NIH HHS/ -- R01 AG032132-14/AG/NIA NIH HHS/ -- R01 AG032132-15/AG/NIA NIH HHS/ -- R01 MH049159/MH/NIMH NIH HHS/ -- R01 MH049159-09/MH/NIMH NIH HHS/ -- R01 MH091119/MH/NIMH NIH HHS/ -- R01 MH091903/MH/NIMH NIH HHS/ -- R01 MH091903-01/MH/NIMH NIH HHS/ -- England -- Nature. 2011 Feb 24;470(7335):535-9. doi: 10.1038/nature09742.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Center for Neural Circuits and Behavior, Department of Neuroscience, University of California at San Diego, La Jolla, California 92093, USA. bli@cshl.edu〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21350486" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Avoidance Learning ; Deep Brain Stimulation ; Depression/*pathology/*physiopathology/therapy ; Disease Models, Animal ; Dopamine/metabolism ; Electric Stimulation ; Excitatory Postsynaptic Potentials/physiology ; *Helplessness, Learned ; Male ; Models, Neurological ; Neuroanatomical Tract-Tracing Techniques ; Neurons/*metabolism ; Presynaptic Terminals/metabolism ; Rats ; Rats, Sprague-Dawley ; Reward ; Synapses/*metabolism ; *Synaptic Transmission ; Thalamus/metabolism/*pathology ; Ventral Tegmental Area/physiology
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  • 44
    Publication Date: 2011-04-08
    Description: Regulatory mechanisms governing the sequence from progenitor cell proliferation to neuronal migration during corticogenesis are poorly understood. Here we report that phosphorylation of DISC1, a major susceptibility factor for several mental disorders, acts as a molecular switch from maintaining proliferation of mitotic progenitor cells to activating migration of postmitotic neurons in mice. Unphosphorylated DISC1 regulates canonical Wnt signalling via an interaction with GSK3beta, whereas specific phosphorylation at serine 710 (S710) triggers the recruitment of Bardet-Biedl syndrome (BBS) proteins to the centrosome. In support of this model, loss of BBS1 leads to defects in migration, but not proliferation, whereas DISC1 knockdown leads to deficits in both. A phospho-dead mutant can only rescue proliferation, whereas a phospho-mimic mutant rescues exclusively migration defects. These data highlight a dual role for DISC1 in corticogenesis and indicate that phosphorylation of this protein at S710 activates a key developmental switch.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3088774/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3088774/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Ishizuka, Koko -- Kamiya, Atsushi -- Oh, Edwin C -- Kanki, Hiroaki -- Seshadri, Saurav -- Robinson, Jon F -- Murdoch, Hannah -- Dunlop, Allan J -- Kubo, Ken-ichiro -- Furukori, Keiko -- Huang, Beverly -- Zeledon, Mariela -- Hayashi-Takagi, Akiko -- Okano, Hideyuki -- Nakajima, Kazunori -- Houslay, Miles D -- Katsanis, Nicholas -- Sawa, Akira -- DK-072301/DK/NIDDK NIH HHS/ -- DK-075972/DK/NIDDK NIH HHS/ -- G0600765/Medical Research Council/United Kingdom -- HD-04260/HD/NICHD NIH HHS/ -- MH-069853/MH/NIMH NIH HHS/ -- MH-084018/MH/NIMH NIH HHS/ -- MH-085226/MH/NIMH NIH HHS/ -- MH-088753/MH/NIMH NIH HHS/ -- MH-091230/MH/NIMH NIH HHS/ -- R01 DK072301/DK/NIDDK NIH HHS/ -- R01 DK075972/DK/NIDDK NIH HHS/ -- R01 DK075972-06/DK/NIDDK NIH HHS/ -- R01 HD042601/HD/NICHD NIH HHS/ -- R01 HD042601-10/HD/NICHD NIH HHS/ -- R01 MH091230/MH/NIMH NIH HHS/ -- R01 MH092443/MH/NIMH NIH HHS/ -- England -- Nature. 2011 May 5;473(7345):92-6. doi: 10.1038/nature09859. Epub 2011 Apr 6.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Psychiatry and Behavioral Sciences, Johns Hopkins University School of Medicine, Baltimore, Maryland 21287, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21471969" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; COS Cells ; Cell Movement/genetics ; Cell Proliferation ; Cercopithecus aethiops ; Cerebral Cortex/cytology/*embryology/physiology ; Gene Knockdown Techniques ; Glycogen Synthase Kinase 3/metabolism ; HEK293 Cells ; Humans ; Mice ; Microtubule-Associated Proteins/genetics/metabolism ; *Nerve Tissue Proteins/genetics/metabolism ; Neurons/*cytology/metabolism/*physiology ; PC12 Cells ; Phosphorylation ; Protein Binding ; Rats ; Signal Transduction ; Stem Cells/*cytology ; Wnt Proteins/metabolism ; beta Catenin/metabolism
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  • 45
    Publication Date: 2011-07-15
    Description: Spinal cord injuries often occur at the cervical level above the phrenic motor pools, which innervate the diaphragm. The effects of impaired breathing are a leading cause of death from spinal cord injuries, underscoring the importance of developing strategies to restore respiratory activity. Here we show that, after cervical spinal cord injury, the expression of chondroitin sulphate proteoglycans (CSPGs) associated with the perineuronal net (PNN) is upregulated around the phrenic motor neurons. Digestion of these potently inhibitory extracellular matrix molecules with chondroitinase ABC (denoted ChABC) could, by itself, promote the plasticity of tracts that were spared and restore limited activity to the paralysed diaphragm. However, when combined with a peripheral nerve autograft, ChABC treatment resulted in lengthy regeneration of serotonin-containing axons and other bulbospinal fibres and remarkable recovery of diaphragmatic function. After recovery and initial transection of the graft bridge, there was an unusual, overall increase in tonic electromyographic activity of the diaphragm, suggesting that considerable remodelling of the spinal cord circuitry occurs after regeneration. This increase was followed by complete elimination of the restored activity, proving that regeneration is crucial for the return of function. Overall, these experiments present a way to markedly restore the function of a single muscle after debilitating trauma to the central nervous system, through both promoting the plasticity of spared tracts and regenerating essential pathways.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3163458/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3163458/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Alilain, Warren J -- Horn, Kevin P -- Hu, Hongmei -- Dick, Thomas E -- Silver, Jerry -- HL080318/HL/NHLBI NIH HHS/ -- NS060767/NS/NINDS NIH HHS/ -- NS25713/NS/NINDS NIH HHS/ -- R01 NS025713/NS/NINDS NIH HHS/ -- R01 NS025713-25/NS/NINDS NIH HHS/ -- R01 NS060767/NS/NINDS NIH HHS/ -- R01 NS060767-04/NS/NINDS NIH HHS/ -- R37 NS025713/NS/NINDS NIH HHS/ -- R37 NS025713-24/NS/NINDS NIH HHS/ -- England -- Nature. 2011 Jul 13;475(7355):196-200. doi: 10.1038/nature10199.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neurosciences, Case Western Reserve University School of Medicine, 2109 Adelbert Road, Cleveland, Ohio 44106, USA. wja4@case.edu〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21753849" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Axons/physiology ; Chondroitin ABC Lyase/metabolism ; Chondroitin Sulfate Proteoglycans/metabolism ; Diaphragm/physiology ; Disease Models, Animal ; Electromyography ; Extracellular Matrix/metabolism ; Nerve Net/physiology ; Nerve Regeneration/*physiology ; Neuronal Plasticity/physiology ; Phrenic Nerve/cytology/physiology/surgery/transplantation ; Rats ; *Respiration ; Spinal Cord Injuries/*physiopathology
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  • 46
    Publication Date: 2011-10-04
    Description: The ability to recall discrete memories is thought to depend on the formation of attractor states in recurrent neural networks. In such networks, representations can be reactivated reliably from subsets of the cues that were present when the memory was encoded, at the same time as interference from competing representations is minimized. Theoretical studies have pointed to the recurrent CA3 system of the hippocampus as a possible attractor network. Consistent with predictions from these studies, experiments have shown that place representations in CA3 and downstream CA1 tolerate small changes in the configuration of the environment but switch to uncorrelated representations when dissimilarities become larger. However, the kinetics supporting such network transitions, at the subsecond timescale, is poorly understood. Here we show in rats that instantaneous transformation of the spatial context does not change the hippocampal representation all at once but is followed by temporary bistability in the discharge activity of CA3 ensembles. Rather than sliding through a continuum of intermediate activity states, the CA3 network undergoes a short period of competitive flickering between preformed representations of the past and present environment before settling on the latter. Network flickers are extremely fast, often with complete replacement of the active ensemble from one theta cycle to the next. Within individual cycles, segregation is stronger towards the end, when firing starts to decline, pointing to the theta cycle as a temporal unit for expression of attractor states in the hippocampus. Repetition of pattern-completion processes across successive theta cycles may facilitate error correction and enhance discriminative power in the presence of weak and ambiguous input cues.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Jezek, Karel -- Henriksen, Espen J -- Treves, Alessandro -- Moser, Edvard I -- Moser, May-Britt -- England -- Nature. 2011 Sep 28;478(7368):246-9. doi: 10.1038/nature10439.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Kavli Institute for Systems Neuroscience and Centre for the Biology of Memory, Norwegian University of Science and Technology, Olav Kyrres gate 9, MTFS, 7489 Trondheim, Norway. karel.jezek@biomed.cas.cz〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21964339" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Cues ; Environment ; Hippocampus/*cytology/*physiology ; Male ; Memory/*physiology ; Models, Neurological ; Rats ; Rats, Long-Evans ; Space Perception/*physiology ; Theta Rhythm/*physiology ; Time Factors
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  • 47
    Publication Date: 2011-07-08
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Baker, Monya -- England -- Nature. 2011 Jul 6;475(7354):123-8. doi: 10.1038/475123a.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21734709" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Autistic Disorder/genetics/physiopathology ; Automation ; *Behavior, Animal/physiology ; Cues ; *Disease Models, Animal ; Environment ; Fragile X Syndrome/genetics/physiopathology ; Gene Knockout Techniques ; Grooming/physiology ; Housing, Animal ; Humans ; Informatics/methods ; Mental Disorders/diagnosis/*genetics/*physiopathology ; Mice ; Motor Activity/physiology ; Muscular Atrophy, Spinal/genetics/physiopathology ; Obesity/genetics/physiopathology ; Obsessive-Compulsive Disorder/genetics/physiopathology ; Rats ; Reproducibility of Results ; Rett Syndrome/genetics/physiopathology ; Schizophrenia/genetics/physiopathology ; Video Recording/instrumentation/methods
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  • 48
    Publication Date: 2011-05-03
    Description: How the directionality of vesicle traffic is achieved remains an important unanswered question in cell biology. The Sec23p/Sec24p coat complex sorts the fusion machinery (SNAREs) into vesicles as they bud from the endoplasmic reticulum (ER). Vesicle tethering to the Golgi begins when the tethering factor TRAPPI binds to Sec23p. Where the coat is released and how this event relates to membrane fusion is unknown. Here we use a yeast transport assay to demonstrate that an ER-derived vesicle retains its coat until it reaches the Golgi. A Golgi-associated kinase, Hrr25p (CK1delta orthologue), then phosphorylates the Sec23p/Sec24p complex. Coat phosphorylation and dephosphorylation are needed for vesicle fusion and budding, respectively. Additionally, we show that Sec23p interacts in a sequential manner with different binding partners, including TRAPPI and Hrr25p, to ensure the directionality of ER-Golgi traffic and prevent the back-fusion of a COPII vesicle with the ER. These events are conserved in mammalian cells.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3093450/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3093450/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Lord, Christopher -- Bhandari, Deepali -- Menon, Shekar -- Ghassemian, Majid -- Nycz, Deborah -- Hay, Jesse -- Ghosh, Pradipta -- Ferro-Novick, Susan -- GM-059378/GM/NIGMS NIH HHS/ -- RR-015583/RR/NCRR NIH HHS/ -- Howard Hughes Medical Institute/ -- England -- Nature. 2011 May 12;473(7346):181-6. doi: 10.1038/nature09969. Epub 2011 May 1.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Cellular and Molecular Medicine, Howard Hughes Medical Institute, University of California at San Diego, La Jolla, California 92093-0668, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21532587" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; COP-Coated Vesicles/metabolism ; Casein Kinase I/*metabolism ; Endoplasmic Reticulum/metabolism ; Golgi Apparatus/*metabolism ; Rats ; SNARE Proteins/metabolism ; Saccharomyces cerevisiae/*metabolism ; Saccharomyces cerevisiae Proteins/metabolism ; Vesicular Transport Proteins/metabolism
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  • 49
    Publication Date: 2011-06-17
    Description: Gene targeting in embryonic stem cells has become the principal technology for manipulation of the mouse genome, offering unrivalled accuracy in allele design and access to conditional mutagenesis. To bring these advantages to the wider research community, large-scale mouse knockout programmes are producing a permanent resource of targeted mutations in all protein-coding genes. Here we report the establishment of a high-throughput gene-targeting pipeline for the generation of reporter-tagged, conditional alleles. Computational allele design, 96-well modular vector construction and high-efficiency gene-targeting strategies have been combined to mutate genes on an unprecedented scale. So far, more than 12,000 vectors and 9,000 conditional targeted alleles have been produced in highly germline-competent C57BL/6N embryonic stem cells. High-throughput genome engineering highlighted by this study is broadly applicable to rat and human stem cells and provides a foundation for future genome-wide efforts aimed at deciphering the function of all genes encoded by the mammalian genome.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3572410/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3572410/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Skarnes, William C -- Rosen, Barry -- West, Anthony P -- Koutsourakis, Manousos -- Bushell, Wendy -- Iyer, Vivek -- Mujica, Alejandro O -- Thomas, Mark -- Harrow, Jennifer -- Cox, Tony -- Jackson, David -- Severin, Jessica -- Biggs, Patrick -- Fu, Jun -- Nefedov, Michael -- de Jong, Pieter J -- Stewart, A Francis -- Bradley, Allan -- 077188/Wellcome Trust/United Kingdom -- U01-HG004080/HG/NHGRI NIH HHS/ -- Wellcome Trust/United Kingdom -- England -- Nature. 2011 Jun 15;474(7351):337-42. doi: 10.1038/nature10163.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Wellcome Trust Sanger Institute, Wellcome Trust Genome Campus, Hinxton, Cambridge CB10 1SA, UK. skarnes@sanger.ac.uk〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21677750" target="_blank"〉PubMed〈/a〉
    Keywords: Alleles ; Animals ; Computational Biology ; Embryonic Stem Cells/cytology/metabolism ; *Gene Deletion ; Gene Knockout Techniques/*methods ; Genes/*genetics ; Genes, Lethal/genetics ; Genetic Association Studies/*methods ; Genetic Vectors/genetics ; Genome/*genetics ; Genomics ; Genotype ; Humans ; Mice ; Mice, Inbred C57BL ; Mice, Knockout/*genetics ; Mutagenesis, Insertional/methods ; Phenotype ; Polymerase Chain Reaction ; Rats
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  • 50
    Publication Date: 2011-11-19
    Description: Natural products that elicit discomfort or pain represent invaluable tools for probing molecular mechanisms underlying pain sensation. Plant-derived irritants have predominated in this regard, but animal venoms have also evolved to avert predators by targeting neurons and receptors whose activation produces noxious sensations. As such, venoms provide a rich and varied source of small molecule and protein pharmacophores that can be exploited to characterize and manipulate key components of the pain-signalling pathway. With this in mind, here we perform an unbiased in vitro screen to identify snake venoms capable of activating somatosensory neurons. Venom from the Texas coral snake (Micrurus tener tener), whose bite produces intense and unremitting pain, excites a large cohort of sensory neurons. The purified active species (MitTx) consists of a heteromeric complex between Kunitz- and phospholipase-A2-like proteins that together function as a potent, persistent and selective agonist for acid-sensing ion channels (ASICs), showing equal or greater efficacy compared with acidic pH. MitTx is highly selective for the ASIC1 subtype at neutral pH; under more acidic conditions (pH 〈 6.5), MitTx massively potentiates (〉100-fold) proton-evoked activation of ASIC2a channels. These observations raise the possibility that ASIC channels function as coincidence detectors for extracellular protons and other, as yet unidentified, endogenous factors. Purified MitTx elicits robust pain-related behaviour in mice by activation of ASIC1 channels on capsaicin-sensitive nerve fibres. These findings reveal a mechanism whereby snake venoms produce pain, and highlight an unexpected contribution of ASIC1 channels to nociception.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3226747/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3226747/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Bohlen, Christopher J -- Chesler, Alexander T -- Sharif-Naeini, Reza -- Medzihradszky, Katalin F -- Zhou, Sharleen -- King, David -- Sanchez, Elda E -- Burlingame, Alma L -- Basbaum, Allan I -- Julius, David -- F31NS065597/NS/NINDS NIH HHS/ -- P40 RR018300-09/RR/NCRR NIH HHS/ -- P40RR018300-09/RR/NCRR NIH HHS/ -- P41 GM103481/GM/NIGMS NIH HHS/ -- P41RR001614/RR/NCRR NIH HHS/ -- R01NS065071/NS/NINDS NIH HHS/ -- Canadian Institutes of Health Research/Canada -- Howard Hughes Medical Institute/ -- England -- Nature. 2011 Nov 16;479(7373):410-4. doi: 10.1038/nature10607.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Physiology, University of California, San Francisco, California 94158-2517, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22094702" target="_blank"〉PubMed〈/a〉
    Keywords: Acid Sensing Ion Channels ; Amino Acid Sequence ; Animals ; Capsaicin/pharmacology ; Cells, Cultured ; Elapid Venoms/*chemistry/*pharmacology ; *Elapidae ; Hindlimb/drug effects/physiopathology ; Humans ; Hydrogen-Ion Concentration ; Ion Channel Gating/drug effects ; Male ; Mice ; Mice, Knockout ; Molecular Sequence Data ; Nerve Tissue Proteins/agonists/deficiency/genetics/*metabolism ; Nociception/drug effects/physiology ; Oocytes ; Pain/*chemically induced/metabolism/physiopathology ; *Protein Multimerization ; Protein Structure, Quaternary ; Protons ; Rats ; Sensory Receptor Cells/drug effects/metabolism ; Sodium Channel Agonists ; Sodium Channels/deficiency/genetics/*metabolism ; TRPV Cation Channels/metabolism ; Xenopus laevis
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  • 51
    Publication Date: 2011-07-21
    Description: G protein-coupled receptors (GPCRs) are responsible for the majority of cellular responses to hormones and neurotransmitters as well as the senses of sight, olfaction and taste. The paradigm of GPCR signalling is the activation of a heterotrimeric GTP binding protein (G protein) by an agonist-occupied receptor. The beta(2) adrenergic receptor (beta(2)AR) activation of Gs, the stimulatory G protein for adenylyl cyclase, has long been a model system for GPCR signalling. Here we present the crystal structure of the active state ternary complex composed of agonist-occupied monomeric beta(2)AR and nucleotide-free Gs heterotrimer. The principal interactions between the beta(2)AR and Gs involve the amino- and carboxy-terminal alpha-helices of Gs, with conformational changes propagating to the nucleotide-binding pocket. The largest conformational changes in the beta(2)AR include a 14 A outward movement at the cytoplasmic end of transmembrane segment 6 (TM6) and an alpha-helical extension of the cytoplasmic end of TM5. The most surprising observation is a major displacement of the alpha-helical domain of Galphas relative to the Ras-like GTPase domain. This crystal structure represents the first high-resolution view of transmembrane signalling by a GPCR.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3184188/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3184188/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Rasmussen, Soren G F -- DeVree, Brian T -- Zou, Yaozhong -- Kruse, Andrew C -- Chung, Ka Young -- Kobilka, Tong Sun -- Thian, Foon Sun -- Chae, Pil Seok -- Pardon, Els -- Calinski, Diane -- Mathiesen, Jesper M -- Shah, Syed T A -- Lyons, Joseph A -- Caffrey, Martin -- Gellman, Samuel H -- Steyaert, Jan -- Skiniotis, Georgios -- Weis, William I -- Sunahara, Roger K -- Kobilka, Brian K -- GM083118/GM/NIGMS NIH HHS/ -- GM56169/GM/NIGMS NIH HHS/ -- GM75915/GM/NIGMS NIH HHS/ -- NS028471/NS/NINDS NIH HHS/ -- P01 GM75913/GM/NIGMS NIH HHS/ -- P50GM073210/GM/NIGMS NIH HHS/ -- P60DK-20572/DK/NIDDK NIH HHS/ -- R01 GM068603/GM/NIGMS NIH HHS/ -- R01 GM068603-01/GM/NIGMS NIH HHS/ -- R01 GM068603-02/GM/NIGMS NIH HHS/ -- R01 GM068603-03/GM/NIGMS NIH HHS/ -- R01 GM068603-04/GM/NIGMS NIH HHS/ -- R01 GM068603-05/GM/NIGMS NIH HHS/ -- T32-GM008270/GM/NIGMS NIH HHS/ -- U54 GM094599/GM/NIGMS NIH HHS/ -- U54GM094599/GM/NIGMS NIH HHS/ -- England -- Nature. 2011 Jul 19;477(7366):549-55. doi: 10.1038/nature10361.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Molecular and Cellular Physiology, Stanford University School of Medicine, Stanford, California 94305, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21772288" target="_blank"〉PubMed〈/a〉
    Keywords: Adrenergic beta-2 Receptor Agonists/chemistry/metabolism ; Animals ; Catalytic Domain ; Cattle ; Crystallization ; Crystallography, X-Ray ; Enzyme Activation ; GTP-Binding Protein alpha Subunits, Gs/*chemistry/*metabolism ; Models, Molecular ; Multiprotein Complexes/chemistry/metabolism ; Protein Binding ; Rats ; Receptors, Adrenergic, beta-2/*chemistry/*metabolism
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  • 52
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    Nature Publishing Group (NPG)
    Publication Date: 2011-03-25
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Miller-Spiegel, Crystal -- England -- Nature. 2011 Mar 24;471(7339):449. doi: 10.1038/471449b.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21430765" target="_blank"〉PubMed〈/a〉
    Keywords: Animal Experimentation/*ethics/legislation & jurisprudence/*standards ; Animal Welfare/*legislation & jurisprudence/standards ; Animals ; Animals, Laboratory ; Lobbying ; Mice ; Public Policy ; Rats ; *Societies ; United States
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  • 53
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    Unknown
    Nature Publishing Group (NPG)
    Publication Date: 2011-03-25
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Stephens, Martin -- England -- Nature. 2011 Mar 24;471(7339):449. doi: 10.1038/471449c.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21430764" target="_blank"〉PubMed〈/a〉
    Keywords: *Animal Experimentation ; Animal Use Alternatives/*trends ; Animals ; *Animals, Laboratory ; Rats
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  • 54
    Publication Date: 2011-09-17
    Description: Structural variation is widespread in mammalian genomes and is an important cause of disease, but just how abundant and important structural variants (SVs) are in shaping phenotypic variation remains unclear. Without knowing how many SVs there are, and how they arise, it is difficult to discover what they do. Combining experimental with automated analyses, we identified 711,920 SVs at 281,243 sites in the genomes of thirteen classical and four wild-derived inbred mouse strains. The majority of SVs are less than 1 kilobase in size and 98% are deletions or insertions. The breakpoints of 160,000 SVs were mapped to base pair resolution, allowing us to infer that insertion of retrotransposons causes more than half of SVs. Yet, despite their prevalence, SVs are less likely than other sequence variants to cause gene expression or quantitative phenotypic variation. We identified 24 SVs that disrupt coding exons, acting as rare variants of large effect on gene function. One-third of the genes so affected have immunological functions.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3428933/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3428933/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Yalcin, Binnaz -- Wong, Kim -- Agam, Avigail -- Goodson, Martin -- Keane, Thomas M -- Gan, Xiangchao -- Nellaker, Christoffer -- Goodstadt, Leo -- Nicod, Jerome -- Bhomra, Amarjit -- Hernandez-Pliego, Polinka -- Whitley, Helen -- Cleak, James -- Dutton, Rebekah -- Janowitz, Deborah -- Mott, Richard -- Adams, David J -- Flint, Jonathan -- 079912/Wellcome Trust/United Kingdom -- 082356/Wellcome Trust/United Kingdom -- 090532/Wellcome Trust/United Kingdom -- 098051/Wellcome Trust/United Kingdom -- 13031/Cancer Research UK/United Kingdom -- G0800024/Medical Research Council/United Kingdom -- MC_U137761446/Medical Research Council/United Kingdom -- Cancer Research UK/United Kingdom -- Medical Research Council/United Kingdom -- Wellcome Trust/United Kingdom -- England -- Nature. 2011 Sep 14;477(7364):326-9. doi: 10.1038/nature10432.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉The Wellcome Trust Centre for Human Genetics, Roosevelt Drive, Oxford OX3 7BN, UK.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21921916" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Chromosome Breakpoints ; Exons/genetics ; Female ; Gene Expression ; Genetic Variation/*genetics ; Genome/*genetics ; Genomics ; Genotype ; Male ; Mice ; Mice, Inbred Strains/*genetics/immunology ; Mutagenesis, Insertional/genetics ; *Phenotype ; Quantitative Trait Loci/genetics ; Rats ; Retroelements/genetics ; Sequence Deletion/genetics
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  • 55
    Publication Date: 2011-11-05
    Description: Grid cells provide a neural representation of space, by discharging when an animal traverses through the vertices of a periodic hexagonal grid spanning the environment. Although grid cells have been characterized in detail in rats, the fundamental question of what neural dynamics give rise to the grid structure remains unresolved. Two competing classes of models were proposed: network models, based on attractor dynamics, and oscillatory interference models, which propose that interference between somatic and dendritic theta-band oscillations (4-10 Hz) in single neurons transforms a temporal oscillation into a spatially periodic grid. So far, these models could not be dissociated experimentally, because rodent grid cells always co-exist with continuous theta oscillations. Here we used a novel animal model, the Egyptian fruit bat, to refute the proposed causal link between grids and theta oscillations. On the basis of our previous finding from bat hippocampus, of spatially tuned place cells in the absence of continuous theta oscillations, we hypothesized that grid cells in bat medial entorhinal cortex might also exist without theta oscillations. Indeed, we found grid cells in bat medial entorhinal cortex that shared remarkable similarities to rodent grid cells. Notably, the grids existed in the absence of continuous theta-band oscillations, and with almost no theta modulation of grid-cell spiking--both of which are essential prerequisites of the oscillatory interference models. Our results provide a direct demonstration of grid cells in a non-rodent species. Furthermore, they strongly argue against a major class of computational models of grid cells.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Yartsev, Michael M -- Witter, Menno P -- Ulanovsky, Nachum -- England -- Nature. 2011 Nov 2;479(7371):103-7. doi: 10.1038/nature10583.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Neurobiology, Weizmann Institute of Science, Rehovot 76100, Israel.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22051680" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Chiroptera/*physiology ; Entorhinal Cortex/*cytology/*physiology ; Hippocampus/cytology/physiology ; Models, Animal ; Models, Neurological ; Rats ; Rodentia ; *Theta Rhythm
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  • 56
    Publication Date: 2011-10-15
    Description: During development, formation of topographic maps in sensory cortex requires precise temporal binding in thalamocortical networks. However, the physiological substrate for such synchronization is unknown. We report that early gamma oscillations (EGOs) enable precise spatiotemporal thalamocortical synchronization in the neonatal rat whisker sensory system. Driven by a thalamic gamma oscillator and initially independent of cortical inhibition, EGOs synchronize neurons in a single thalamic barreloid and corresponding cortical barrel and support plasticity at developing thalamocortical synapses. We propose that the multiple replay of sensory input in thalamocortical circuits during EGOs allows thalamic and cortical neurons to be organized into vertical topographic functional units before the development of horizontal binding in adult brain.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Minlebaev, Marat -- Colonnese, Matthew -- Tsintsadze, Timur -- Sirota, Anton -- Khazipov, Roustem -- New York, N.Y. -- Science. 2011 Oct 14;334(6053):226-9. doi: 10.1126/science.1210574.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉INSERM U901, Marseille, France.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21998388" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Animals, Newborn ; Brain Waves/*physiology ; Evoked Potentials, Somatosensory ; Excitatory Postsynaptic Potentials ; Female ; Inhibitory Postsynaptic Potentials ; Interneurons ; Male ; Models, Neurological ; Nerve Net/physiology ; Neural Inhibition ; Neuronal Plasticity ; Neurons/physiology ; Patch-Clamp Techniques ; Rats ; Rats, Wistar ; Somatosensory Cortex/*growth & development/*physiology ; Synapses/physiology ; Thalamus/*growth & development/*physiology ; Vibrissae/growth & development/innervation/*physiology
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  • 57
    Publication Date: 2011-10-29
    Description: Abeta (beta-amyloid peptide) is an important contributor to Alzheimer's disease (AD). We modeled Abeta toxicity in yeast by directing the peptide to the secretory pathway. A genome-wide screen for toxicity modifiers identified the yeast homolog of phosphatidylinositol binding clathrin assembly protein (PICALM) and other endocytic factors connected to AD whose relationship to Abeta was previously unknown. The factors identified in yeast modified Abeta toxicity in glutamatergic neurons of Caenorhabditis elegans and in primary rat cortical neurons. In yeast, Abeta impaired the endocytic trafficking of a plasma membrane receptor, which was ameliorated by endocytic pathway factors identified in the yeast screen. Thus, links between Abeta, endocytosis, and human AD risk factors can be ascertained with yeast as a model system.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3281757/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3281757/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Treusch, Sebastian -- Hamamichi, Shusei -- Goodman, Jessica L -- Matlack, Kent E S -- Chung, Chee Yeun -- Baru, Valeriya -- Shulman, Joshua M -- Parrado, Antonio -- Bevis, Brooke J -- Valastyan, Julie S -- Han, Haesun -- Lindhagen-Persson, Malin -- Reiman, Eric M -- Evans, Denis A -- Bennett, David A -- Olofsson, Anders -- DeJager, Philip L -- Tanzi, Rudolph E -- Caldwell, Kim A -- Caldwell, Guy A -- Lindquist, Susan -- F32 NS067782-02/NS/NINDS NIH HHS/ -- K08 AG034290/AG/NIA NIH HHS/ -- K08AG034290/AG/NIA NIH HHS/ -- P30 AG019610/AG/NIA NIH HHS/ -- P30AG10161/AG/NIA NIH HHS/ -- R01 AG015819/AG/NIA NIH HHS/ -- R01 AG017917/AG/NIA NIH HHS/ -- R01AG15819/AG/NIA NIH HHS/ -- R01AG17917/AG/NIA NIH HHS/ -- Howard Hughes Medical Institute/ -- New York, N.Y. -- Science. 2011 Dec 2;334(6060):1241-5. doi: 10.1126/science.1213210. Epub 2011 Oct 27.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Whitehead Institute for Biomedical Research, Cambridge, MA 02142, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22033521" target="_blank"〉PubMed〈/a〉
    Keywords: Alzheimer Disease/*genetics/*metabolism ; Amyloid beta-Peptides/chemistry/genetics/*metabolism ; Animals ; Animals, Genetically Modified ; Caenorhabditis elegans/cytology/genetics/metabolism ; Cell Membrane/metabolism ; Cells, Cultured ; Clathrin/metabolism ; Cytoskeleton/metabolism ; Disease Susceptibility ; *Endocytosis ; Genetic Association Studies ; Genetic Testing ; Glutamates/metabolism ; Humans ; Monomeric Clathrin Assembly Proteins/genetics/metabolism ; Neurons/physiology ; Peptide Fragments/chemistry/genetics/*metabolism ; Protein Multimerization ; Protein Transport ; Rats ; Risk Factors ; *Saccharomyces cerevisiae/cytology/genetics/growth & development/metabolism ; Saccharomyces cerevisiae Proteins/genetics/metabolism ; Secretory Pathway
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  • 58
    Publication Date: 2011-09-10
    Description: We report that in heart cells, physiologic stretch rapidly activates reduced-form nicotinamide adenine dinucleotide phosphate (NADPH) oxidase 2 (NOX2) to produce reactive oxygen species (ROS) in a process dependent on microtubules (X-ROS signaling). ROS production occurs in the sarcolemmal and t-tubule membranes where NOX2 is located and sensitizes nearby ryanodine receptors (RyRs) in the sarcoplasmic reticulum (SR). This triggers a burst of Ca(2+) sparks, the elementary Ca(2+) release events in heart. Although this stretch-dependent "tuning" of RyRs increases Ca(2+) signaling sensitivity in healthy cardiomyocytes, in disease it enables Ca(2+) sparks to trigger arrhythmogenic Ca(2+) waves. In the mouse model of Duchenne muscular dystrophy, hyperactive X-ROS signaling contributes to cardiomyopathy through aberrant Ca(2+) release from the SR. X-ROS signaling thus provides a mechanistic explanation for the mechanotransduction of Ca(2+) release in the heart and offers fresh therapeutic possibilities.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Prosser, Benjamin L -- Ward, Christopher W -- Lederer, W J -- L40 AR056534/AR/NIAMS NIH HHS/ -- P01 HL67849/HL/NHLBI NIH HHS/ -- R01 HL106059/HL/NHLBI NIH HHS/ -- R01 HL36974/HL/NHLBI NIH HHS/ -- RC2 NR011968/NR/NINR NIH HHS/ -- S10 RR023028/RR/NCRR NIH HHS/ -- T32 HL072751-07/HL/NHLBI NIH HHS/ -- New York, N.Y. -- Science. 2011 Sep 9;333(6048):1440-5. doi: 10.1126/science.1202768.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Center for Biomedical Engineering and Technology (BioMET), University of Maryland School of Medicine, Baltimore, MD 21209, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21903813" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Calcium/metabolism ; Calcium Signaling ; Electric Stimulation ; *Mechanotransduction, Cellular ; Membrane Glycoproteins/antagonists & inhibitors/*metabolism ; Mice ; Mice, Inbred C57BL ; Mice, Inbred mdx ; Microtubules/metabolism ; Muscular Dystrophy, Animal/metabolism/physiopathology ; Myocardial Contraction ; Myocytes, Cardiac/metabolism/*physiology ; NADPH Oxidase/antagonists & inhibitors/*metabolism ; Oxidation-Reduction ; Rats ; Rats, Sprague-Dawley ; Reactive Oxygen Species/*metabolism ; Ryanodine Receptor Calcium Release Channel/metabolism ; Sarcolemma/metabolism ; Sarcoplasmic Reticulum/metabolism ; Signal Transduction
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  • 59
    Publication Date: 2011-01-08
    Description: The role of electrical synapses in synchronizing neuronal assemblies in the adult mammalian brain is well documented. However, their role in learning and memory processes remains unclear. By combining Pavlovian fear conditioning, activity-dependent immediate early gene expression, and in vivo electrophysiology, we discovered that blocking neuronal gap junctions within the dorsal hippocampus impaired context-dependent fear learning, memory, and extinction. Theta rhythms in freely moving rats were also disrupted. Our results show that gap junction-mediated neuronal transmission is a prominent feature underlying emotional memories.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4276370/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4276370/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Bissiere, Stephanie -- Zelikowsky, Moriel -- Ponnusamy, Ravikumar -- Jacobs, Nathan S -- Blair, Hugh T -- Fanselow, Michael S -- P01 NS035985/NS/NINDS NIH HHS/ -- P01NS35985/NS/NINDS NIH HHS/ -- R01 MH062122/MH/NIMH NIH HHS/ -- R01 MH079511/MH/NIMH NIH HHS/ -- R01-MH079511/MH/NIMH NIH HHS/ -- R01-MH62122/MH/NIMH NIH HHS/ -- New York, N.Y. -- Science. 2011 Jan 7;331(6013):87-91. doi: 10.1126/science.1193785.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Psychology, University of California, Los Angeles, CA 90095, USA.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21212357" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Carbenoxolone/pharmacology ; Conditioning, Classical ; Connexins/antagonists & inhibitors/metabolism ; Electrical Synapses/drug effects/*physiology ; Extinction, Psychological ; *Fear ; Gene Expression/drug effects ; Genes, fos ; Hippocampus/*physiology ; *Learning ; Male ; Mefloquine/pharmacology ; *Memory ; Rats ; Rats, Long-Evans ; Theta Rhythm
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  • 60
    Publication Date: 2011-11-19
    Description: How rudimentary movements evolve into sophisticated ones during development remains unclear. It is often assumed that the primitive patterns of neural control are suppressed during development, replaced by entirely new patterns. Here we identified the basic patterns of lumbosacral motoneuron activity from multimuscle recordings in stepping neonates, toddlers, preschoolers, and adults. Surprisingly, we found that the two basic patterns of stepping neonates are retained through development, augmented by two new patterns first revealed in toddlers. Markedly similar patterns were observed also in the rat, cat, macaque, and guineafowl, consistent with the hypothesis that, despite substantial phylogenetic distances and morphological differences, locomotion in several animal species is built starting from common primitives, perhaps related to a common ancestral neural network.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Dominici, Nadia -- Ivanenko, Yuri P -- Cappellini, Germana -- d'Avella, Andrea -- Mondi, Vito -- Cicchese, Marika -- Fabiano, Adele -- Silei, Tiziana -- Di Paolo, Ambrogio -- Giannini, Carlo -- Poppele, Richard E -- Lacquaniti, Francesco -- New York, N.Y. -- Science. 2011 Nov 18;334(6058):997-9. doi: 10.1126/science.1210617.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Laboratory of Neuromotor Physiology, IRCCS Santa Lucia Foundation, Rome, Italy.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/22096202" target="_blank"〉PubMed〈/a〉
    Keywords: Adult ; Animals ; Biological Evolution ; Biomechanical Phenomena ; Cats ; Child, Preschool ; Electromyography ; Humans ; Infant ; Infant, Newborn ; Leg/*physiology ; *Locomotion ; Macaca mulatta ; *Motor Activity ; Motor Neurons/*physiology ; Muscle, Skeletal/innervation/*physiology ; Nerve Net/physiology ; Rats ; Spinal Cord/physiology ; *Walking
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  • 61
    Publication Date: 2011-04-30
    Description: Grid cells recorded in the medial entorhinal cortex of freely moving rats exhibit firing at regular spatial locations and temporal modulation with theta rhythm oscillations (4 to 11 hertz). We analyzed grid cell spatial coding during reduction of network theta rhythm oscillations caused by medial septum (MS) inactivation with muscimol. During MS inactivation, grid cells lost their spatial periodicity, whereas head-direction cells maintained their selectivity. Conjunctive grid-by-head-direction cells lost grid cell spatial periodicity but retained head-direction specificity. All cells showed reduced rhythmicity in autocorrelations and cross-correlations. This supports the hypothesis that spatial coding by grid cells requires theta oscillations, and dissociates the mechanisms underlying the generation of entorhinal grid cell periodicity and head-direction selectivity.〈br /〉〈br /〉〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3252766/" target="_blank"〉〈img src="https://static.pubmed.gov/portal/portal3rc.fcgi/4089621/img/3977009" border="0"〉〈/a〉   〈a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3252766/" target="_blank"〉This paper as free author manuscript - peer-reviewed and accepted for publication〈/a〉〈br /〉〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Brandon, Mark P -- Bogaard, Andrew R -- Libby, Christopher P -- Connerney, Michael A -- Gupta, Kishan -- Hasselmo, Michael E -- MH61492/MH/NIMH NIH HHS/ -- R01 MH060013/MH/NIMH NIH HHS/ -- R01 MH060013-11A1/MH/NIMH NIH HHS/ -- R01 MH060013-12/MH/NIMH NIH HHS/ -- R01 MH060013-13/MH/NIMH NIH HHS/ -- R01 MH061492/MH/NIMH NIH HHS/ -- R01 MH061492-09/MH/NIMH NIH HHS/ -- R01 MH061492-10/MH/NIMH NIH HHS/ -- R01 MH60013/MH/NIMH NIH HHS/ -- New York, N.Y. -- Science. 2011 Apr 29;332(6029):595-9. doi: 10.1126/science.1201652.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Center for Memory and Brain, Department of Psychology, Graduate Program for Neuroscience, Boston University, 2 Cummington Street, Boston, MA 02215, USA. markpb68@bu.edu〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21527714" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Entorhinal Cortex/cytology/*physiology ; Male ; Membrane Potentials ; Motor Activity ; Muscimol/pharmacology ; Nerve Net/physiology ; Neural Pathways ; Neurons/*physiology ; Periodicity ; Rats ; Rats, Long-Evans ; Septum Pellucidum/drug effects/physiology ; *Space Perception ; *Theta Rhythm/drug effects
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    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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