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  • 1
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    Unknown
    American Association for the Advancement of Science (AAAS)
    Publication Date: 1999-03-05
    Description: The serial endosymbiosis theory is a favored model for explaining the origin of mitochondria, a defining event in the evolution of eukaryotic cells. As usually described, this theory posits that mitochondria are the direct descendants of a bacterial endosymbiont that became established at an early stage in a nucleus-containing (but amitochondriate) host cell. Gene sequence data strongly support a monophyletic origin of the mitochondrion from a eubacterial ancestor shared with a subgroup of the alpha-Proteobacteria. However, recent studies of unicellular eukaryotes (protists), some of them little known, have provided insights that challenge the traditional serial endosymbiosis-based view of how the eukaryotic cell and its mitochondrion came to be. These data indicate that the mitochondrion arose in a common ancestor of all extant eukaryotes and raise the possibility that this organelle originated at essentially the same time as the nuclear component of the eukaryotic cell rather than in a separate, subsequent event.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Gray, M W -- Burger, G -- Lang, B F -- New York, N.Y. -- Science. 1999 Mar 5;283(5407):1476-81.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Biochemistry, Dalhousie University, Halifax, Nova Scotia B3H 4H7, Canada. M.W.Gray@Dal.Ca〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/10066161" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; Archaea/genetics ; Bacteria/genetics ; *Biological Evolution ; DNA, Mitochondrial/chemistry/*genetics ; *Eukaryotic Cells/physiology/ultrastructure ; Evolution, Molecular ; Genes ; Mitochondria/*genetics ; Models, Biological ; Phylogeny ; Symbiosis
    Print ISSN: 0036-8075
    Electronic ISSN: 1095-9203
    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 2
    Publication Date: 2005-06-25
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Tyers, Mike -- Brown, Eric -- Andrews, David W -- Bergeron, John J M -- Boone, Charles -- Bremner, Roderick -- Bussey, Howard A -- Cross, James C -- Davies, Julian E -- Desjardins, Michel -- Dick, John E -- Dumont, Daniel J -- Durocher, Daniel -- Ellison, Michael J -- Golding, G Brian -- Gray, Michael W -- Harrington, Lea A -- Hieter, Philip A -- Johnston, Gerald -- Kelvin, David J -- McCarry, Brian E -- Michnick, Stephen W -- Ouellette, Francis -- Pearlman, Ron E -- Penn, Linda J Z -- Pelletier, Jerry -- Rachubinski, Richard A -- Rennie, Paul S -- Rotin, Daniela -- Rottapel, Robert -- Sadowski, Ivan -- Sicheri, Frank -- Siminovitch, Lou -- Sonenberg, Nahum -- Siu, K W Michael -- Tremblay, Michel L -- Winegarden, Neil -- Wozniak, Richard W -- Wright, Gerard D -- Woodgett, James R -- New York, N.Y. -- Science. 2005 Jun 24;308(5730):1867.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/15976286" target="_blank"〉PubMed〈/a〉
    Keywords: Canada ; Financing, Government ; Genome ; *Research Support as Topic
    Print ISSN: 0036-8075
    Electronic ISSN: 1095-9203
    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 3
    Publication Date: 2012-12-04
    Description: Cryptophyte and chlorarachniophyte algae are transitional forms in the widespread secondary endosymbiotic acquisition of photosynthesis by engulfment of eukaryotic algae. Unlike most secondary plastid-bearing algae, miniaturized versions of the endosymbiont nuclei (nucleomorphs) persist in cryptophytes and chlorarachniophytes. To determine why, and to address other fundamental questions about eukaryote-eukaryote endosymbiosis, we sequenced the nuclear genomes of the cryptophyte Guillardia theta and the chlorarachniophyte Bigelowiella natans. Both genomes have 〉21,000 protein genes and are intron rich, and B. natans exhibits unprecedented alternative splicing for a single-celled organism. Phylogenomic analyses and subcellular targeting predictions reveal extensive genetic and biochemical mosaicism, with both host- and endosymbiont-derived genes servicing the mitochondrion, the host cell cytosol, the plastid and the remnant endosymbiont cytosol of both algae. Mitochondrion-to-nucleus gene transfer still occurs in both organisms but plastid-to-nucleus and nucleomorph-to-nucleus transfers do not, which explains why a small residue of essential genes remains locked in each nucleomorph.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Curtis, Bruce A -- Tanifuji, Goro -- Burki, Fabien -- Gruber, Ansgar -- Irimia, Manuel -- Maruyama, Shinichiro -- Arias, Maria C -- Ball, Steven G -- Gile, Gillian H -- Hirakawa, Yoshihisa -- Hopkins, Julia F -- Kuo, Alan -- Rensing, Stefan A -- Schmutz, Jeremy -- Symeonidi, Aikaterini -- Elias, Marek -- Eveleigh, Robert J M -- Herman, Emily K -- Klute, Mary J -- Nakayama, Takuro -- Obornik, Miroslav -- Reyes-Prieto, Adrian -- Armbrust, E Virginia -- Aves, Stephen J -- Beiko, Robert G -- Coutinho, Pedro -- Dacks, Joel B -- Durnford, Dion G -- Fast, Naomi M -- Green, Beverley R -- Grisdale, Cameron J -- Hempel, Franziska -- Henrissat, Bernard -- Hoppner, Marc P -- Ishida, Ken-Ichiro -- Kim, Eunsoo -- Koreny, Ludek -- Kroth, Peter G -- Liu, Yuan -- Malik, Shehre-Banoo -- Maier, Uwe G -- McRose, Darcy -- Mock, Thomas -- Neilson, Jonathan A D -- Onodera, Naoko T -- Poole, Anthony M -- Pritham, Ellen J -- Richards, Thomas A -- Rocap, Gabrielle -- Roy, Scott W -- Sarai, Chihiro -- Schaack, Sarah -- Shirato, Shu -- Slamovits, Claudio H -- Spencer, David F -- Suzuki, Shigekatsu -- Worden, Alexandra Z -- Zauner, Stefan -- Barry, Kerrie -- Bell, Callum -- Bharti, Arvind K -- Crow, John A -- Grimwood, Jane -- Kramer, Robin -- Lindquist, Erika -- Lucas, Susan -- Salamov, Asaf -- McFadden, Geoffrey I -- Lane, Christopher E -- Keeling, Patrick J -- Gray, Michael W -- Grigoriev, Igor V -- Archibald, John M -- BB/G00885X/1/Biotechnology and Biological Sciences Research Council/United Kingdom -- Howard Hughes Medical Institute/ -- England -- Nature. 2012 Dec 6;492(7427):59-65. doi: 10.1038/nature11681. Epub 2012 Nov 28.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Biochemistry and Molecular Biology, Dalhousie University, Halifax, Nova Scotia B3H 4R2, Canada.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/23201678" target="_blank"〉PubMed〈/a〉
    Keywords: Algal Proteins/genetics/metabolism ; Alternative Splicing/genetics ; Cell Nucleus/*genetics ; Cercozoa/cytology/*genetics/metabolism ; Cryptophyta/cytology/*genetics/metabolism ; Cytosol/metabolism ; *Evolution, Molecular ; Gene Duplication/genetics ; Gene Transfer, Horizontal/genetics ; Genes, Essential/genetics ; Genome/*genetics ; Genome, Mitochondrial/genetics ; Genome, Plant/genetics ; Genome, Plastid/genetics ; Molecular Sequence Data ; *Mosaicism ; Phylogeny ; Protein Transport ; Proteome/genetics/metabolism ; Symbiosis/*genetics ; Transcriptome/genetics
    Print ISSN: 0028-0836
    Electronic ISSN: 1476-4687
    Topics: Biology , Chemistry and Pharmacology , Medicine , Natural Sciences in General , Physics
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  • 4
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    Unknown
    American Association for the Advancement of Science (AAAS)
    Publication Date: 1993-02-05
    Description: With the discovery of RNA editing, a process whereby the primary sequence of RNA is altered after transcription, traditional concepts of genetic information transfer had to be revised. The known RNA editing systems act mainly on messenger RNAs, introducing sequence changes that alter their coding properties. An editing system that acts on transfer RNAs is described here. In the mitochondria of Acanthamoeba castellanii, an amoeboid protozoan, certain transfer RNAs differ in sequence from the genes that encode them. The changes consist of single-nucleotide conversions (U to A, U to G, and A to G) that appear to arise posttranscriptionally, are localized in the acceptor stem, and have the effect of correcting mismatched base pairs. Editing thus restores the base pairing expected of a normal transfer RNA in this region.〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Lonergan, K M -- Gray, M W -- New York, N.Y. -- Science. 1993 Feb 5;259(5096):812-6.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Biochemistry, Dalhousie University, Halifax, Nova Scotia, Canada.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/8430334" target="_blank"〉PubMed〈/a〉
    Keywords: Acanthamoeba/*genetics ; Animals ; Base Sequence ; Blotting, Southern ; DNA, Mitochondrial/*genetics ; Mitochondria/physiology ; Molecular Sequence Data ; Nucleic Acid Conformation ; Oligodeoxyribonucleotides ; RNA, Transfer/chemistry/*genetics ; RNA, Transfer, Ala/chemistry/genetics ; RNA, Transfer, Asp/chemistry/genetics ; RNA, Transfer, Met/chemistry/genetics ; RNA, Transfer, Pro/chemistry/genetics
    Print ISSN: 0036-8075
    Electronic ISSN: 1095-9203
    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 5
    Publication Date: 2010-11-13
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Gray, Michael W -- Lukes, Julius -- Archibald, John M -- Keeling, Patrick J -- Doolittle, W Ford -- New York, N.Y. -- Science. 2010 Nov 12;330(6006):920-1. doi: 10.1126/science.1198594.〈br /〉〈span class="detail_caption"〉Author address: 〈/span〉Department of Biochemistry and Molecular Biology, Dalhousie University, Halifax, Nova Scotia B3H 1X5, Canada.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/21071654" target="_blank"〉PubMed〈/a〉
    Keywords: Animals ; *Biological Evolution ; *Cell Physiological Processes ; Genome, Mitochondrial ; Introns ; Mitochondria/genetics/physiology ; Models, Biological ; Mutation ; RNA Editing ; RNA Splicing ; Ribosomes/physiology ; Selection, Genetic ; Spliceosomes/genetics/physiology
    Print ISSN: 0036-8075
    Electronic ISSN: 1095-9203
    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 6
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    Unknown
    American Association for the Advancement of Science (AAAS)
    Publication Date: 1981-01-16
    Description: 〈br /〉〈span class="detail_caption"〉Notes: 〈/span〉Schafer, A T -- Gray, M W -- New York, N.Y. -- Science. 1981 Jan 16;211(4479):231.〈br /〉〈span class="detail_caption"〉Record origin:〈/span〉 〈a href="http://www.ncbi.nlm.nih.gov/pubmed/17748007" target="_blank"〉PubMed〈/a〉
    Print ISSN: 0036-8075
    Electronic ISSN: 1095-9203
    Topics: Biology , Chemistry and Pharmacology , Computer Science , Medicine , Natural Sciences in General , Physics
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  • 7
    Electronic Resource
    Electronic Resource
    s.l. : American Chemical Society
    Biochemistry 20 (1981), S. 4022-4029 
    ISSN: 1520-4995
    Source: ACS Legacy Archives
    Topics: Biology , Chemistry and Pharmacology
    Type of Medium: Electronic Resource
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  • 8
    ISSN: 1520-4995
    Source: ACS Legacy Archives
    Topics: Biology , Chemistry and Pharmacology
    Type of Medium: Electronic Resource
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  • 9
    Electronic Resource
    Electronic Resource
    s.l. : American Chemical Society
    Biochemistry 13 (1974), S. 5453-5463 
    ISSN: 1520-4995
    Source: ACS Legacy Archives
    Topics: Biology , Chemistry and Pharmacology
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  • 10
    Electronic Resource
    Electronic Resource
    s.l. : American Chemical Society
    Biochemistry 15 (1976), S. 3046-3051 
    ISSN: 1520-4995
    Source: ACS Legacy Archives
    Topics: Biology , Chemistry and Pharmacology
    Type of Medium: Electronic Resource
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