ExLibris header image
SFX Logo
Title: Capacitively coupled electric fields accelerate proliferation of osteoblast-like primary cells and increase bone extracellular matrix formation in vitro
Source:

European Biophysics Journal With Biophysics Letters [0175-7571] Hartig, Mareke yr:2000


Collapse list of basic services Basic
Full text
Full text available via SpringerLINK Contemporary 1997-Present
GO
Document delivery
Request document via Library/Bibliothek GO
Users interested in this article also expressed an interest in the following:
1. Lin, Y. "In Vitro Effects of Low Frequency Electromagnetic Fields on Osteoblast Proliferation and Maturation in an Inflammatory Environment." Bioelectromagnetics 32.7 (2011): 552-560. Link to Full Text for this item Link to SFX for this item
2. Brighton, Zhenyu T. "Up-regulation of bone morphogenetic proteins in cultured murine bone cells with use of specific electric fields." Journal of bone and joint surgery 88A.5 (2006): 1053-1065. Link to SFX for this item
3. Webster, T. "Greater osteoblast proliferation on anodized nanotubular titanium upon electrical stimulation." International journal of nanomedicine 3.4 (2008): 477-485. Link to Full Text for this item Link to SFX for this item
4. McLeod, Clinton J. "Optimization of electric field parameters for the control of bone remodeling: exploitation of an indigenous mechanism for the prevention of osteopenia." Journal of bone and mineral research 8.S2 (1993): 573-81. Link to SFX for this item
5. Britland, S. "Embryonic Xenopus neurites integrate and respond to simultaneous electrical and adhesive guidance cues." Experimental cell research 226.1 (1996): 31-38. Link to Full Text for this item Link to SFX for this item
6. Wiesmann, H.-P. P. "Electrical stimulation influences mineral formation of osteoblast-like cells in vitro." Biochimica et biophysica acta. Molecular cell research 1538.1 (2001): 28-37. Link to Full Text for this item Link to SFX for this item
7. Lavine, L S. "Electrical stimulation of repair of bone." Journal of Bone and Joint Surgery. American Volume 69.4 (1987): 626-630. Link to SFX for this item
8. Morimoto, S. "Electromagnetic fields inhibit endothelin-1 production stimulated by thrombin in endothelial cells." The Journal of International Medical Research 33.5 (2005): 545-54. Link to SFX for this item
9. Fini, M. "The effect of pulsed electromagnetic fields on the osteointegration of hydroxyapatite implants in cancellous bone: a morphologic and microstructural in vivo study." Journal of orthopaedic research 20.4 (2002): 756-763. Link to Full Text for this item Link to SFX for this item
10. Baldi, Brian J J. "A pilot investigation of the effect of extremely low frequency pulsed electromagnetic fields on humans' heart rate variability." Bioelectromagnetics 28.1 (2006): 64-8. Link to Full Text for this item Link to SFX for this item
11. Zhuang, H. "Electrical stimulation induces the level of TGF-beta1 mRNA in osteoblastic cells by a mechanism involving calcium/calmodulin pathway." Biochemical and biophysical research communications 237.2 (1997): 225-9. Link to Full Text for this item Link to SFX for this item
12. Brighton, C T T. "In vitro bone-cell response to a capacitively coupled electrical field. The role of field strength, pulse pattern, and duty cycle." Clinical orthopaedics and related research 285 (1993): 255-262. Link to SFX for this item
13. Ozawa, H. "Electric fields stimulate DNA synthesis of mouse osteoblast-like cells (MC3T3-E1) by a mechanism involving calcium ions." Journal of cellular physiology 138.3 (1989): 477-483. Link to Full Text for this item Link to SFX for this item
14. Yonemori K, K. "Early effects of electrical stimulation on osteogenesis." Bone 19.2 (1996): 173-80. Link to Full Text for this item Link to SFX for this item
15. Fischer, J. "Mechanical, thermal, and chemical analyses of the binary system Au-Ti in the development of a dental alloy." Journal of biomedical materials research 52.4 (2000): 678-686. Link to Full Text for this item Link to SFX for this item
16. LONNER, C. "THORACOSCOPIC SPINAL FUSION COMPARED WITH POSTERIOR SPINAL FUSION FOR THE TREATMENT OF THORACIC ADOLESCENT IDIOPATHIC SCOLIOSIS." Journal of bone and joint surgery. American volume 88-A.5 (2006): 1022-1034. Link to SFX for this item
17. Sollazzo, V. "Correlation between pulsed electromagnetic fields exposure time and cell proliferation increase in human osteosarcoma cell lines and human normal osteoblast cells in vitro." Bioelectromagnetics 20.3 (1999): 177-82. Link to Full Text for this item Link to SFX for this item
18. Belancio, Victoria P. "LINE dancing in the human genome: transposable elements and disease." Genome medicine 1.10 (2009): 97-97. Link to Full Text for this item Link to SFX for this item
19. BeDell, Kimberly K. "EFFECTS OF FUNCTIONAL ELECTRICAL STIMULATION-INDUCED LOWER EXTREMITY CYCLING ON BONE DENSITY OF SPINAL CORD-INJURED PATIENTS1." American journal of physical medicine & rehabilitation 75.1 (1996): 29-34. Link to SFX for this item
20. Chang, Kyle, K. "Pulsed electromagnetic fields stimulation affects osteoclast formation by modulation of osteoprotegerin, RANK ligand and macrophage colony-stimulating factor." Journal of orthopaedic research 23.6 (2005): 1308-1314. Link to Full Text for this item Link to SFX for this item
View More...
View Less...
Select All Clear All

Expand list of advanced services Advanced