1,010
Views
26
CrossRef citations to date
0
Altmetric
Original

Temporal Effects of Cyclic Stretching on Distribution and Gene Expression of Integrin and Cytoskeleton by Ligament Fibroblasts In Vitro

, , , , , & show all
Pages 263-269 | Received 04 Aug 2008, Accepted 23 Feb 2009, Published online: 11 Sep 2009

REFERENCES

  • Khatod M., Amiel D. Ligament biochemistry and physiology. Daniel's Knee Injuries, RA. Pedowitz, JJ. O’Connor, WH. Akeson. Lippincott Williams and Wilkins, Philadelphia, PA 2003; 31–42
  • Ralph J. R., Waggett A. D., Benjamin M. Actin stress fibres and cell-cell adhesion molecules in tendon: Organisation in vivo and response to mechanical loading of tendon cells in vitro. Matrix Biol. 2002; 21: 67–74
  • Kjaer M. Role of extracellular matrix in adaptation of tendon and skeletal muscle to mechanical loading. Physiol. Rev. 2004; 84(2)649–698
  • Wang N., Butler J. P., Ingber D. E. Mechanotransduction across the cell surface and through the cytoskeleton. Science 1993; 260: 1124–1127
  • Wang J. H., Thampatty B. P. An introductory review of cell mechanobiology. Biomechan. Model Mechanobiol. 2006; 5: 1–16
  • Kamm R. D., Kaazempur-Mofrad M. R. On the molecular basis for mechanotransduction. Mech. Chem. Biosyst. 2004; 1(3)201–209
  • Tsuruta D., Jones J. C.R. The vimentin cytoskeleton regulates focal contact size and adhesion of endothelial cells subjected to shear stress. J. Cell. Sci., , et al, 2003; 116: 4977–4984
  • Wang H., Ip W., Boissy R., Grood E. S. Cell orientation response to cyclically deformed substrates: Experimental validation of a cell model. J. Biomech. 1995; 28(12)1543–1552
  • Naruse K., Yamada T., Sai X. R., Hamaguchi M., Sokabe M. Pp125FAK is required for stretch dependent morphological response of endothelial cells. Oncogene 1998; 17: 455–463
  • Naruse K., Yamada T., Sokabe M. Involvement of SA channels in orienting response of cultured endothelial cells to cyclic stretch. Am. J. Physiol. 1998; 274: 1532–1538
  • Hayakawa K., Sato N., Obinata T. Dynamic reorientation of cultured cells and stress fibers under mechanical stress from periodic stretching. Exp. Cell. Res. 2001; 268: 104–114
  • Ng C. P., Hinz B., Swartz M. A. Interstitial fluid flow induces myofibroblast differentiation and collagen alignment in vitro. J. Cell. Sci. 2005; 118(20)4731–4739
  • Sarasa-Renedo A., Chiquet M. Mechanical signals regulating extracellular matrix gene expression in fibroblasts. Scand. J. Med. Sci. Sports 2005; 15: 223–230
  • Matsumoto T., Yung Y. C., Fischbach C., Kong H. J., Nakaoka R., Mooney D. J. Mechanical strain regulates endothelial cell patterning in vitro. Tiss. Eng. 2007; 13(1)207–217
  • Wang J. H., Grood E. S. The strain magnitude and contact guidance determine orientation response of fibroblasts to cyclic substrate strains. Connect. Tiss. Res. 2000; 41(1)29–36
  • Wang J. H., Grood E. S., Florer J., Wenstrup R. Alignment and proliferation of MC3T3-E1 osteoblasts in microgrooved silicon substrata subjected to cyclic stretching. J. Biomech. 2000; 33(6)729–735
  • Wang J. H., Yang G., Li Z. Controlling cell responses to cyclic mechanical stretching. Ann. Biomed. Eng. 2005; 33(3)337–342
  • Hannafin J. A., Attia E. A., Henshaw R., Warren R. F., Bhargava M. M. Effect of cyclic strain and plating matrix on cell proliferation and integrin expression by ligament fibroblasts. J. Orthop. Res. 2006; 24(2)149–158
  • Henshaw D. R., Attia E., Bhargava M., Hanaffin J. A. Canine ACL fibroblast Integrin expression and cell alignment in response to cyclic tensile strain in three-dimentional collagen gels. J. Orthop. Res. 2005; 24(3)481–490
  • Ng C. P., Swartz M. A. Fibroblast alignment under interstitial fluid flow using a novel 3-D tissue culture model. Am. J. Physiol. Heart Circ. Physiol. 2003; 284(5)H1771–1777
  • Breen E. C. Mechanical strain increases in type 1 collagen expression in pulmonary fibroblasts in vitro. J. Applied Physiol. 2000; 88: 203–209
  • Kim S. G., Akaike T., Sasagawa T., Atomi Y., Kurosawa H. Gene expression of Type-1 and Type-3 collagen by mechanical stretch in anterior cruciate ligament cells. Cell Struct. Funct. 2002; 27: 139–144
  • Wiig M. E., Amiel D., Ivarsson M., Nagineni C. N., Wallace C. D., Afors K. E. Type l procollagen gene expression in normal and early healing of the medial collateral and anterior cruciate ligaments in rabbits: An in situ hybridization study. J. Orthop. Res. 1991; 9(3)374–382
  • Hsieh A. H., Sah R. L., Paul Sung K. L. Biomechanical regulation of type l collagen gene expression in ACLs in organ culture. J. Orthop. Res. 2002; 20(2)325–331
  • Wang J. H., Goldschmidt-Clemont P., Wille J., Yin F. C. Specificity of endothelial cell reorientation in response to cyclic mechanical stretching. J. Biomech. 2001; 34(12)1563–1572
  • Jones M. C., Caswell P. T., Norman J. C. Endocytic recycling pathways: Emerging regulators of cell migration. Curr. Opin. Cell Biol. 2006; 18(5)549–557
  • Imamura H., Takaishi K., Nakano K., Kodama A., Oishi H., Shiozaki H., Monden M., Sasaki T., Takai Y. Rho and Rab small G proteins co-ordinately reorganize stress fibers and focal adhesions in MDCK cells. Mol. Biol. Cell. 1998; 9: 2561–2575
  • White D. P., Caswell P. T., Norman J. C. Alpha v beta3 and alpha5β1 integrin recycling pathways dictate downstream Rho kinase signalling to regulate persistent cell migration. J. Cell. Biol. 2007; 177(3)515–525