Differential responses of adult cardiac fibroblasts to in vitro biaxial strain patterns.
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T Delhaas | A D McCulloch | A. McCulloch | T. Delhaas | A. A. Lee | F. Villarreal | A A Lee | F J Villarreal | Ann A. Lee | Andrew D. McCulloch | F. Villarreal
[1] S. Kondo,et al. Regulation of extracellular matrix by mechanical stress in rat glomerular mesangial cells. , 1996, The Journal of clinical investigation.
[2] T Delhaas,et al. An equibiaxial strain system for cultured cells. , 1996, The American journal of physiology.
[3] J.M.A. Lenihan,et al. Biomechanics — Mechanical properties of living tissue , 1982 .
[4] J. Covell,et al. Increase in Cross‐Linking of Type I and Type III Collagens Associated With Volume‐Overload Hypertrophy , 1988, Circulation research.
[5] Y. Mori,et al. Mechanical stretch induces enhanced expression of angiotensin II receptor subtypes in neonatal rat cardiac myocytes. , 1996, Circulation research.
[6] A. Vaheri,et al. Sequential appearance of fibronectin and collagen in experimental granulation tissue. , 1980, Laboratory investigation; a journal of technical methods and pathology.
[7] D E Ingber,et al. Cytoskeletal filament assembly and the control of cell spreading and function by extracellular matrix. , 1995, Journal of cell science.
[8] F. Villarreal,et al. Cardiac hypertrophy-induced changes in mRNA levels for TGF-beta 1, fibronectin, and collagen. , 1992, The American journal of physiology.
[9] P. Hunter,et al. Tissue remodeling with micro-structurally based material laws. , 1997, Advances in experimental medicine and biology.
[10] C. S. Chen,et al. Geometric control of cell life and death. , 1997, Science.
[11] J. Sadoshima,et al. Autocrine release of angiotensin II mediates stretch-induced hypertrophy of cardiac myocytes in vitro , 1993, Cell.
[12] G. Booz,et al. Molecular signalling mechanisms controlling growth and function of cardiac fibroblasts. , 1995, Cardiovascular research.
[13] E Ruoslahti,et al. Extracellular signal-regulated kinase and c-Jun NH2-terminal kinase activation by mechanical stretch is integrin-dependent and matrix-specific in rat cardiac fibroblasts. , 1998, The Journal of clinical investigation.
[14] Y. Fung,et al. Biomechanics: Mechanical Properties of Living Tissues , 1981 .
[15] M. Eghbali,et al. Differential effects of transforming growth factor-beta 1 and phorbol myristate acetate on cardiac fibroblasts. Regulation of fibrillar collagen mRNAs and expression of early transcription factors. , 1991, Circulation research.
[16] J. Bishop,et al. Mechanical load enhances the stimulatory effect of serum growth factors on cardiac fibroblast procollagen synthesis. , 1997, Journal of molecular and cellular cardiology.
[17] C. Long,et al. A growth factor for cardiac myocytes is produced by cardiac nonmyocytes. , 1991, Cell regulation.
[18] G. Gibbons,et al. Vascular smooth muscle cell hypertrophy vs. hyperplasia. Autocrine transforming growth factor-beta 1 expression determines growth response to angiotensin II. , 1992, The Journal of clinical investigation.
[19] N. Kim,et al. Regulation of myocardial extracellular matrix components by mechanical and chemical growth factors. , 1998, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.
[20] D E Ingber,et al. Cell shape, cytoskeletal mechanics, and cell cycle control in angiogenesis. , 1995, Journal of biomechanics.
[21] T. Borg,et al. Exercise- and hypertension-induced collagen changes are related to left ventricular function in rat hearts. , 1996, The American journal of physiology.
[22] T. Borg,et al. Collagen expression in mechanically stimulated cardiac fibroblasts. , 1991, Circulation research.
[23] Y C Fung,et al. Use of intrinsic modes in biology: examples of indicial response of pulmonary blood pressure to +/- step hypoxia. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[24] R. Virmani,et al. Multiple arterial injuries and prolonged cholesterol feeding do not increase percent lumen stenosis: impact of compensatory enlargement in the microswine model. , 1998, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.
[25] J. H. Chen,et al. Strain fields on cell stressing devices employing clamped circular elastic diaphragms as substrates. , 1992, Journal of biomechanical engineering.
[26] B. Jugdutt,et al. Healing after myocardial infarction in the dog: changes in infarct hydroxyproline and topography. , 1986, Journal of the American College of Cardiology.
[27] Andrew D McCulloch,et al. Three-dimensional residual strain in midanterior canine left ventricle. , 1997, American journal of physiology. Heart and circulatory physiology.
[28] M. Daemen,et al. Collagen remodeling after myocardial infarction in the rat heart. , 1995, The American journal of pathology.
[29] J. Sadoshima,et al. Molecular characterization of the stretch-induced adaptation of cultured cardiac cells. An in vitro model of load-induced cardiac hypertrophy. , 1992, The Journal of biological chemistry.
[30] G. L’italien,et al. Device for the application of a dynamic biaxially uniform and isotropic strain to a flexible cell culture membrane , 1994, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[31] John L. Williams,et al. A method for inducing equi-biaxial and uniform strains in elastomeric membranes used as cell substrates. , 1994, Journal of biomechanics.
[32] K. Hirata,et al. Stretch force on vascular smooth muscle cells enhances oxidation of LDL via superoxide production. , 1998, The American journal of physiology.
[33] Yasuteru Muragaki,et al. Stretch-Induced Collagen Synthesis in Cultured Smooth Muscle Cells from Rabbit Aortic Media and a Possible Involvement of Angiotensin II and Transforming Growth Factor-β , 1998, Journal of Vascular Research.
[34] M. Eghbali-Webb. Molecular biology of collagen matrix in the heart , 1995 .
[35] V. Ferrans,et al. Immunohistochemical study of fibronectin in experimental myocardial infarction. , 1990, The American journal of pathology.
[36] A. McCulloch,et al. Angiotensin II stimulates the autocrine production of transforming growth factor-β1 in adult rat cardiac fibroblasts , 1995 .
[37] J W Covell,et al. Functional implications of myocardial scar structure. , 1997, The American journal of physiology.
[38] J. Frangos,et al. Equibiaxial strain and strain rate stimulate early activation of G proteins in cardiac fibroblasts. , 1998, American journal of physiology. Cell physiology.
[39] S. Shroff,et al. Collagen in the hypertrophied, pressure-overloaded myocardium. , 1987, Circulation.
[40] G. Laurent,et al. Mechanical Load and Polypeptide Growth Factors Stimulate Cardiac Fibroblast Activity , 1995, Annals of the New York Academy of Sciences.