A theoretical model of the endothelial cell morphology due to different waveforms.
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M. Malvè | P. Sáez | M. Martínez | M. Malvè | M. A. Martínez | P. Sáez
[1] Miguel Ángel Martínez,et al. Impedance-based outflow boundary conditions for human carotid haemodynamics , 2014, Computer methods in biomechanics and biomedical engineering.
[2] Manuel Doblaré,et al. Hierarchical micro-adaptation of biological structures by mechanical stimuli , 2013 .
[3] D. Gallo,et al. Helical flow in carotid bifurcation as surrogate marker of exposure to disturbed shear. , 2012, Journal of biomechanics.
[4] Andreas Menzel,et al. Anisotropic density growth of bone-A computational micro-sphere approach , 2012 .
[5] W. H. Goldmann. Mechanotransduction in cells 1 , 2012, Cell Biology International.
[6] S. Safran,et al. Cyclic Stress at mHz Frequencies Aligns Fibroblasts in Direction of Zero Strain , 2011, PloS one.
[7] M. Janmaleki,et al. Effect of uniaxial stretch on morphology and cytoskeleton of human mesenchymal stem cells: static vs. dynamic loading , 2011, Biomedizinische Technik. Biomedical engineering.
[8] Miguel Ángel Martínez,et al. An Anisotropic Microsphere-Based Approach for Fiber Orientation Adaptation in Soft Tissue , 2011, IEEE Transactions on Biomedical Engineering.
[9] J D Humphrey,et al. Perspectives on biological growth and remodeling. , 2011, Journal of the mechanics and physics of solids.
[10] M. Doblaré,et al. On the use of the Bingham statistical distribution in microsphere-based constitutive models for arterial tissue , 2010 .
[11] Frank Baaijens,et al. Modeling collagen remodeling. , 2010, Journal of biomechanics.
[12] R. Leask,et al. The development of 3-D, in vitro, endothelial culture models for the study of coronary artery disease , 2009, Biomedical engineering online.
[13] Victor H Barocas,et al. Image-based multiscale modeling predicts tissue-level and network-level fiber reorganization in stretched cell-compacted collagen gels , 2009, Proceedings of the National Academy of Sciences.
[14] Carlo Sansour,et al. The modelling of fibre reorientation in soft tissue , 2009, Biomechanics and modeling in mechanobiology.
[15] Andreas Menzel,et al. A micro‐sphere‐based remodelling formulation for anisotropic biological tissues , 2009, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[16] Alberto Redaelli,et al. Blood damage safety of prosthetic heart valves. Shear-induced platelet activation and local flow dynamics: a fluid-structure interaction approach. , 2009, Journal of biomechanics.
[17] Anita Driessen-Mol,et al. Quantification of the Temporal Evolution of Collagen Orientation in Mechanically Conditioned Engineered Cardiovascular Tissues , 2009, Annals of Biomedical Engineering.
[18] R. Kaunas,et al. A Dynamic Stochastic Model of Frequency-Dependent Stress Fiber Alignment Induced by Cyclic Stretch , 2009, PloS one.
[19] Alvaro Valencia,et al. Numerical simulation of fluid–structure interaction in stenotic arteries considering two layer nonlinear anisotropic structural model ☆ , 2009 .
[20] S. Safran,et al. Dynamical theory of active cellular response to external stress. , 2008, Physical review. E, Statistical, nonlinear, and soft matter physics.
[21] A. Menzel,et al. Towards an orientation-distribution-based multi-scale approach for remodelling biological tissues , 2008, Computer methods in biomechanics and biomedical engineering.
[22] L. Antiga,et al. Geometry of the Carotid Bifurcation Predicts Its Exposure to Disturbed Flow , 2008, Stroke.
[23] Donald E. Ingber,et al. Tensegrity-based mechanosensing from macro to micro. , 2008, Progress in biophysics and molecular biology.
[24] Paul Steinmann,et al. Time‐dependent fibre reorientation of transversely isotropic continua—Finite element formulation and consistent linearization , 2008 .
[25] S. Safran,et al. Do cells sense stress or strain? Measurement of cellular orientation can provide a clue. , 2008, Biophysical journal.
[26] Samuel A. Safran,et al. Dynamics of cell orientation , 2007 .
[27] A. Menzel,et al. A fibre reorientation model for orthotropic multiplicative growth , 2007, Biomechanics and modeling in mechanobiology.
[28] Frank P. T. Baaijens,et al. Remodelling of the angular collagen fiber distribution in cardiovascular tissues , 2007, Biomechanics and modeling in mechanobiology.
[29] S. Chien. Mechanotransduction and endothelial cell homeostasis: the wisdom of the cell. , 2007, American journal of physiology. Heart and circulatory physiology.
[30] Ignacio Carol,et al. Microplane constitutive model and computational framework for blood vessel tissue. , 2006, Journal of biomechanical engineering.
[31] Pascal Silberzan,et al. Is the mechanical activity of epithelial cells controlled by deformations or forces? , 2005, Biophysical journal.
[32] P. Janmey,et al. Tissue Cells Feel and Respond to the Stiffness of Their Substrate , 2005, Science.
[33] Toshiro Ohashi,et al. Remodeling of vascular endothelial cells exposed to fluid shear stress: experimental and numerical approach , 2005 .
[34] H. Narayanan,et al. Biological remodelling: Stationary energy, configurational change, internal variables and dissipation , 2005, q-bio/0506023.
[35] Andreas Menzel,et al. Modelling of anisotropic growth in biological tissues , 2005 .
[36] K. Grosh,et al. Remodeling of biological tissue: Mechanically induced reorientation of a transversely isotropic chain network , 2004, q-bio/0411037.
[37] Serdar Göktepe,et al. A micro-macro approach to rubber-like materials—Part I: the non-affine micro-sphere model of rubber elasticity , 2004 .
[38] Yuzhi Zhang,et al. Distinct endothelial phenotypes evoked by arterial waveforms derived from atherosclerosis-susceptible and -resistant regions of human vasculature. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[39] Stephen C Cowin,et al. Tissue growth and remodeling. , 2004, Annual review of biomedical engineering.
[40] A. Hazel,et al. Spatial comparison between wall shear stress measures and porcine arterial endothelial permeability. , 2004, American journal of physiology. Heart and circulatory physiology.
[41] K. Garikipati,et al. Material Forces in the Context of Biotissue Remodelling , 2003, q-bio/0312002.
[42] J M Huyghe,et al. Remodelling of continuously distributed collagen fibres in soft connective tissues. , 2003, Journal of biomechanics.
[43] U. Schwarz,et al. Cell organization in soft media due to active mechanosensing , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[44] D. Ingber. Tensegrity I. Cell structure and hierarchical systems biology , 2003, Journal of Cell Science.
[45] C. Bustamante,et al. Ten years of tension: single-molecule DNA mechanics , 2003, Nature.
[46] G. Garcı́a-Cardeña,et al. A new in vitro model to evaluate differential responses of endothelial cells to simulated arterial shear stress waveforms. , 2002, Journal of biomechanical engineering.
[47] J D Humphrey,et al. Stress, strain, and mechanotransduction in cells. , 2001, Journal of biomechanical engineering.
[48] K. Hayakawa,et al. Dynamic reorientation of cultured cells and stress fibers under mechanical stress from periodic stretching. , 2001, Experimental cell research.
[49] William E. Kraus,et al. Orientation and length of mammalian skeletal myocytes in response to a unidirectional stretch , 2000, Cell and Tissue Research.
[50] R. Ogden,et al. A New Constitutive Framework for Arterial Wall Mechanics and a Comparative Study of Material Models , 2000 .
[51] A M Malek,et al. Mechanism of endothelial cell shape change and cytoskeletal remodeling in response to fluid shear stress. , 1996, Journal of cell science.
[52] A. Gotlieb,et al. In vivo modulation of endothelial F-actin microfilaments by experimental alterations in shear stress. , 1989, Arteriosclerosis.
[53] C F Dewey,et al. Turbulent fluid shear stress induces vascular endothelial cell turnover in vitro. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[54] R M Nerem,et al. Correlation of Endothelial Cell Shape and Wall Shear Stress in a Stenosed Dog Aorta , 1986, Arteriosclerosis.
[55] D. Ku,et al. Pulsatile Flow and Atherosclerosis in the Human Carotid Bifurcation: Positive Correlation between Plaque Location and Low and Oscillating Shear Stress , 1985, Arteriosclerosis.
[56] A K Harris,et al. Connective tissue morphogenesis by fibroblast traction. I. Tissue culture observations. , 1982, Developmental biology.
[57] Andreas Menzel,et al. Anisotropic micro-sphere-based finite elasticity applied to blood vessel modelling , 2009 .
[58] J. D. Humphrey,et al. Need for a Continuum Biochemomechanical Theory of Soft Tissue and Cellular Growth and Remodeling , 2009 .
[59] Roger D. Kamm,et al. Cytoskeletal mechanics : models and measurements , 2006 .
[60] Barbara M. Johnston,et al. Non-Newtonian blood flow in human right coronary arteries: transient simulations. , 2006, Journal of biomechanics.
[61] Jerrold E. Marsden,et al. Introduction to Mechanics and Symmetry: A Basic Exposition of Classical Mechanical Systems , 1999 .
[62] S Chien,et al. Shear stress induces spatial reorganization of the endothelial cell cytoskeleton. , 1998, Cell motility and the cytoskeleton.
[63] O. Kratky,et al. Röntgenuntersuchung gelöster Fadenmoleküle , 1949 .