Modeling the Effect of Curvature on the Collective Behavior of Cells Growing New Tissue.
暂无分享,去创建一个
[1] Terenzio Congiu,et al. Morphometry and Patterns of Lamellar Bone in Human Haversian Systems , 2012, Anatomical record.
[2] D. Quacci,et al. Osteoblast‐osteocyte transformation. A SEM densitometric analysis of endosteal apposition in rabbit femur , 2014, Journal of anatomy.
[3] W. Lee,et al. APPOSITIONAL BONE FORMATION IN CANINE BONE: A QUANTITATIVE MICROSCOPIC STUDY USING TETRACYCLINE MARKERS. , 1964, Journal of anatomy.
[4] David W. Smith,et al. Bone refilling in cortical basic multicellular units: insights into tetracycline double labelling from a computational model , 2012, Biomechanics and modeling in mechanobiology.
[5] Manuel Théry,et al. Cell distribution of stress fibres in response to the geometry of the adhesive environment. , 2006, Cell motility and the cytoskeleton.
[6] Raymond A. Serway,et al. Physics for scientists & engineers , 1990 .
[7] R. Newcomb. VISCOSITY SOLUTIONS OF HAMILTON-JACOBI EQUATIONS , 2010 .
[8] Ning Wang,et al. Directional control of lamellipodia extension by constraining cell shape and orienting cell tractional forces , 2002, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[9] David B. Burr,et al. Skeletal Tissue Mechanics , 1998, Springer New York.
[10] R. Martin,et al. Histomorphometric analysis of the effects of osteocyte density on osteonal morphology and remodeling. , 2003, Bone.
[11] Benjamin Geiger,et al. Cell interactions with hierarchically structured nano-patterned adhesive surfaces. , 2009, Soft matter.
[12] Zhang,et al. Dynamic scaling of growing interfaces. , 1986, Physical review letters.
[13] Farshid Guilak,et al. Nanotopography-induced changes in focal adhesions, cytoskeletal organization, and mechanical properties of human mesenchymal stem cells. , 2010, Biomaterials.
[14] C. Please,et al. Pore Geometry Regulates Early Stage Human Bone Marrow Cell Tissue Formation and Organisation , 2013, Annals of Biomedical Engineering.
[15] Alexander A Spector,et al. Emergent patterns of growth controlled by multicellular form and mechanics. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[16] H. Frieboes,et al. Nonlinear modelling of cancer: bridging the gap between cells and tumours , 2010, Nonlinearity.
[17] M. Streeter. Histological Age-at-Death Estimation , 2011 .
[18] Cécile M. Bidan,et al. Modelling the role of surface stress on the kinetics of tissue growth in confined geometries. , 2013, Acta biomaterialia.
[19] John Crank,et al. The Mathematics Of Diffusion , 1956 .
[20] L. Rodella,et al. Morphometric Analysis of the Canal System of Cortical Bone: An Experimental Study in the Rabbit Femur Carried Out with Standard Histology and Micro‐CT , 2010, Anatomia, histologia, embryologia.
[21] Benjamin Geiger,et al. Cell spreading and focal adhesion dynamics are regulated by spacing of integrin ligands. , 2007, Biophysical journal.
[22] Micah Dembo,et al. Influence of type I collagen surface density on fibroblast spreading, motility, and contractility. , 2003, Biophysical journal.
[23] Seán Dineen. Multivariate calculus and geometry , 1998 .
[24] N. Waters,et al. Observations on the rate of maturation of the cat osteon. , 1965, Journal of anatomy.
[25] W. Jee,et al. A model of osteon closure in cortical bone , 1990, Calcified Tissue International.
[26] C. Maggiano. Making the Mold: A Microstructural Perspective on Bone Modeling during Growth and Mechanical Adaptation , 2011 .
[27] A. Parfitt. Osteonal and hemi‐osteonal remodeling: The spatial and temporal framework for signal traffic in adult human bone , 1994, Journal of cellular biochemistry.
[28] Philip Kollmannsberger,et al. Geometry as a Factor for Tissue Growth: Towards Shape Optimization of Tissue Engineering Scaffolds , 2013, Advanced healthcare materials.
[29] M. Dembo,et al. Cell movement is guided by the rigidity of the substrate. , 2000, Biophysical journal.
[30] P. Roberson,et al. Increased bone formation by prevention of osteoblast apoptosis with parathyroid hormone. , 1999, The Journal of clinical investigation.
[31] L. Geris,et al. A computational model for cell/ECM growth on 3D surfaces using the level set method: a bone tissue engineering case study , 2014, Biomechanics and modeling in mechanobiology.
[32] I. S. Maggiano,et al. Methods and theory in bone modeling drift: comparing spatial analyses of primary bone distributions in the human humerus , 2016, Journal of anatomy.
[33] R. LeVeque. Finite Volume Methods for Hyperbolic Problems: Characteristics and Riemann Problems for Linear Hyperbolic Equations , 2002 .
[34] Alex M. Andrew,et al. Level Set Methods and Fast Marching Methods: Evolving Interfaces in Computational Geometry, Fluid Mechanics, Computer Vision, and Materials Science (2nd edition) , 2000 .
[35] Claudio G. Rolli,et al. Switchable adhesive substrates: revealing geometry dependence in collective cell behavior. , 2012, Biomaterials.
[36] P. Lax,et al. On Upstream Differencing and Godunov-Type Schemes for Hyperbolic Conservation Laws , 1983 .
[37] J. Heath,et al. A new hypothesis of contact guidance in tissue cells. , 1976, Experimental cell research.
[38] E. Tadmor,et al. New High-Resolution Central Schemes for Nonlinear Conservation Laws and Convection—Diffusion Equations , 2000 .
[39] L. Roden,et al. Biomimetics for the induction of bone formation , 2010, Expert review of medical devices.
[40] Matthew J. Simpson,et al. Chemotactic and diffusive migration on a nonuniformly growing domain: numerical algorithm development and applications , 2006 .
[41] C. Wilkinson,et al. Reactions of cells to topography. , 1998, Journal of biomaterials science. Polymer edition.
[42] G. Marotti,et al. Number, size and arrangement of osteoblasts in osteons at different stages of formation , 1975, Calcified Tissue Research.
[43] J. Schrooten,et al. A three‐dimensional computational fluid dynamics model of shear stress distribution during neotissue growth in a perfusion bioreactor , 2015, Biotechnology and bioengineering.
[44] Peter Fratzl,et al. The effect of geometry on three-dimensional tissue growth , 2008, Journal of The Royal Society Interface.
[45] Philip Kollmannsberger,et al. How Linear Tension Converts to Curvature: Geometric Control of Bone Tissue Growth , 2012, PloS one.
[46] B D Boyan,et al. Effect of titanium surface roughness on proliferation, differentiation, and protein synthesis of human osteoblast-like cells (MG63). , 1995, Journal of biomedical materials research.
[47] P. Lax. Hyperbolic Systems of Conservation Laws and the Mathematical Theory of Shock Waves , 1987 .
[48] C. S. Chen,et al. Geometric control of cell life and death. , 1997, Science.
[49] J. Dunlop,et al. A theoretical model for tissue growth in confined geometries , 2010 .
[50] Philippe G. LeFloch,et al. The hyperbolic mean curvature flow , 2007, 0712.0091.
[51] P. Buenzli. Osteocytes as a record of bone formation dynamics: a mathematical model of osteocyte generation in bone matrix. , 2014, Journal of theoretical biology.
[52] M. Grayson. The heat equation shrinks embedded plane curves to round points , 1987 .
[53] Cécile M. Bidan,et al. A three-dimensional model for tissue deposition on complex surfaces , 2013, Computer methods in biomechanics and biomedical engineering.
[54] P. Chavrier,et al. Collective migration of an epithelial monolayer in response to a model wound , 2007, Proceedings of the National Academy of Sciences.
[55] D. Quacci,et al. The fibrillar organisation of the osteon and cellular aspects of its development , 2011, Anatomical science international.
[56] J. Langer. Instabilities and pattern formation in crystal growth , 1980 .
[57] A. Curtis,et al. CONTROL OF CELL BEHAVIOR: TOPOLOGICAL FACTORS. , 1964, Journal of the National Cancer Institute.
[58] B D Boyan,et al. Role of material surfaces in regulating bone and cartilage cell response. , 1996, Biomaterials.
[59] N. Hitchin. A panoramic view of riemannian geometry , 2006 .
[60] M. Sheetz,et al. Local force and geometry sensing regulate cell functions , 2006, Nature Reviews Molecular Cell Biology.
[61] R. Martin,et al. Does osteocyte formation cause the nonlinear refilling of osteons? , 2000, Bone.
[62] C. Wilkinson,et al. Topographical control of cell behaviour: II. Multiple grooved substrata. , 1990, Development.
[63] Y. Wang,et al. Cell locomotion and focal adhesions are regulated by substrate flexibility. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[64] W. Kühnel. Differential Geometry: Curves - Surfaces - Manifolds , 2002 .
[65] H. Frost. Tetracycline-based histological analysis of bone remodeling , 2005, Calcified Tissue Research.
[66] D. Deligianni,et al. Effect of surface roughness of hydroxyapatite on human bone marrow cell adhesion, proliferation, differentiation and detachment strength. , 2001, Biomaterials.
[67] Cécile M. Bidan,et al. Gradual conversion of cellular stress patterns into pre-stressed matrix architecture during in vitro tissue growth , 2016, Journal of The Royal Society Interface.