Modelling the growth of solid tumours and incorporating a method for their classification using nonlinear elasticity theory
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[1] J. Folkman. The vascularization of tumors. , 1976, Scientific American.
[2] Shymko Rm,et al. Cellular and geometric control of tissue growth and mitotic instability. , 1976 .
[3] G. Nicolson. Trans-membrane control of the receptors on normal and tumor cells. II. Surface changes associated with transformation and malignancy. , 1976, Biochimica et biophysica acta.
[4] H. Demiray. Large deformation analysis of some basic problems in biophysics. , 1976, Bulletin of mathematical biology.
[5] L. Trainor,et al. Geometrical aspects of surface morphogenesis. , 1989, Journal of theoretical biology.
[6] H. Greenspan,et al. On fluid-mechanical simulations of cell division and movement. , 1978, Journal of theoretical biology.
[7] J. Adam. A simplified mathematical model of tumor growth , 1986 .
[8] M Gyllenberg,et al. Quiescence as an explanation of Gompertzian tumor growth. , 1989, Growth, development, and aging : GDA.
[9] A. Needleman. Inflation of spherical rubber balloons , 1977 .
[10] L. Norton,et al. Predicting the course of Gompertzian growth , 1976, Nature.
[11] T. Williams,et al. Stochastic Model for Abnormal Clone Spread through Epithelial Basal Layer , 1972, Nature.
[12] H Demiray. Large deformation analysis of some soft biological tissues. , 1981, Journal of biomechanical engineering.
[13] H. Schwegler,et al. Physico-chemical model of a protocell , 1985, Journal of mathematical biology.
[14] W. H. Reid,et al. The Theory of Elasticity , 1960 .
[15] A C Burton,et al. Rate of growth of solid tumours as a problem of diffusion. , 1966, Growth.
[16] J. Humphrey,et al. On constitutive relations and finite deformations of passive cardiac tissue: I. A pseudostrain-energy function. , 1987, Journal of biomechanical engineering.
[17] Rangaraj M. Rangayyan,et al. Adaptive-neighborhood image processing , 1992, Other Conferences.
[18] D. Richardson. Random growth in a tessellation , 1973, Mathematical Proceedings of the Cambridge Philosophical Society.
[19] R. Sutherland,et al. Growth of multicell spheroids in tissue culture as a model of nodular carcinomas. , 1971, Journal of the National Cancer Institute.
[20] N Paweletz,et al. Tumor-related angiogenesis. , 1989, Critical reviews in oncology/hematology.
[21] P F Gou,et al. Strain energy function for biological tissues. , 1970, Journal of biomechanics.
[22] N. Shapiro,et al. Tumor growth and chemotherapy: Mathematical methods, computer simulations, and experimental foundations , 1973 .
[23] P. Sharpe,et al. Plant cell wall elasticity II: Polymer elastic properties of the microfibrils , 1988 .
[24] Greenspan Hp,et al. On the self-inhibited growth of cell cultures. , 1974, Growth.
[25] H. Greenspan. Models for the Growth of a Solid Tumor by Diffusion , 1972 .
[26] J. Folkman,et al. Role of cell shape in growth control , 1978, Nature.
[27] F. W. Cummings,et al. On surface geometry coupled to morphogen. , 1989, Journal of theoretical biology.
[28] M. Chaplain,et al. A mathematical model for the production and secretion of tumour angiogenesis factor in tumours. , 1990, IMA journal of mathematics applied in medicine and biology.
[29] L. H. Gray,et al. The Histological Structure of Some Human Lung Cancers and the Possible Implications for Radiotherapy , 1955, British Journal of Cancer.
[30] H. Greenspan,et al. On the dynamics of cell cleavage. , 1977, Journal of theoretical biology.
[31] R. Haralick,et al. The Topographic Primal Sketch , 1983 .
[32] R A Robb,et al. Interactive display and analysis of 3-D medical images. , 1989, IEEE transactions on medical imaging.
[33] R. Ogden,et al. Large deformation isotropic elasticity: on the correlation of theory and experiment for compressible rubberlike solids , 1972, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[34] P. Todd,et al. Gaussian curvature as a parameter of biological surface growth. , 1985, Journal of theoretical biology.
[35] H P Greenspan. On the self-inhibited growth of cell cultures. , 1974, Growth.
[36] John C. Platt,et al. Elastically deformable models , 1987, SIGGRAPH.
[37] H. Greenspan. On the Deformation of a Viscous Droplet Caused by Variable Surface Tension , 1977 .
[38] J. R. O'callaghan,et al. Structural mechanics of plant cells. , 1978, Journal of theoretical biology.
[39] A. Nir,et al. On the viscous deformation of biological cells under anisotropic surface tension , 1988, Journal of Fluid Mechanics.
[40] J. Duncan,et al. A bending energy model for measurement of cardiac shape deformity. , 1991, IEEE transactions on medical imaging.
[41] D Brzakovic,et al. An approach to automated detection of tumors in mammograms. , 1990, IEEE transactions on medical imaging.
[42] T. Sekimura,et al. The morphogenesis of liposomes viewed from the aspect of bending energy. , 1991, Journal of theoretical biology.
[43] Strain energy descriptions of biological swelling. I: Single fluid compartment models. , 1987, Journal of biomechanical engineering.
[44] M. Melicow. The three steps to cancer: a new concept of cancerigenesis. , 1982, Journal of theoretical biology.
[45] A. J. Robertson,et al. Morphometric analysis of breast carcinoma: association with survival. , 1988, Journal of clinical pathology.
[46] Necking of pressurized spherical membranes , 1976 .
[47] Ray W. Ogden,et al. On the incremental equations in non-linear elasticity — II. Bifurcation of pressurized spherical shells , 1978 .
[48] H. Greenspan. On the growth and stability of cell cultures and solid tumors. , 1976, Journal of theoretical biology.
[49] R. Gordon,et al. Enhancement of Mammographic Features by Optimal Adaptive Neighborhood Image Processing , 1986, IEEE Transactions on Medical Imaging.
[50] Burton Ac,et al. Rate of growth of solid tumours as a problem of diffusion. , 1966, Growth.
[51] R. Ogden,et al. On the incremental equations in non-linear elasticity — I. Membrane theory , 1978 .
[52] S. Timoshenko,et al. Theory of elasticity , 1975 .
[53] R. Vito,et al. A note on arterial elasticity. , 1973, Journal of biomechanics.
[54] S. Lai,et al. On techniques for detecting circumscribed masses in mammograms. , 1989, IEEE transactions on medical imaging.
[55] J. R. O'callaghan,et al. A membrane model of plant cell extension. , 1974, Journal of theoretical biology.
[56] C. Isenberg,et al. The Science of Soap Films and Soap Bubbles , 1978 .
[57] L. Landau. On analytic properties of vertex parts in quantum field theory , 1959 .
[58] M. Tubiana. The kinetics of tumour cell proliferation and radiotherapy. , 1971, The British journal of radiology.
[59] D. Balding,et al. A mathematical model of tumour-induced capillary growth. , 1985, Journal of theoretical biology.
[60] M. Chaplain,et al. An application of membrane theory to tip morphogenesis in Acetabularia. , 1990, Journal of theoretical biology.
[61] D. Gallez. Cell membranes after malignant transformation. Part I: Dynamic stability at low surface tension. , 1984, Journal of theoretical biology.
[62] R. Skalak,et al. Strain energy function of red blood cell membranes. , 1973, Biophysical journal.
[63] R. Ogden. On stress rates in solid mechanics with application to elasticity theory , 1974, Mathematical Proceedings of the Cambridge Philosophical Society.
[64] E. Mccoy. The strain energy function in axial plant growth , 1989 .
[65] S. Svetina,et al. Membrane bending energy in relation to bilayer couples concept of red blood cell shape transformations. , 1982, Journal of theoretical biology.