Patterns of Mesenchymal Condensation in a Multiscale, Discrete Stochastic Model
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[1] L. Wolpert,et al. Mesenchymal condensation and cell contact in early morphogenesis of the chick limb. , 1972, Experimental cell research.
[2] S A Newman,et al. The mechanism of precartilage mesenchymal condensation: a major role for interaction of the cell surface with the amino-terminal heparin-binding domain of fibronectin. , 1989, Developmental biology.
[3] S. Newman. Fibroblast progenitor cells of the embryonic chick limb. , 1980, Journal of embryology and experimental morphology.
[4] Isaac Salazar-Ciudad,et al. A gene network model accounting for development and evolution of mammalian teeth , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[5] M. Millonas,et al. The role of trans-membrane signal transduction in turing-type cellular pattern formation. , 2004, Journal of theoretical biology.
[6] R. Tuan,et al. Expression and functional involvement of N-cadherin in embryonic limb chondrogenesis. , 1994, Development.
[7] J. Hinchliffe,et al. An analysis of the condensation process during chondrogenesis in the embryonic chick hind limb. , 1975, Journal of embryology and experimental morphology.
[8] Philip K. Maini,et al. Speed of pattern appearance in reaction-diffusion models: Implications in the pattern formation of limb bud mesenchyme cells , 2004, Bulletin of mathematical biology.
[9] Paulien Hogeweg,et al. Modelling Dictyostelium discoideum morphogenesis: The culmination , 2002, Bulletin of mathematical biology.
[10] S A Newman,et al. Different roles for fibronectin in the generation of fore and hind limb precartilage condensations. , 1995, Developmental biology.
[11] C. Chuong,et al. Adhesion molecules in skeletogenesis: II. Neural cell adhesion molecules mediate precartilaginous mesenchymal condensations and enhance chondrogenesis , 1993, Journal of cellular physiology.
[12] Stuart A Newman,et al. Ectodermal FGFs induce perinodular inhibition of limb chondrogenesis in vitro and in vivo via FGF receptor 2. , 2002, Developmental biology.
[13] R. Tuan,et al. The region encoded by the alternatively spliced exon IIIA in mesenchymal fibronectin appears essential for chondrogenesis at the level of cellular condensation. , 1997, Developmental biology.
[14] Robert Dillon,et al. Pattern formation in generalized Turing systems , 1994 .
[15] M. Chaplain,et al. A mathematical model of the first steps of tumour-related angiogenesis: capillary sprout formation and secondary branching. , 1996, IMA journal of mathematics applied in medicine and biology.
[16] Viktor Hamburger,et al. A series of normal stages in the development of the chick embryo , 1992, Journal of morphology.
[17] Naoto Ueno,et al. Action Range of BMP Is Defined by Its N-Terminal Basic Amino Acid Core , 2002, Current Biology.
[18] Y. Toyama,et al. Involvement of Notch signaling in initiation of prechondrogenic condensation and nodule formation in limb bud micromass cultures , 2006, Journal of Bone and Mineral Metabolism.
[19] Spatial and spatio-temporal patterns in a cell-haptotaxis model , 1989, Journal of mathematical biology.
[20] J. Rodríguez-León,et al. Analysis of the molecular cascade responsible for mesodermal limb chondrogenesis: Sox genes and BMP signaling. , 2003, Developmental biology.
[21] M. Chaplain,et al. Continuous and discrete mathematical models of tumor-induced angiogenesis , 1998, Bulletin of mathematical biology.
[22] Phil Husbands,et al. Artificial Life IX: Proceedings of the Ninth International Conference on the Simulation and Synthesis of Living Systems , 2004 .
[23] S A Newman,et al. On multiscale approaches to three-dimensional modelling of morphogenesis , 2005, Journal of The Royal Society Interface.
[24] Qing Nie,et al. Do morphogen gradients arise by diffusion? , 2002, Developmental cell.
[25] Stuart A Newman,et al. Origination and innovation in the vertebrate limb skeleton: an epigenetic perspective. , 2005, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[26] K. Shiota,et al. A novel method for analysis of the periodicity of chondrogenic patterns in limb bud cell culture: correlation of in vitro pattern formation with theoretical models , 2000, Anatomy and Embryology.
[27] Yoh Iwasa,et al. Stripes, spots, or reversed spots in two-dimensional Turing systems. , 2003, Journal of theoretical biology.
[28] Wei-Min Shen,et al. Integument pattern formation involves genetic and epigenetic controls: feather arrays simulated by digital hormone models. , 2004, The International journal of developmental biology.
[29] Mark Alber,et al. BIOLOGICAL LATTICE GAS MODELS , 2004 .
[30] B. Hall,et al. All for one and one for all: condensations and the initiation of skeletal development. , 2000, BioEssays : news and reviews in molecular, cellular and developmental biology.
[31] Yang Luo,et al. N‐cadherin is not essential for limb mesenchymal chondrogenesis , 2005, Developmental dynamics : an official publication of the American Association of Anatomists.
[32] K. Shiota,et al. TGFβ2 acts as an “Activator” molecule in reaction‐diffusion model and is involved in cell sorting phenomenon in mouse limb micromass culture , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[33] K. Rajewsky,et al. Inactivation of the N-CAM gene in mice results in size reduction of the olfactory bulb and deficits in spatial learning , 1994, Nature.
[34] Roeland M. H. Merks,et al. Cell elongation is key to in silico replication of in vitro vasculogenesis and subsequent remodeling. , 2006, Developmental biology.
[35] Stuart A. Newman,et al. Role of transforming growth factor-β in chondrogenic pattern formation in the embryonic limb: Stimulation of mesenchymal condensation and fibronectin gene expression by exogenenous TGF-β and evidence for endogenous TGF-β-like activity , 1991 .
[36] R. Narbaitz. Vertebrate Limb and Somite Morphogenesis , 1979 .
[37] James A Glazier,et al. Interplay between activator-inhibitor coupling and cell-matrix adhesion in a cellular automaton model for chondrogenic patterning. , 2004, Developmental biology.
[38] B. Christ,et al. An experimental analysis of the developmental capacities of distal parts of avian leg buds. , 1985, The American journal of anatomy.
[39] Olga Sozinova,et al. A three-dimensional model of myxobacterial fruiting-body formation , 2006, Proceedings of the National Academy of Sciences.
[40] B. Hall,et al. Divide, accumulate, differentiate: cell condensation in skeletal development revisited. , 2004, The International journal of developmental biology.
[41] D. Paulsen,et al. Microtiter micromass cultures of limb-bud mesenchymal cells , 1988, In Vitro Cellular & Developmental Biology.
[42] L. Holmes,et al. Cell polarity in precartilage mouse limb mesenchyme cells. , 1980, Developmental biology.
[43] Gerhard Dangelmayr,et al. Dynamics and bifurcation of patterns in dissipative systems , 2004 .
[44] G. Forgacs,et al. Biological Physics of the Developing Embryo , 2005 .
[45] D. Kaiser,et al. A three-dimensional model of myxobacterial aggregation by contact-mediated interactions. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[46] Paulien Hogeweg,et al. Moving Forward Moving Backward: Directional Sorting of Chemotactic Cells due to Size and Adhesion Differences , 2006, PLoS Comput. Biol..
[47] P. Maini,et al. Pattern formation in reaction-diffusion models with spatially inhomogeneous diffusion coefficients , 1992 .
[48] P. Maini,et al. Distinct mechanisms underlie pattern formation in the skin and skin appendages. , 2006, Birth defects research. Part C, Embryo today : reviews.
[49] S. Keranen,et al. Enamel Knots as Signaling Centers Linking Tooth Morphogenesis and Odontoblast Differentiation , 2001, Advances in dental research.
[50] P. Hogeweg,et al. How amoeboids self-organize into a fruiting body: Multicellular coordination in Dictyostelium discoideum , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[51] S A Newman,et al. Latex beads as probes of cell surface-extracellular matrix interactions during chondrogenesis: evidence for a role for amino-terminal heparin-binding domain of fibronectin. , 1989, Developmental biology.
[52] S A Newman,et al. Morphogenetic differences between fore and hind limb precartilage mesenchyme: relation to mechanisms of skeletal pattern formation. , 1994, Developmental biology.