Limb bud and flank mesoderm have distinct "physical phenotypes" that may contribute to limb budding.
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Stuart A. Newman | Gabor Forgacs | Jaliya Kumaratilake | G. Forgacs | B. Damon | Nadejda V. Mezentseva | S. Newman | J. Kumaratilake | Brooke J. Damon
[1] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[2] D. Garrod. Specificity of Embryological Interactions , 1978, Receptors and Recognition.
[3] M. S. Steinberg,et al. Reconstruction of tissues by dissociated cells. Some morphogenetic tissue movements and the sorting out of embryonic cells may have a common explanation. , 1963, Science.
[4] Alain Richert,et al. Cell stiffening in response to external stress is correlated to actin recruitment. , 2008, Biophysical journal.
[5] S. Corbett,et al. Fibronectin Matrix Assembly Regulates α5β1-mediated Cell Cohesion , 2003 .
[6] Mikiko Tanaka,et al. Tbx18 and boundary formation in chick somite and wing development. , 2004, Developmental biology.
[7] Malcolm S. Steinberg,et al. Reconstruction of Tissues by Dissociated Cells , 1963 .
[8] D. Danilenko,et al. Fgf-10 is required for both limb and lung development and exhibits striking functional similarity to Drosophila branchless. , 1998, Genes & development.
[9] L V Beloussov,et al. Mechanical stresses in embryonic tissues: patterns, morphogenetic role, and involvement in regulatory feedback. , 1994, International review of cytology.
[10] D E Ingber,et al. Control of cytoskeletal mechanics by extracellular matrix, cell shape, and mechanical tension. , 1994, Biophysical journal.
[11] G. Forgacs,et al. Viscoelastic properties of living embryonic tissues: a quantitative study. , 1998, Biophysical journal.
[12] Yong-Tao Zhang,et al. Multiscale models for vertebrate limb development. , 2008, Current topics in developmental biology.
[13] M. Capecchi,et al. Fgf8 is required for outgrowth and patterning of the limbs , 2000, Nature Genetics.
[14] K. Heintzelman,et al. Liquid-tissue behavior and differential cohesiveness during chick limb budding. , 1978, Journal of embryology and experimental morphology.
[15] Paul Martin,et al. A role for FGF-8 in the initiation and maintenance of vertebrate limb bud outgrowth , 1995, Current Biology.
[16] Stuart A. Newman,et al. Generic physical mechanisms of morphogenesis and pattern formation as determinants in the evolution of multicellular organization , 1990, Journal of Biosciences.
[17] N S Goel,et al. A rheological mechanism sufficient to explain the kinetics of cell sorting. , 1972, Journal of theoretical biology.
[18] Cory J. Rupp,et al. Commonality of elastic relaxation times in biofilms. , 2004, Physical review letters.
[19] E. Sackmann,et al. Assembly of collagen matrices as a phase transition revealed by structural and rheologic studies. , 2003, Biophysical journal.
[20] S A Newman,et al. Morphogenetic differences between fore and hind limb precartilage mesenchyme: relation to mechanisms of skeletal pattern formation. , 1994, Developmental biology.
[21] A. Geinoz,et al. The Fibronectin Domain ED-A Is Crucial for Myofibroblastic Phenotype Induction by Transforming Growth Factor-β1 , 1998, Journal of Cell Biology.
[22] G. Oster,et al. How do sea urchins invaginate? Using biomechanics to distinguish between mechanisms of primary invagination. , 1995, Development.
[23] R. Markwald,et al. Bone morphogenetic protein-2 can mediate myocardial regulation of atrioventricular cushion mesenchymal cell formation in mice. , 2004, Developmental biology.
[24] P. Leder,et al. Fibroblast growth factor receptor 2 (FGFR2)-mediated reciprocal regulation loop between FGF8 and FGF10 is essential for limb induction. , 1998, Development.
[25] Malcolm S. Steinberg,et al. Liquid behavior of embryonic tissues , 1982 .
[26] Christian Soeller,et al. Three-dimensional distribution of ryanodine receptor clusters in cardiac myocytes. , 2006, Biophysical journal.
[27] G. Martin,et al. Functions of FGF signalling from the apical ectodermal ridge in limb development , 2002, Nature.
[28] D. Saito,et al. Level-specific role of paraxial mesoderm in regulation of Tbx5/Tbx4 expression and limb initiation. , 2006, Developmental biology.
[29] C. MacArthur,et al. Roles for FGF8 in the Induction, Initiation, and Maintenance of Chick Limb Development , 1996, Cell.
[30] M. S. Steinberg,et al. Cadherin-mediated cell adhesion and tissue segregation: qualitative and quantitative determinants. , 2003, Developmental biology.
[31] Tohru Itoh,et al. WNT Signals Control FGF-Dependent Limb Initiation and AER Induction in the Chick Embryo , 2001, Cell.
[32] I. Spector,et al. Latrunculins--novel marine macrolides that disrupt microfilament organization and affect cell growth: I. Comparison with cytochalasin D. , 1989, Cell motility and the cytoskeleton.
[33] Malcolm S. Steinberg,et al. Goal‐directedness in embryonic development , 1998 .
[34] P. Janmey,et al. Nonlinear elasticity in biological gels , 2004, Nature.
[35] P. Alberch,et al. The mechanical basis of morphogenesis. I. Epithelial folding and invagination. , 1981, Developmental biology.
[36] J. Izpisúa-Belmonte,et al. Involvement of FGF-8 in initiation, outgrowth and patterning of the vertebrate limb. , 1996, Development.
[37] M. S. Steinberg. Specific Cell Ligands and the Differential Adhesion Hypothesis: How do they fit together? , 1978 .
[38] T. Kuwana,et al. The mesenchymal factor, FGF10, initiates and maintains the outgrowth of the chick limb bud through interaction with FGF8, an apical ectodermal factor. , 1997, Development.
[39] G. Forgacs,et al. Phase transition and morphogenesis in a model biological system. , 1991, Physical review letters.
[40] P. Armstrong,et al. Cell sorting out: the self-assembly of tissues in vitro. , 1989, Critical reviews in biochemistry and molecular biology.
[41] Linhong Deng,et al. Localized mechanical stress induces time-dependent actin cytoskeletal remodeling and stiffening in cultured airway smooth muscle cells. , 2004, American journal of physiology. Cell physiology.
[42] 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.
[43] C. McCulloch,et al. Multiple roles of α-smooth muscle actin in mechanotransduction , 2006 .
[44] Ulrich Tepass,et al. Drosophila oocyte localization is mediated by differential cadherin-based adhesion , 1998, Nature.
[45] Stuart A Newman,et al. Activator-inhibitor dynamics of vertebrate limb pattern formation. , 2007, Birth defects research. Part C, Embryo today : reviews.
[46] S. Newman. Networks of Extracellular Fibers and the Generation of Morphogenetic Forces , 1998 .
[47] Adrian Neagu,et al. Experimental evaluation of apparent tissue surface tension based on the exact solution of the Laplace equation , 2007, 0706.3678.
[48] J. Pérez-Pomares,et al. Tissue fusion and cell sorting in embryonic development and disease: biomedical implications , 2006, BioEssays : news and reviews in molecular, cellular and developmental biology.
[49] B. Hinz,et al. Myofibroblasts and mechano-regulation of connective tissue remodelling , 2002, Nature Reviews Molecular Cell Biology.
[50] G F Oster,et al. Measurements of mechanical properties of the blastula wall reveal which hypothesized mechanisms of primary invagination are physically plausible in the sea urchin Strongylocentrotus purpuratus. , 1999, Developmental biology.
[51] G. Forgacs,et al. Biological Physics of the Developing Embryo , 2005 .
[52] J. Folkman,et al. Role of cell shape in growth control , 1978, Nature.
[53] Rudolf Grosschedl,et al. Tbx5 is essential for forelimb bud initiation following patterning of the limb field in the mouse embryo , 2003, Development.
[54] S. Schnell,et al. Can tissue surface tension drive somite formation? , 2007, Developmental biology.
[55] D. Wirtz,et al. Strain Hardening of Actin Filament Networks , 2000, The Journal of Biological Chemistry.
[56] T. Ogura,et al. Correlation of wing-leg identity in ectopic FGF-induced chimeric limbs with the differential expression of chick Tbx5 and Tbx4. , 1998, Development.
[57] D. St Johnston,et al. The Drosophila AP axis is polarised by the cadherin-mediated positioning of the oocyte. , 1998, Development.
[58] A. Seth,et al. Force regulates smooth muscle actin in cardiac fibroblasts. , 2000, American journal of physiology. Heart and circulatory physiology.
[59] A. Burke,et al. The lateral somitic frontier: dorso-ventral aspects of anterio-posterior regionalization in avian embryos , 2003, Mechanisms of Development.
[60] E. Sackmann,et al. Phase transformations in a model mesenchymal tissue , 2004, Physical biology.
[61] Nobuyuki Itoh,et al. Fgf10 is essential for limb and lung formation , 1999, Nature Genetics.
[62] G. Forgacs,et al. Surface tensions of embryonic tissues predict their mutual envelopment behavior. , 1996, Development.
[63] I. Singer. Association of fibronectin and vinculin with focal contacts and stress fibers in stationary hamster fibroblasts , 1982, The Journal of cell biology.
[64] Gabor Forgacs,et al. The interplay of cell-cell and cell-matrix interactions in the invasive properties of brain tumors. , 2006, Biophysical journal.
[65] G. Martin,et al. Fgf8 signalling from the AER is essential for normal limb development , 2000, Nature Genetics.
[66] S Newman,et al. Viscosity and elasticity during collagen assembly in vitro: relevance to matrix-driven translocation. , 1997, Biopolymers.
[67] T. Mikawa,et al. An additional limb can be induced from the flank of the chick embryo by FGF4. , 1995, Biochemical and biophysical research communications.
[68] V. Hamburger,et al. A series of normal stages in the development of the chick embryo. 1951. , 2012, Developmental dynamics : an official publication of the American Association of Anatomists.
[69] D. Beysens,et al. Dynamical Networks in Physics and Biology , 1998 .
[70] E. Weibel,et al. PRACTICAL STEREOLOGICAL METHODS FOR MORPHOMETRIC CYTOLOGY , 1966, The Journal of cell biology.