Mechanical evaluation of theories of neurulation using computer simulations
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[1] G. Schoenwolf,et al. A reexamination of the role of microfilaments in neurulation in the chick embryo , 1988, The Anatomical record.
[2] B. Burnside. Microtubules and Microfilaments in Amphibian Neurulation , 1973 .
[3] R. Rappaport. Tensiometric studies of cytokinesis in cleaving sand dollar eggs. , 1977, The Journal of experimental zoology.
[4] A. Burt. NEURULATION IN MECHANICALLY AND CHEMICALLY INHIBITED AMBLYSTOMA , 1943 .
[5] G. Malacinski,et al. Axial structure development in ultraviolet-irradiated (notochord-defective) amphibian embryos. , 1981, Developmental biology.
[6] Deformation analyses in cell and developmental biology. Part II--Mechanical experiments on cells. , 1987, Journal of biomechanical engineering.
[7] L Y Cheng. Deformation analyses in cell and developmental biology. Part I--Formal methodology. , 1987, Journal of biomechanical engineering.
[8] G. Schoenwolf,et al. Shaping of the chick neuroepithelium during primary and secondary neurulation: Role of cell elongation , 1987, The Anatomical record.
[9] S. Gordon,et al. Investigations on circumferential microfilament bundles in rat retinal pigment epithelium. , 1987, European journal of cell biology.
[10] Y. Hiramoto,et al. Mechanical properties of the protoplasm of the sea urchin egg. I. Unfertilized egg. , 1969, Experimental cell research.
[11] B. Goodwin,et al. Waves and periodic events during primitive streak formation in the chick. , 1977, Journal of embryology and experimental morphology.
[12] A. Ben-Ze'ev,et al. Cell‐Cell Interaction and Cell Configuration Related Control of Cytokeratins and Vimentin Expression in Epithelial Cells and in Fibroblasts a , 1985, Annals of the New York Academy of Sciences.
[13] A. Copp,et al. The embryonic development of mammalian neural tube defects , 1990, Progress in Neurobiology.
[14] R. Brun,et al. Neurulation in the Mexican salamander (Ambystoma mexicanum): a drug study and cell shape analysis of the epidermis and the neural plate. , 1983, Journal of embryology and experimental morphology.
[15] R. Brun,et al. Notochord formation in the Mexican Salamander (Ambystoma mexicanum) is different from notochord formation in Xenopus laevis , 1984 .
[16] R Gordon,et al. A review of the theories of vertebrate neurulation and their relationship to the mechanics of neural tube birth defects. , 1985, Journal of embryology and experimental morphology.
[17] M B Burnside,et al. Analysis of morphogenetic movements in the neural plate of the newt Taricha torosa. , 1968, Developmental biology.
[18] O. C. Zienkiewicz,et al. The Finite Element Method: Basic Formulation and Linear Problems , 1987 .
[19] G. Schoenwolf,et al. Further evidence of extrinsic forces in bending of the neural plate , 1991, The Journal of comparative neurology.
[20] H. Saunders,et al. Mechanics of Materials (2nd Ed.) , 1986 .
[21] G. Malacinski,et al. An atlas of notochord and somite morphogenesis in several anuran and urodelean amphibians. , 1980, Journal of embryology and experimental morphology.
[22] G. Oster,et al. The mechanical basis of cell rearrangement. I. Epithelial morphogenesis during Fundulus epiboly. , 1990, Development.
[23] M. Koehl,et al. The mechanics of notochord elongation, straightening and stiffening in the embryo of Xenopus laevis. , 1990, Development.
[24] B. Burnside,et al. Microtubules and microfilaments in newt neuralation. , 1971, Developmental biology.
[25] Brodland Gw. Finite element methods for developmental biology. , 1994 .
[26] Y Hiramoto. Mechanical properties of the protoplasm of the sea urchin egg. II. Fertilized egg. , 1969, Experimental cell research.
[27] Finite element methods for developmental biology. , 1994, International review of cytology.
[28] A. Jacobson,et al. Neural fold formation at newly created boundaries between neural plate and epidermis in the axolotl. , 1989, Developmental biology.
[29] G. Schoenwolf,et al. Mechanisms of neurulation: traditional viewpoint and recent advances. , 1990, Development.
[30] W. Flügge. Stresses in Shells , 1960 .
[31] A. Jacobson. Further evidence that formation of the neural tube requires elongation of the nervous system. , 1984, The Journal of experimental zoology.
[32] Highly non-linear deformation of uniformly-loaded circular plates , 1988 .
[33] W. H. Lewis,et al. Mechanics of invagination , 1947, The Anatomical record.
[34] A G Jacobson,et al. Changes in the shape of the developing vertebrate nervous system analyzed experimentally, mathematically and by computer simulation. , 1976, The Journal of experimental zoology.
[35] J. Nardi. Epithelial Invagination: Adhesive Properties of Cells Can Govern Position and Directionality of Epithelial Folding , 1981 .
[36] S. R. Hilfer,et al. Computer simulation of organogenesis: an approach to the analysis of shape changes in epithelial organs. , 1983, Developmental biology.
[37] G W Brodland,et al. Intermediate filaments may prevent buckling of compressively loaded microtubules. , 1990, Journal of biomechanical engineering.
[38] M. Stanisstreet,et al. Computer modelling of neural tube defects , 1991, Acta biotheoretica.
[39] John Philip Trinkaus,et al. Cells into Organs: The Forces That Shape the Embryo , 1984 .
[40] O. C. Zienkiewicz,et al. The finite element method, fourth edition; volume 2: solid and fluid mechanics, dynamics and non-linearity , 1991 .
[41] G. Odell,et al. Neurulation and the cortical tractor model for epithelial folding. , 1986, Journal of embryology and experimental morphology.
[42] Hsin-yi Lee,et al. Studies on the mechanism of neurulation in the chick: Microfilament‐mediated changes in cell shape during uplifting of neural folds , 1980 .
[43] G. S. Sohal,et al. Neural tube defects: a review of human and animal studies on the etiology of neural tube defects. , 1986, Teratology.
[44] P Karfunkel,et al. The mechanisms of neural tube formation. , 1974, International review of cytology.
[45] M. S. Steinberg,et al. Embryonic tissues as elasticoviscous liquids. I. Rapid and slow shape changes in centrifuged cell aggregates. , 1978, Journal of cell science.
[46] P. Alberch,et al. The mechanical basis of morphogenesis. I. Epithelial folding and invagination. , 1981, Developmental biology.