a multi-cell, multi-scale model of vertebrate segmentation and somite formation脊椎动物的多单元、多尺度模型分割和体节形成.pdfVIP
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a multi-cell, multi-scale model of vertebrate segmentation and somite formation脊椎动物的多单元、多尺度模型分割和体节形成
A Multi-cell, Multi-scale Model of Vertebrate
Segmentation and Somite Formation
Susan D. Hester*, Julio M. Belmonte, J. Scott Gens, Sherry G. Clendenon, James A. Glazier
Biocomplexity Institute and Department of Physics, Indiana University Bloomington, Bloomington, Indiana, United States of America
Abstract
Somitogenesis, the formation of the body’s primary segmental structure common to all vertebrate development, requires
coordination between biological mechanisms at several scales. Explaining how these mechanisms interact across scales and
how events are coordinated in space and time is necessary for a complete understanding of somitogenesis and its
evolutionary flexibility. So far, mechanisms of somitogenesis have been studied independently. To test the consistency,
integrability and combined explanatory power of current prevailing hypotheses, we built an integrated clock-and-wavefront
model including submodels of the intracellular segmentation clock, intercellular segmentation-clock coupling via Delta/
Notch signaling, an FGF8 determination front, delayed differentiation, clock-wavefront readout, and differential-cell-cell-
adhesion-driven cell sorting. We identify inconsistencies between existing submodels and gaps in the current
understanding of somitogenesis mechanisms, and propose novel submodels and extensions of existing submodels where
necessary. For reasonable initial conditions, 2D simulations of our model robustly generate spatially and temporally regular
somites, realistic dynamic morphologies and spontaneous emergence of anterior-traveling stripes of Lfng. We show that
these traveling stripes are pseudo-waves rather than true propagating waves. Our model is flexible enough to generate
interspecies-like variation in somite size in response to changes in the PSM growth
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