从基因到神经管缺陷(NTDs):来自多尺度计算模型的见解。

Hfsp Journal Pub Date : 2010-06-01 Epub Date: 2010-04-16 DOI:10.2976/1.3338713
G Wayne Brodland, Xiaoguang Chen, Paul Lee, Mungo Marsden
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引用次数: 34

摘要

形态发生运动及其最终产生的胚胎表型是一系列事件的结果,这些事件涉及信号通路、细胞骨架成分以及细胞和组织水平的机械相互作用。为了更好地理解这些事件如何在两栖动物神经发育的背景下协同工作,现有的多尺度计算模型被增强。该有限元力学模型的几何数据来自活体蝾螈胚胎和固定标本的连续切片的三维表面重建。组织力学性能使用基于细胞的本构方程建模,包括内力产生和细胞重排,并手动调整方程参数以反映生化变化,包括蘑菇或平面细胞极性途径的变化。该模型表明,当神经板的会聚伸展减少20%,当胚胎一侧的神经板被消除,当神经脊高度被破坏,当非神经外胚层的张力增加,或当外胚层厚度增加时,神经管缺陷就会产生。在非洲爪蟾胚胎中可以诱导的类似条件中,发现了良好的一致性,这是模型验证的重要一步。该模型揭示了神经发育胚胎是一个精细调节的生物力学系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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From genes to neural tube defects (NTDs): insights from multiscale computational modeling.

The morphogenetic movements, and the embryonic phenotypes they ultimately produce, are the consequence of a series of events that involve signaling pathways, cytoskeletal components, and cell- and tissue-level mechanical interactions. In order to better understand how these events work together in the context of amphibian neurulation, an existing multiscale computational model was augmented. Geometric data for this finite element-based mechanical model were obtained from 3D surface reconstructions of live axolotl embryos and serial sections of fixed specimens. Tissue mechanical properties were modeled using cell-based constitutive equations that include internal force generation and cell rearrangement, and equation parameters were adjusted manually to reflect biochemical changes including alterations in Shroom or the planar-cell-polarity pathway. The model indicates that neural tube defects can arise when convergent extension of the neural plate is reduced by as little as 20%, when it is eliminated on one side of the embryo, when neural ridge elevation is disrupted, when tension in the non-neural ectoderm is increased, or when the ectoderm thickness is increased. Where comparable conditions could be induced in Xenopus embryos, good agreement was found, an important step in model validation. The model reveals the neurulating embryo to be a finely tuned biomechanical system.

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Hfsp Journal
Hfsp Journal 综合性期刊-综合性期刊
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