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Predictive computation of genomic logic processing functions in embryonic development

机译:胚胎发育中基因组逻辑处理功能的预测计算

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摘要

Gene regulatory networks (GRNs) control the dynamic spatial patterns of regulatory gene expression in development. Thus, in principle, GRN models may provide system-level, causal explanations of developmental process. To test this assertion, we have transformed a relatively well-established GRN model into a predictive, dynamic Boolean computational model. This Boolean model computes spatial and temporal gene expression according to the regulatory logic and gene interactions specified in a GRN model for embryonic development in the sea urchin. Additional information input into the model included the progressive embryonic geometry and gene expression kinetics. The resulting model predicted gene expression patterns for a large number of individual regulatory genes each hour up to gastrulation (30 h) in four different spatial domains of the embryo. Direct comparison with experimental observations showed that the model predic-tively computed these patterns with remarkable spatial and temporal accuracy. In addition, we used this model to carry out in silico perturbations of regulatory functions and of embryonic spatial organization. The model computationally reproduced the altered developmental functions observed experimentally. Two major conclusions are that the starting GRN model contains sufficiently complete regulatory information to permit explanation of a complex developmental process of gene expression solely in terms of genomic regulatory code, and that the Boolean model provides a tool with which to test in silico regulatory circuitry and developmental perturbations.
机译:基因调控网络(GRN)控制发育中调控基因表达的动态空间格局。因此,原则上,GRN模型可以为开发过程提供系统级的因果解释。为了测试此断言,我们已将一个相对完善的GRN模型转换为预测性,动态布尔计算模型。此布尔模型根据GRN模型中指定的调节逻辑和基因相互作用来计算海时胚胎的空间和时间基因表达。输入模型的其他信息包括渐进的胚胎几何形状和基因表达动力学。所得模型预测了每小时的大量单个调控基因的基因表达模式,直至在四个不同空间域的胚化(30 h)为止。与实验观察结果的直接比较表明,该模型可预测这些模式,并具有显着的时空精度。另外,我们使用该模型对调节功能和胚胎空间组织进行了计算机微扰。该模型通过计算重现了实验观察到的变化的发育功能。两个主要结论是,起始GRN模型包含足够完整的调控信息,仅靠基因组调控代码即可解释基因表达的复杂发展过程,布尔模型提供了一种可用来测试计算机调控电路和发展扰动。

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