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基因调控网络架构的演化:棘皮动物类群之间子电路保守性和可塑性的实例

Evolution of gene regulatory network architectures: examples of subcircuit conservation and plasticity between classes of echinoderms.

作者信息

Hinman Veronica F, Yankura Kristen A, McCauley Brenna S

机构信息

Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, PA 15213, USA.

出版信息

Biochim Biophys Acta. 2009 Apr;1789(4):326-32. doi: 10.1016/j.bbagrm.2009.01.004. Epub 2009 Jan 22.

Abstract

Developmental gene regulatory networks (GRNs) explain how regulatory states are established in particular cells during development and how these states then determine the final form of the embryo. Evolutionary changes to the sequence of the genome will direct reorganization of GRN architectures, which in turn will lead to the alteration of developmental programs. A comparison of GRN architectures must consequently reveal the molecular basis for the evolution of developmental programs among different organisms. This review highlights some of the important findings that have emerged from the most extensive direct comparison of GRN architectures to date. Comparison of the orthologous GRNs for endomesodermal specification in the sea urchin and sea star, provides examples of several discrete, functional GRN subcircuits and shows that they are subject to diverse selective pressures. This demonstrates that different regulatory linkages may be more or less amenable to evolutionary change. One of the more surprising findings from this comparison is that GRN-level functions may be maintained while the factors performing the functions have changed, suggesting that GRNs have a high capacity for compensatory changes involving transcription factor binding to cis regulatory modules.

摘要

发育基因调控网络(GRNs)解释了在发育过程中特定细胞内调控状态是如何建立的,以及这些状态随后如何决定胚胎的最终形态。基因组序列的进化变化将指导GRN架构的重组,进而导致发育程序的改变。因此,对GRN架构的比较必须揭示不同生物体发育程序进化的分子基础。本综述重点介绍了迄今为止对GRN架构进行最广泛直接比较所产生的一些重要发现。对海胆和海星中内胚层中胚层特化的直系同源GRNs的比较,提供了几个离散的、功能性GRN子回路的例子,并表明它们受到不同的选择压力。这表明不同的调控联系对进化变化的适应性可能或多或少有所不同。这次比较中一个更令人惊讶的发现是,在执行功能的因子发生变化时,GRN水平的功能可能会得以维持,这表明GRNs具有涉及转录因子与顺式调控模块结合的补偿性变化的高能力。

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