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激活的进化印记:VSDs 的设计原则。

Evolutionary imprint of activation: the design principles of VSDs.

机构信息

Institute for Computational Molecular Science, Temple University, Philadelphia, PA 19122.

出版信息

J Gen Physiol. 2014 Feb;143(2):145-56. doi: 10.1085/jgp.201311103.

Abstract

Voltage-sensor domains (VSDs) are modular biomolecular machines that transduce electrical signals in cells through a highly conserved activation mechanism. Here, we investigate sequence-function relationships in VSDs with approaches from information theory and probabilistic modeling. Specifically, we collect over 6,600 unique VSD sequences from diverse, long-diverged phylogenetic lineages and relate the statistical properties of this ensemble to functional constraints imposed by evolution. The VSD is a helical bundle with helices labeled S1-S4. Surrounding conserved VSD residues such as the countercharges and the S2 phenylalanine, we discover sparse networks of coevolving residues. Additional networks are found lining the VSD lumen, tuning the local hydrophilicity. Notably, state-dependent contacts and the absence of coevolution between S4 and the rest of the bundle are imprints of the activation mechanism on the VSD sequence ensemble. These design principles rationalize existing experimental results and generate testable hypotheses.

摘要

电压传感器结构域(VSDs)是一种模块化的生物分子机器,通过高度保守的激活机制在细胞中传递电信号。在这里,我们通过信息论和概率建模的方法来研究 VSD 中的序列-功能关系。具体来说,我们从不同的、长期分化的进化枝系中收集了超过 6600 个独特的 VSD 序列,并将该集合的统计特性与进化施加的功能约束联系起来。VSD 是一个螺旋束,螺旋标记为 S1-S4。在围绕保守的 VSD 残基(如反电荷和 S2 苯丙氨酸)的区域,我们发现了稀疏的共进化残基网络。额外的网络位于 VSD 腔的边缘,调节局部亲水性。值得注意的是,状态相关的接触以及 S4 与其余部分之间不存在共进化,这些都是激活机制在 VSD 序列集合上的印记。这些设计原则可以使现有的实验结果合理化,并产生可测试的假设。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46c8/4001776/948badf5c166/JGP_201311103_Fig1.jpg

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