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E-钙黏蛋白进化速率共变分析鉴定出 Raskol 是果蝇细胞黏附和肌动蛋白动力学的调节剂。

Evolutionary rate covariation analysis of E-cadherin identifies Raskol as a regulator of cell adhesion and actin dynamics in Drosophila.

机构信息

Department of Cell Biology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, United States of America.

Center for Genomics and Systems Biology, Department of Biology, New York University, New York, New York, United States of America.

出版信息

PLoS Genet. 2019 Feb 14;15(2):e1007720. doi: 10.1371/journal.pgen.1007720. eCollection 2019 Feb.

Abstract

The adherens junction couples the actin cytoskeletons of neighboring cells to provide the foundation for multicellular organization. The core of the adherens junction is the cadherin-catenin complex that arose early in the evolution of multicellularity to link actin to intercellular adhesions. Over time, evolutionary pressures have shaped the signaling and mechanical functions of the adherens junction to meet specific developmental and physiological demands. Evolutionary rate covariation (ERC) identifies proteins with correlated fluctuations in evolutionary rate that can reflect shared selective pressures and functions. Here we use ERC to identify proteins with evolutionary histories similar to the Drosophila E-cadherin (DE-cad) ortholog. Core adherens junction components α-catenin and p120-catenin displayed positive ERC correlations with DE-cad, indicating that they evolved under similar selective pressures during evolution between Drosophila species. Further analysis of the DE-cad ERC profile revealed a collection of proteins not previously associated with DE-cad function or cadherin-mediated adhesion. We then analyzed the function of a subset of ERC-identified candidates by RNAi during border cell (BC) migration and identified novel genes that function to regulate DE-cad. Among these, we found that the gene CG42684, which encodes a putative GTPase activating protein (GAP), regulates BC migration and adhesion. We named CG42684 raskol ("to split" in Russian) and show that it regulates DE-cad levels and actin protrusions in BCs. We propose that Raskol functions with DE-cad to restrict Ras/Rho signaling and help guide BC migration. Our results demonstrate that a coordinated selective pressure has shaped the adherens junction and this can be leveraged to identify novel components of the complexes and signaling pathways that regulate cadherin-mediated adhesion.

摘要

黏着连接将相邻细胞的肌动蛋白细胞骨架连接在一起,为细胞的多细胞组织提供基础。黏着连接的核心是钙黏蛋白-catenin 复合物,它在多细胞生物进化的早期出现,将肌动蛋白与细胞间黏附连接起来。随着时间的推移,进化压力塑造了黏着连接的信号转导和力学功能,以满足特定的发育和生理需求。进化率协变(ERC)识别出进化率波动相关的蛋白质,这些蛋白质可以反映共同的选择压力和功能。在这里,我们使用 ERC 来识别与果蝇 E-钙黏蛋白(DE-cad)同源物具有相似进化史的蛋白质。核心黏着连接组件 α-连环蛋白和 p120-连环蛋白与 DE-cad 显示出正的 ERC 相关性,表明它们在果蝇种间进化过程中受到类似的选择压力。对 DE-cad ERC 谱的进一步分析揭示了一组以前与 DE-cad 功能或钙黏蛋白介导的黏附无关的蛋白质。然后,我们通过 RNAi 在边缘细胞(BC)迁移过程中分析了 ERC 鉴定出的候选蛋白的子集的功能,并鉴定出了一些以前与 DE-cad 功能或钙黏蛋白介导的黏附无关的新基因。在这些基因中,我们发现编码一种假定的 GTP 酶激活蛋白(GAP)的基因 CG42684,调节 BC 的迁移和黏附。我们将 CG42684 命名为 raskol(在俄语中是“分裂”的意思),并表明它调节 BC 中 DE-cad 的水平和肌动蛋白突起。我们提出,Raskol 与 DE-cad 一起作用,限制 Ras/Rho 信号转导,帮助指导 BC 的迁移。我们的结果表明,协调的选择压力塑造了黏着连接,这可以用来识别钙黏蛋白介导的黏附调节复合物和信号通路的新成分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e22/6375579/376375f9285b/pgen.1007720.g001.jpg

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