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A Highlights from MBoC Selection: Srv2/cyclase-associated protein forms hexameric shurikens that directly catalyze actin filament severing by cofilin

机译:MBoC选择的亮点:Srv2 / cyclase相关蛋白形成六聚体手里胶,直接催化肌动蛋白丝被cofilin切断。

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Actin filament severing is critical for the dynamic turnover of cellular actin networks. Cofilin severs filaments, but additional factors may be required to increase severing efficiency in vivo. Srv2/cyclase-associated protein (CAP) is a widely expressed protein with a role in binding and recycling actin monomers ascribed to domains in its C-terminus (C-Srv2). In this paper, we report a new biochemical and cellular function for Srv2/CAP in directly catalyzing cofilin-mediated severing of filaments. This function is mediated by its N-terminal half (N-Srv2), and is physically and genetically separable from C-Srv2 activities. Using dual-color total internal reflection fluorescence microscopy, we determined that N-Srv2 stimulates filament disassembly by increasing the frequency of cofilin-mediated severing without affecting cofilin binding to filaments. Structural analysis shows that N-Srv2 forms novel hexameric star-shaped structures, and disrupting oligomerization impairs N-Srv2 activities and in vivo function. Further, genetic analysis shows that the combined activities of N-Srv2 and Aip1 are essential in vivo. These observations define a novel mechanism by which the combined activities of cofilin and Srv2/CAP lead to enhanced filament severing and support an emerging view that actin disassembly is controlled not by cofilin alone, but by a more complex set of factors working in concert.
机译:肌动蛋白丝切断对细胞肌动蛋白网络的动态转换至关重要。 Cofilin切断细丝,但是可能需要其他因素来提高体内的切断效率。 Srv2 / cyclase相关蛋白(CAP)是一种广泛表达的蛋白,在其C末端(C-Srv2)结构域的肌动蛋白单体的结合和回收中发挥作用。在本文中,我们报告了Srv2 / CAP在直接催化cofilin介导的细丝切断中的新生化和细胞功能。该功能由其N末端一半(N-Srv2)介导,并且在物理和遗传上与C-Srv2活性可分离。使用双色全内反射荧光显微镜,我们确定N-Srv2通过增加cofilin介导的切断频率而不影响cofilin与细丝的结合来刺激细丝分解。结构分析表明,N-Srv2形成新的六聚体星形结构,破坏低聚会损害N-Srv2的活性和体内功能。此外,遗传分析表明,N-Srv2和Aip1的联合活性在体内至关重要。这些观察结果定义了一种新的机制,通过该机制,cofilin和Srv2 / CAP的联合活性导致增强的细丝切断,并支持一种新兴的观点,即肌动蛋白的分解不是由单独的cofilin控制,而是由一系列更复杂的因素共同作用来控制。

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