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SNAREs、HOPS 和调节脂质控制酿酒酵母同源融合过程中液泡肌动蛋白的动态变化。

SNAREs, HOPS and regulatory lipids control the dynamics of vacuolar actin during homotypic fusion in S. cerevisiae.

机构信息

Department of Biochemistry, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

出版信息

J Cell Sci. 2012 Apr 1;125(Pt 7):1683-92. doi: 10.1242/jcs.091900. Epub 2012 Feb 22.

DOI:10.1242/jcs.091900
PMID:22357954
Abstract

Homotypic vacuole fusion requires SNAREs, the Rab Ypt7p, the tethering complex HOPS, regulatory lipids and actin. In Saccharomyces cerevisiae, actin functions at two stages of vacuole fusion. Pre-existing actin filaments are depolymerized to allow docking and assembly of the vertex ring (a microdomain enriched in proteins and lipids that mediate fusion). Actin is then polymerized late in the pathway to aid fusion. Here, we report that the fusion machinery regulates the accumulation of actin at the vertex ring. Using Cy3-labeled yeast actin to track its dynamics, we found that its vertex enrichment was abolished when actin monomers were stabilized by latrunculin-B, independent of the extent of incorporation. By contrast, stabilization of filamentous actin with jasplakinolide markedly augmented actin vertex enrichment. Importantly, agents that inhibit SNAREs, Ypt7p and HOPS inhibited the vertex enrichment of actin, demonstrating that the cytoskeleton and the fusion machinery are interdependently regulated. Actin mobilization was also inhibited by ligating ergosterol and PtdIns(3)P, whereas the ligation or modification of PtdIns(4,5)P(2) augmented the vertex enrichment of actin. The proteins and lipids that regulated actin mobilization to the vertex did not affect the total incorporation of Cy3-actin, indicating that actin mobilization and polymerization activities can be dissociated during membrane fusion.

摘要

同源空泡融合需要 SNAREs、Rab Ypt7p、 tethering complex HOPS、调节脂质和肌动蛋白。在酿酒酵母中,肌动蛋白在空泡融合的两个阶段发挥作用。预先存在的肌动蛋白丝解聚,以允许对接和顶点环的组装(富含介导融合的蛋白质和脂质的微域)。然后,肌动蛋白在途径的后期聚合以帮助融合。在这里,我们报告融合机制调节顶点环处肌动蛋白的积累。使用 Cy3 标记的酵母肌动蛋白来跟踪其动力学,我们发现当肌动蛋白单体被拉曲菌素-B 稳定时,其顶点富集被废除,而与整合程度无关。相比之下,用 jasplakinolide 稳定丝状肌动蛋白显著增加了肌动蛋白顶点的富集。重要的是,抑制 SNAREs、Ypt7p 和 HOPS 的试剂抑制了肌动蛋白的顶点富集,表明细胞骨架和融合机制是相互调节的。肌动蛋白的动员也被甾醇和 PtdIns(3)P 的连接抑制,而 PtdIns(4,5)P(2)的连接或修饰增强了肌动蛋白的顶点富集。调节肌动蛋白向顶点动员的蛋白质和脂质不影响 Cy3-肌动蛋白的总掺入,表明在膜融合过程中可以分离肌动蛋白的动员和聚合活性。

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