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在酵母内吞作用期间,发动蛋白与肌动蛋白的相互作用对于囊泡切割是必需的。

A dynamin-actin interaction is required for vesicle scission during endocytosis in yeast.

作者信息

Palmer Sarah E, Smaczynska-de Rooij Iwona I, Marklew Christopher J, Allwood Ellen G, Mishra Ritu, Johnson Simeon, Goldberg Martin W, Ayscough Kathryn R

机构信息

Department of Biomedical Science, University of Sheffield, Sheffield S10 2TN, UK.

Department of Biological Science, Durham University, Durham DH1 3LE, UK.

出版信息

Curr Biol. 2015 Mar 30;25(7):868-78. doi: 10.1016/j.cub.2015.01.061. Epub 2015 Mar 12.

Abstract

Actin is critical for endocytosis in yeast cells, and also in mammalian cells under tension. However, questions remain as to how force generated through actin polymerization is transmitted to the plasma membrane to drive invagination and scission. Here, we reveal that the yeast dynamin Vps1 binds and bundles filamentous actin. Mutational analysis of Vps1 in a helix of the stalk domain identifies a mutant RR457-458EE that binds actin more weakly. In vivo analysis of Vps1 function demonstrates that the mutation disrupts endocytosis but not other functions of Vps1 such as vacuolar trafficking or peroxisome fission. The mutant Vps1 is stably expressed in cells and co-localizes with the endocytic reporters Abp1 and the amphiphysin Rvs167. Detailed analysis of individual endocytic patch behavior indicates that the mutation causes aberrant movements in later stages of endocytosis, consistent with a scission defect. Ultrastructural analysis of yeast cells using electron microscopy reveals a significant increase in invagination depth, further supporting a role for the Vps1-actin interaction during scission. In vitro analysis of the mutant protein demonstrates that--like wild-type Vps1--it is able to form oligomeric rings, but, critically, it has lost its ability to bundle actin filaments into higher-order structures. A model is proposed in which actin filaments bind Vps1 during invagination, and this interaction is important to transduce the force of actin polymerization to the membrane to drive successful scission.

摘要

肌动蛋白对于酵母细胞的内吞作用至关重要,在处于张力状态的哺乳动物细胞中也是如此。然而,关于通过肌动蛋白聚合产生的力如何传递到质膜以驱动内陷和分裂,仍存在疑问。在这里,我们发现酵母动力蛋白Vps1结合并捆绑丝状肌动蛋白。对Vps1柄结构域螺旋中的突变分析确定了一个结合肌动蛋白较弱的突变体RR457 - 458EE。对Vps1功能的体内分析表明,该突变破坏了内吞作用,但不影响Vps1的其他功能,如液泡运输或过氧化物酶体分裂。突变体Vps1在细胞中稳定表达,并与内吞报告蛋白Abp1和发动蛋白Rvs167共定位。对单个内吞斑块行为的详细分析表明,该突变在内吞作用后期导致异常运动,这与分裂缺陷一致。使用电子显微镜对酵母细胞进行超微结构分析显示内陷深度显著增加,进一步支持了Vps1 - 肌动蛋白相互作用在分裂过程中的作用。对突变蛋白的体外分析表明,与野生型Vps1一样,它能够形成寡聚环,但关键的是,它已经失去了将肌动蛋白丝捆绑成更高阶结构的能力。我们提出了一个模型,其中肌动蛋白丝在凹陷过程中结合Vps1,这种相互作用对于将肌动蛋白聚合的力传递到膜上以驱动成功分裂很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac99/4386032/23b29f50ae4b/fx1.jpg

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