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磷酸化调节酵母动力蛋白相关蛋白Vps1的内吞功能。

Phosphorylation Regulates the Endocytic Function of the Yeast Dynamin-Related Protein Vps1.

作者信息

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

机构信息

Department of Biomedical Science, University of Sheffield, Sheffield, United Kingdom.

School of Biological and Biomedical Sciences, Durham University, Durham, United Kingdom.

出版信息

Mol Cell Biol. 2015 Dec 28;36(5):742-55. doi: 10.1128/MCB.00833-15.

Abstract

The family of dynamin proteins is known to function in many eukaryotic membrane fusion and fission events. The yeast dynamin-related protein Vps1 functions at several stages of membrane trafficking, including Golgi apparatus to endosome and vacuole, peroxisomal fission, and endocytic scission. We have previously shown that in its endocytic role, Vps1 functions with the amphiphysin heterodimer Rvs161/Rvs167 to facilitate scission and release of vesicles. Phosphoproteome studies of Saccharomyces cerevisiae have identified a phosphorylation site in Vps1 at serine 599. In this study, we confirmed this phosphorylation event, and we reveal that, like Rvs167, Vps1 can be phosphorylated by the yeast cyclin-associated kinase Pho85 in vivo and in vitro. The importance of this posttranslational modification was revealed when mutagenesis of S599 to a phosphomimetic or nonphosphorylatable form caused defects in endocytosis but not in other functions associated with Vps1. Mutation to nonphosphorylatable valine inhibited the Rvs167 interaction, while both S599V and S599D caused defects in vesicle scission, as shown by both live-cell imaging and electron microscopy of endocytic invaginations. Our data support a model in which phosphorylation and dephosphorylation of Vps1 promote distinct interactions and highlight the importance of such regulatory events in facilitating sequential progression of the endocytic process.

摘要

已知发动蛋白家族在许多真核生物膜融合和裂变事件中发挥作用。酵母中与发动蛋白相关的蛋白Vps1在膜运输的多个阶段发挥作用,包括从高尔基体到内体和液泡、过氧化物酶体裂变以及内吞作用的切割。我们之前已经表明,在其内吞作用中,Vps1与双栖蛋白异二聚体Rvs161/Rvs167共同作用,促进囊泡的切割和释放。酿酒酵母的磷酸化蛋白质组研究已经确定了Vps1中丝氨酸599处的一个磷酸化位点。在本研究中,我们证实了这一磷酸化事件,并揭示,与Rvs167一样,Vps1在体内和体外均可被酵母细胞周期蛋白相关激酶Pho85磷酸化。当将S599突变为模拟磷酸化或不可磷酸化形式时,发现这种翻译后修饰的重要性,这导致内吞作用出现缺陷,但与Vps1相关的其他功能未受影响。突变为不可磷酸化的缬氨酸会抑制与Rvs167的相互作用,而S599V和S599D均会导致囊泡切割缺陷,活细胞成像和内吞内陷的电子显微镜观察均证实了这一点。我们的数据支持一个模型,即Vps1的磷酸化和去磷酸化促进不同的相互作用,并突出了此类调节事件在促进内吞过程顺序进展中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bff9/4760221/c6cf173c1b31/zmb9991011320001.jpg

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