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Ccz1-Mon1蛋白复合物是多种液泡运输途径后期步骤所必需的。

The Ccz1-Mon1 protein complex is required for the late step of multiple vacuole delivery pathways.

作者信息

Wang Chao-Wen, Stromhaug Per E, Shima Jun, Klionsky Daniel J

机构信息

Department of Molecular, Cellular, and Developmental Biology, Life Sciences Institute, University of Michigan, Ann Arbor, Michigan 48109-1048, USA.

出版信息

J Biol Chem. 2002 Dec 6;277(49):47917-27. doi: 10.1074/jbc.M208191200. Epub 2002 Oct 2.

Abstract

Mon1 and Ccz1 were identified from a gene deletion library as mutants defective in the vacuolar import of aminopeptidase I (Ape1) via the cytoplasm to vacuole targeting (Cvt) pathway. The mon1Delta and ccz1Delta strains also displayed defects in autophagy and pexophagy, degradative pathways that share protein machinery and mechanistic features with the biosynthetic Cvt pathway. Further analyses indicated that Mon1, like Ccz1, was required in nearly all membrane-trafficking pathways where the vacuole represented the terminal acceptor compartment. Accordingly, both deletion strains had kinetic defects in the biosynthetic delivery of resident vacuolar hydrolases through the CPY, ALP, and MVB pathways. Biochemical and microscopy studies suggested that Mon1 and Ccz1 functioned after transport vesicle formation but before (or at) the fusion step with the vacuole. Thus, ccz1Delta and mon1Delta are the first mutants identified in screens for the Cvt and Apg pathways that accumulate precursor Ape1 within completed cytosolic vesicles. Subcellular fractionation and co-immunoprecipitation experiments confirm that Mon1 and Ccz1 physically interact as a stable protein complex termed the Ccz1-Mon1 complex. Microscopy of Ccz1 and Mon1 tagged with a fluorescent marker indicated that the Ccz1-Mon1 complex peripherally associated with a perivacuolar compartment and may attach to the vacuole membrane in agreement with their proposed function in fusion.

摘要

通过基因缺失文库鉴定出Mon1和Ccz1,它们是通过细胞质到液泡靶向(Cvt)途径进行氨肽酶I(Ape1)液泡导入缺陷的突变体。mon1Δ和ccz1Δ菌株在自噬和pexophagy方面也表现出缺陷,这些降解途径与生物合成Cvt途径共享蛋白质机制和特征。进一步分析表明,与Ccz1一样,Mon1在几乎所有以液泡为终端接受区室的膜运输途径中都是必需的。因此,两种缺失菌株在通过CPY、ALP和MVB途径进行液泡驻留水解酶的生物合成递送方面都存在动力学缺陷。生化和显微镜研究表明,Mon1和Ccz1在运输囊泡形成后但在与液泡融合步骤之前(或之时)发挥作用。因此,ccz1Δ和mon1Δ是在Cvt和Apg途径筛选中鉴定出的首批在完整胞质囊泡内积累前体Ape1的突变体。亚细胞分级分离和免疫共沉淀实验证实,Mon1和Ccz1作为一种稳定的蛋白质复合物(称为Ccz1-Mon1复合物)发生物理相互作用。用荧光标记物标记的Ccz1和Mon1的显微镜观察表明,Ccz1-Mon1复合物与液泡周围的区室在周边相关联,并且可能与液泡膜附着,这与其在融合中的推测功能一致。

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