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酿酒酵母自噬相关蛋白1(Atg1)复合物的分子相互作用为其组装和调控机制提供了见解。

Molecular interactions of the Saccharomyces cerevisiae Atg1 complex provide insights into assembly and regulatory mechanisms.

作者信息

Chew Leon H, Lu Shan, Liu Xu, Li Franco Kk, Yu Angela Yh, Klionsky Daniel J, Dong Meng-Qiu, Yip Calvin K

机构信息

a Department of Biochemistry and Molecular Biology ; University of British Columbia ; Vancouver , BC Canada.

出版信息

Autophagy. 2015;11(6):891-905. doi: 10.1080/15548627.2015.1040972.

Abstract

The Atg1 complex, which contains 5 major subunits: Atg1, Atg13, Atg17, Atg29, and Atg31, regulates the induction of autophagy and autophagosome formation. To gain a better understanding of the overall architecture and assembly mechanism of this essential autophagy regulatory complex, we have reconstituted a core assembly of the Saccharomyces cerevisiae Atg1 complex composed of full-length Atg17, Atg29, and Atg31, along with the C-terminal domains of Atg1 (Atg1[CTD]) and Atg13 (Atg13[CTD]). Using chemical-crosslinking coupled with mass spectrometry (CXMS) analysis we systematically mapped the intersubunit interaction interfaces within this complex. Our data revealed that the intrinsically unstructured C-terminal domain of Atg29 interacts directly with Atg17, whereas Atg17 interacts with Atg13 in 2 distinct intrinsically unstructured regions, including a previously unknown motif that encompasses several putative phosphorylation sites. The Atg1[CTD] crosslinks exclusively to the Atg13[CTD] and does not appear to make direct contact with the Atg17-Atg31-Atg29 scaffold. Finally, single-particle electron microscopy analysis revealed that both the Atg13[CTD] and Atg1[CTD] localize to the tip regions of Atg17-Atg31-Atg29 and do not alter the distinct curvature of this scaffolding subcomplex. This work provides a comprehensive understanding of the subunit interactions in the fully assembled Atg1 core complex, and uncovers the potential role of intrinsically disordered regions in regulating complex integrity.

摘要

Atg1复合物包含5个主要亚基:Atg1、Atg13、Atg17、Atg29和Atg31,它调节自噬的诱导和自噬体的形成。为了更好地理解这个重要的自噬调节复合物的整体结构和组装机制,我们重构了酿酒酵母Atg1复合物的核心组装体,该组装体由全长的Atg17、Atg29和Atg31以及Atg1的C末端结构域(Atg1[CTD])和Atg13的C末端结构域(Atg13[CTD])组成。我们使用化学交联结合质谱(CXMS)分析,系统地绘制了该复合物内亚基间的相互作用界面。我们的数据显示,Atg29本质上无序的C末端结构域直接与Atg17相互作用,而Atg17在2个不同的本质上无序的区域与Atg13相互作用,包括一个以前未知的基序,该基序包含几个假定的磷酸化位点。Atg1[CTD]仅与Atg13[CTD]交联,似乎不与Atg17 - Atg31 - Atg29支架直接接触。最后,单颗粒电子显微镜分析表明,Atg13[CTD]和Atg1[CTD]都定位于Atg17 - Atg31 - Atg29的末端区域,并且不会改变这个支架亚复合物的独特曲率。这项工作全面地理解了完全组装的Atg1核心复合物中的亚基相互作用,并揭示了内在无序区域在调节复合物完整性方面的潜在作用。

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