The rod-shaped ATG2A-WIPI4 complex tethers membranes in vitro.

Takanori Otomo, Saikat Chowdhury, Gabriel C Lander
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引用次数: 19

Abstract

The autophagosome precursor membrane, termed the "isolation membrane" or "phagophore," emerges adjacent to a PI3P-enriched transient subdomain of the ER called the "omegasome," thereafter expanding to engulf cytoplasmic content. Uncovering the molecular events that occur in the vicinity of the omegasome during phagophore biogenesis is imperative for understanding the mechanisms involved in this critical step of the autophagy pathway. We recently characterized the ATG2A-WIPI4 complex, one of the factors that localize to the omegasome and play a critical role in mediating phagophore expansion. Our structural and biochemical studies revealed that ATG2A is a rod-shaped protein with membrane-interacting properties at each end, endowing ATG2A with membrane-tethering capability. Association of the PI3P-binding protein WIPI4 at one of the ATG2A tips enables the ATG2A-WIPI4 complex to specifically tether PI3P-containing membranes to non-PI3P-containing membranes. We proposed models for the ATG2A-WIPI4 complex-mediated membrane associations between the omegasome and surrounding membranes, including the phagophore edge, the ER, ATG9 vesicles, and COPII vesicles.

Abstract Image

杆状ATG2A-WIPI4复合物在体外系住膜。
自噬体前体膜,称为“隔离膜”或“吞噬体”,出现在内质网富含pi3p的瞬时亚域(称为“omegasome”)附近,随后扩张并吞噬细胞质内容物。揭示吞噬体生物发生过程中发生在巨体附近的分子事件对于理解自噬途径中这一关键步骤所涉及的机制是必要的。我们最近鉴定了ATG2A-WIPI4复合物,这是一个定位于大体并在介导吞噬细胞扩张中起关键作用的因子之一。我们的结构和生化研究表明,ATG2A是一种杆状蛋白,在每一端都具有膜相互作用的特性,使ATG2A具有膜系固能力。pi3p结合蛋白WIPI4在其中一个ATG2A尖端的结合使得ATG2A-WIPI4复合物特异性地将pi3p -含膜与非pi3p -含膜系在一起。我们提出了ATG2A-WIPI4复合物介导的大体与周围膜(包括吞噬体边缘、内质网、ATG9囊泡和COPII囊泡)之间膜关联的模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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