Structure of the human autophagy factor EPG5 and the molecular basis of its conserved mode of interaction with Atg8-family proteins.

Yiu Wing Sunny Cheung, Sung-Eun Nam, Gage M J Fairlie, Karlton Scheu, Jennifer M Bui, Hannah R Shariati, Jörg Gsponer, Calvin K Yip
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Abstract

The multi-step macroautophagy/autophagy process ends with the cargo-laden autophagosome fusing with the lysosome to deliver the materials to be degraded. The metazoan-specific autophagy factor EPG5 plays a crucial role in this step by enforcing fusion specificity and preventing mistargeting. How EPG5 exerts its critical function and how its deficiency leads to diverse phenotypes of the rare multi-system disorder Vici syndrome are not fully understood. Here, we report the first structure of human EPG5 (HsEPG5) determined by cryo-EM and AlphaFold2 modeling. Our structure revealed that HsEPG5 is constructed from helical bundles analogous to tethering factors in membrane trafficking pathways but contains a unique protruding thumb domain positioned adjacent to the atypical tandem LIR motifs involved in interaction with the GABARAP subfamily of Atg8-family proteins. Our NMR spectroscopic, molecular dynamics simulations and AlphaFold modeling studies showed that the HsEPG5 tandem LIR motifs only bind the canonical LIR docking site (LDS) on GABARAP without engaging in multivalent interaction. Our co-immunoprecipitation analysis further indicated that full-length HsEPG5-GABARAP interaction is mediated primarily by LIR1. Finally, our biochemical affinity isolation, X-ray crystallographic analysis, affinity measurement, and AlphaFold modeling demonstrated that this mode of binding is observed between Caenorhabditis elegans EPG-5 and its Atg8-family proteins LGG-1 and LGG-2. Collectively our work generated novel insights into the structural properties of EPG5 and how it potentially engages with the autophagosome to confer fusion specificity.ABBREVIATIONS: ATG: autophagy related; CSP: chemical shift perturbation; eGFP: enhanced green fluoresent protein; EM: electron microscopy; EPG5: ectopic P-granules 5 autophagy tethering factor; GST: glutathione S-transferase; HP: hydrophobic pocket; HSQC: heteronuclear single-quantum correlation; ITC: isothermal titration calorimetry; LDS: LC3 docking site; LIR: LC3-interacting region; MD: molecular dynamics; NMR: nuclear magnetic resonance; TEV: tobacco etch virus.

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人自噬因子EPG5的结构及其与atg8家族蛋白相互作用的保守模式的分子基础
多步骤的大自噬/自噬过程以装载货物的自噬体与溶酶体融合以传递要降解的物质而结束。后生动物特异性自噬因子EPG5通过加强融合特异性和防止误靶向在这一步骤中起着至关重要的作用。EPG5如何发挥其关键功能以及其缺乏如何导致罕见的多系统疾病Vici综合征的不同表型尚不完全清楚。在这里,我们报告了通过低温电镜和AlphaFold2模型确定的人类EPG5 (HsEPG5)的第一个结构。我们的结构揭示了HsEPG5是由类似于膜运输途径中的栓系因子的螺旋束构建的,但包含一个独特的突出的拇指结构域,位于与atg8家族蛋白的GABARAP亚家族相互作用的非典型串联LIR基序附近。我们的核磁共振波谱、分子动力学模拟和AlphaFold模型研究表明,HsEPG5串联LIR基序仅结合GABARAP上的典型LIR对接位点(LDS),而不参与多价相互作用。我们的共免疫沉淀分析进一步表明,全长HsEPG5-GABARAP相互作用主要由LIR1介导。最后,我们的生化亲和分离、x射线晶体分析、亲和测量和AlphaFold建模表明,秀丽隐杆线虫EPG-5与其atg8家族蛋白LGG-1和LGG-2之间存在这种结合模式。总的来说,我们的工作对EPG5的结构特性以及它如何潜在地与自噬体结合以赋予融合特异性产生了新的见解。缩写:ATG:自噬相关;CSP:化学位移摄动;eGFP:增强绿色荧光蛋白;EM:电子显微镜;EPG5:异位p -颗粒5自噬束缚因子;GST:谷胱甘肽s转移酶;HP:疏水性口袋;HSQC:异核单量子相关;等温滴定量热法;LDS: LC3对接站点;LIR: lc3相互作用区;MD:分子动力学;NMR:核磁共振;烟草蚀刻病毒。
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