4.7 Article

Insights on autophagosome-lysosome tethering from structural and biochemical characterization of human autophagy factor EPG5

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COMMUNICATIONS BIOLOGY
卷 4, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s42003-021-01830-x

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资金

  1. ALS-ENABLE program - National Institutes of Health, National Institute of General Medical Sciences [P30 GM124169-01, DE-AC02-05CH11231]
  2. NIH [P41-GM103311]
  3. CIHR Foundation Grant [FDN-143228]
  4. CIHR [PJT-168907]
  5. NHMRC [APP1160315]
  6. ARC [DP200100347, FT1601100063]
  7. Australian Research Council [DP200100347] Funding Source: Australian Research Council

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Nam and Cheung et al. describe the structural and biochemical characterization of human autophagy factor EPG5 that functions in autophagosome-lysosome tethering. They show that hEPG5 adopts an extended shepherd's staff architecture, binds preferentially to GABARAP proteins, and is recruited to mitochondria during mitophagy.
Pivotal to the maintenance of cellular homeostasis, macroautophagy (hereafter autophagy) is an evolutionarily conserved degradation system that involves sequestration of cytoplasmic material into the double-membrane autophagosome and targeting of this transport vesicle to the lysosome/late endosome for degradation. EPG5 is a large-sized metazoan protein proposed to serve as a tethering factor to enforce autophagosome-lysosome/late endosome fusion specificity, and its deficiency causes a severe multisystem disorder known as Vici syndrome. Here, we show that human EPG5 (hEPG5) adopts an extended shepherd's staff architecture. We find that hEPG5 binds preferentially to members of the GABARAP subfamily of human ATG8 proteins critical to autophagosome-lysosome fusion. The hEPG5-GABARAPs interaction, which is mediated by tandem LIR motifs that exhibit differential affinities, is required for hEPG5 recruitment to mitochondria during PINK1/Parkin-dependent mitophagy. Lastly, we find that the Vici syndrome mutation Gln336Arg does not affect the hEPG5's overall stability nor its ability to engage in interaction with the GABARAPs. Collectively, results from our studies reveal new insights into how hEPG5 recognizes mature autophagosome and establish a platform for examining the molecular effects of Vici syndrome disease mutations on hEPG5. Nam and Cheung et al. describe the structural and biochemical characterization of human autophagy factor EPG5 that functions in autophagosome-lysosome tethering. They show that hEPG5 adopts an extended shepherd's staff architecture, binds preferentially to GABARAP proteins, and is recruited to mitochondria during mitophagy.

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