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Bewley, M. C.

Publications and source records attributed to Bewley, M. C..

3 recordsLinked to original sources

Translating Membrane Geometry into Protein Function: Multifaceted Membrane Interactions of Human Atg3 Promote LC3-Phosphatidylethanolamine Conjugation during Autophagy

Autophagosome formation is the hallmark of macroautophagy (herein referred to as autophagy) and requires the covalent conjugation of LC3 proteins (or Atg8 in yeast) to the amino headgroup of PE (phosphatidylethanolamine) lipids. Atg3 is an enzyme that catalyzes the final step of this reaction by transferring LC3 from an LC3-Atg3 intermediate to PEs in targeted membranes. Here, we determine the solution structure of human Atg3 (hAtg3) and demonstrate that the catalytically important regions of hAtg3 are conformationally dynamic. Furthermore, we reveal that these regions and hAtg3s N-terminal membrane curvature-sensing amphipathic helix concurrently interact with the membrane. These structural studies indicate that hAtg3 exploits a multifaceted membrane-association mechanism to position its catalytic center at the membrane surface and to bring the reaction substrates of LC3 and PE lipids to proximity for effective LC3-PE conjugation. In addition, our studies demonstrate that the interaction of the His266 residue with the membrane is primarily responsible for hAtg3s pH-dependent activity. Our investigations advance an emerging concept that the interactions of Atg3 with the highly curved membrane rims of the phagophore spatially regulate autophagosome biogenesis.

biochemistry↗

Curvature Sensing and Membrane Remodeling of the VPS37A N-terminal Domain during Autophagy

VPS37A, a component of ESCRT-I, is essential for recruiting a subset of ESCRT proteins that seal the phagophore during autophagosome biogenesis. In this study, we uncover two hydrophobic motifs in the VPS37A N-terminal 148 amino acids (VPS37A1-148) that selectively interact with highly curved membranes. Mutations in these motifs nearly abolish VPS37A membrane binding in vitro and compromise its localization to the phagophore and autophagic flux in vivo. We also determined the solution structure of residues 21 to 131 and demonstrated that it is the UEVL (ubiquitin E2 variant-like) domain. Intriguingly, this domain remodels highly curved liposomes to high-order structures. We suggest that the specific interactions between VPS37A1-148 and the curved membrane may facilitate the recruitment of VPS37A to the phagophore and its subsequent closure. Our results support the premise that the distinct membrane architecture of the cup-like phagophore spatiotemporally regulates autophagosome biogenesis.

biochemistry↗

Molecular architecture and domain arrangement of the placental malaria protein VAR2CSA suggests a model for receptor binding

VAR2CSA is the placental-malaria specific member of the antigenically variant Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP1) family. It is expressed on the surface of Plasmodium falciparum infected host red blood cells and binds to specific chondroitin-4-sulfate (CSA) chains of the placental proteoglycan receptor. The functional ~310 kDa ectodomain of VAR2CSA is a multi-domain protein that requires a minimum 12-mer CSA molecule for specific, high affinity receptor binding. However, how these domains interact to create the receptor binding surface is not known, limiting efforts to exploit its potential as an effective vaccine or drug target. Using small angle X-ray scattering and single particle reconstruction from negative stained electron micrographs of the ectodomain and multidomain constructs, we have determined the structural architecture of VAR2CSA. The relative location of the domains creates two distinct pores that can each accommodate the 12-mer of CSA, suggesting a model for receptor binding. This model has important implications for understanding cytoadherence of IRBCs and potentially provides a starting point for developing novel strategies to prevent and/or treat placental malaria.

biophysics↗