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bioRxiv · 10.1101/2021.05.23.445323

Elucidating the structural features of ABCA1 in its heterogeneous membrane environment.

Abstract

ATP Binding Cassette Transporter A1 (ABCA1) plays an integral part in Reverse Cholesterol Transport (RCT) and is critical for maintaining lipid homeostasis. One theory of lipid efflux by the transporter (alternating access) proposes that ABCA1 harbours two different conformations that provide alternating access for lipid binding and release. This is followed by a sequestration via a direct interaction between ABCA1 and its partner, ApoA1. The alternative theory (lateral access) proposes that ABCA1 obtains lipids laterally from the membrane to form a temporary extracellular "reservoir". This reservoir contains an isolated lipid monolayer due to the net accumulation of lipids in the exofacial leaflet. Recently, a full-length Cryo-EM structure of this 2,261-residue transmembrane protein showed its discreetly folded domains and have detected the presence of a tunnel enclosed within ECDs but not in theTMDs giving it an outward-facing conformation. This structure was hypothesized to substantiate the lateral access theory, whereby ApoA1 obtained lipids from the proximal end laterally. Utilizing long time-scale multiple replica atomistic molecular dynamics simulations (MDS), we simulated the structure in a large heterogeneous lipid environment and found that along with several large conformational changes, the protein harbours a continuous tunnel that traverses the entire length of the protein. In this study, we have characterized ABCA1 and the lipid dynamics along with the protein-lipid interactions in the heterogeneous environment, providing novel insights into understanding ABCA1 conformation at an atomistic level.

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S, S., Sacher, S., Garg, P., Ray, A.. 2021-05-23. Elucidating the structural features of ABCA1 in its heterogeneous membrane environment.. https://doi.org/10.1101/2021.05.23.445323

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