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红细胞带3阴离子交换器SLC4A1的组织与动力学:分子动力学模拟的见解

Organization and Dynamics of the Red Blood Cell Band 3 Anion Exchanger SLC4A1: Insights From Molecular Dynamics Simulations.

作者信息

Kalli Antreas C, Reithmeier Reinhart A F

机构信息

Leeds Institute of Cardiovascular and Metabolic Medicine and Astbury Center for Structural Molecular Biology, University of Leeds, Leeds, United Kingdom.

Department of Biochemistry, University of Toronto, Toronto, ON, Canada.

出版信息

Front Physiol. 2022 Feb 25;13:817945. doi: 10.3389/fphys.2022.817945. eCollection 2022.

Abstract

Molecular dynamics (MD) simulations have provided new insights into the organization and dynamics of the red blood cell Band 3 anion exchanger (AE1, SLC4A1). Band 3, like many solute carriers, works by an alternating access mode of transport where the protein rapidly (10/s) changes its conformation between outward and inward-facing states a transient occluded anion-bound intermediate. While structural studies of membrane proteins usually reveal valuable structural information, these studies provide a static view often in the presence of detergents. Membrane transporters are embedded in a lipid bilayer and associated lipids play a role in their folding and function. In this review, we highlight MD simulations of Band 3 in realistic lipid bilayers that revealed specific lipid and protein interactions and were used to re-create a model of the Wright (Wr) blood group antigen complex of Band 3 and Glycophorin A. Current MD studies of Band 3 and related transporters are focused on describing the trajectory of substrate binding and translocation in real time. A structure of the intact Band 3 protein has yet to be achieved experimentally, but cryo-electron microscopy in combination with MD simulations holds promise to capture the conformational changes associated with anion transport in exquisite molecular detail.

摘要

分子动力学(MD)模拟为红细胞带3阴离子交换蛋白(AE1,SLC4A1)的组织和动力学提供了新的见解。带3与许多溶质载体一样,通过交替访问运输模式发挥作用,即蛋白质在向外和向内朝向状态之间快速(10/s)改变其构象——一种短暂的封闭阴离子结合中间体。虽然膜蛋白的结构研究通常能揭示有价值的结构信息,但这些研究通常是在存在去污剂的情况下提供静态视图。膜转运蛋白嵌入脂质双层中,相关脂质在其折叠和功能中发挥作用。在本综述中,我们重点介绍了在真实脂质双层中对带3的MD模拟,这些模拟揭示了特定的脂质和蛋白质相互作用,并被用于重建带3和血型糖蛋白A的赖特(Wr)血型抗原复合物模型。目前对带3及相关转运蛋白的MD研究集中于实时描述底物结合和转运的轨迹。完整的带3蛋白结构尚未通过实验获得,但冷冻电子显微镜结合MD模拟有望以精细的分子细节捕捉与阴离子转运相关的构象变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd46/8914234/801c718b6f7f/fphys-13-817945-g001.jpg

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