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膜电位通过稳定 Na/葡萄糖协同转运蛋白 vSGLT 的外向构象来加速糖的摄取。

Membrane potential accelerates sugar uptake by stabilizing the outward facing conformation of the Na/glucose symporter vSGLT.

机构信息

Department of Physiology, David Geffen School of Medicine, University of California, Los Angeles, Los Angeles, CA, 90095, USA.

Department of Structural Biology, Van Andel Institute, Grand Rapids, MI, 49503, USA.

出版信息

Nat Commun. 2023 Nov 18;14(1):7511. doi: 10.1038/s41467-023-43119-z.

Abstract

Sodium-dependent glucose transporters (SGLTs) couple a downhill Na ion gradient to actively transport sugars. Here, we investigate the impact of the membrane potential on vSGLT structure and function using sugar uptake assays, double electron-electron resonance (DEER), electrostatic calculations, and kinetic modeling. Negative membrane potentials, as present in all cell types, shift the conformational equilibrium of vSGLT towards an outward-facing conformation, leading to increased sugar transport rates. Electrostatic calculations identify gating charge residues responsible for this conformational shift that when mutated reduce galactose transport and eliminate the response of vSGLT to potential. Based on these findings, we propose a comprehensive framework for sugar transport via vSGLT, where the cellular membrane potential facilitates resetting of the transporter after cargo release. This framework holds significance not only for SGLTs but also for other transporters and channels.

摘要

钠依赖型葡萄糖转运体(SGLTs)利用 downhill 的 Na+离子梯度主动转运糖。在这里,我们通过糖摄取实验、双电子电子共振(DEER)、静电计算和动力学建模来研究膜电位对 vSGLT 结构和功能的影响。所有细胞类型中都存在的负膜电位会使 vSGLT 的构象平衡向向外开放的构象移动,从而提高糖的转运速率。静电计算确定了门控电荷残基负责这种构象转变,当突变时会降低半乳糖的转运,并消除 vSGLT 对电位的响应。基于这些发现,我们提出了一个通过 vSGLT 进行糖转运的综合框架,其中细胞膜电位有助于在货物释放后重置转运体。这个框架不仅对 SGLTs 具有重要意义,对其他转运体和通道也具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dcd0/10657379/39999defc959/41467_2023_43119_Fig1_HTML.jpg

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