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鉴定外向构象中 SLC4 转运蛋白的多个底物结合位点:对转运机制的深入了解。

Identification of multiple substrate binding sites in SLC4 transporters in the outward-facing conformation: Insights into the transport mechanism.

机构信息

Centre for Molecular Simulation, Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada.

Department of Medicine, Division of Nephrology, David Geffen School of Medicine, University of California, Los Angeles, California, USA.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100724. doi: 10.1016/j.jbc.2021.100724. Epub 2021 Apr 28.

Abstract

Solute carrier family 4 (SLC4) transporters mediate the transmembrane transport of HCO, CO, and Cl necessary for pH regulation, transepithelial H/base transport, and ion homeostasis. Substrate transport with varying stoichiometry and specificity is achieved through an exchange mechanism and/or through coupling of the uptake of anionic substrates to typically co-transported Na. Recently solved outward-facing structures of two SLC4 members (human anion exchanger 1 [hAE1] and human electrogenic sodium bicarbonate cotransporter 1 [hNBCe1]) with different transport modes (Cl/HCO exchange versus Na-CO symport) revealed highly conserved three-dimensional organization of their transmembrane domains. However, the exact location of the ion binding sites and their protein-ion coordination motifs are still unclear. In the present work, we combined site identification by ligand competitive saturation mapping and extensive molecular dynamics sampling with functional mutagenesis studies which led to the identification of two substrate binding sites (entry and central) in the outward-facing states of hAE1 and hNBCe1. Mutation of residues in the identified binding sites led to impaired transport in both proteins. We also showed that R730 in hAE1 is crucial for anion binding in both entry and central sites, whereas in hNBCe1, a Na acts as an anchor for CO binding to the central site. Additionally, protonation of the central acidic residues (E681 in hAE1 and D754 in hNBCe1) alters the ion dynamics in the permeation cavity and may contribute to the transport mode differences in SLC4 proteins. These results provide a basis for understanding the functional differences between hAE1 and hNBCe1 and may facilitate potential drug development for diseases such as proximal and distal renal tubular acidosis.

摘要

溶质载体家族 4(SLC4)转运蛋白介导 HCO、CO 和 Cl 的跨膜转运,这对于 pH 调节、跨上皮 H/碱转运和离子稳态至关重要。通过交换机制和/或通过将阴离子底物的摄取与典型的共转运 Na 偶联,可以实现具有不同化学计量和特异性的底物转运。最近解决的两种 SLC4 成员(人阴离子交换器 1 [hAE1]和人电致性碳酸氢盐共转运蛋白 1 [hNBCe1])的外向构象结构,具有不同的转运模式(Cl/HCO 交换与 Na-CO 同向转运),揭示了其跨膜结构域的高度保守三维组织。然而,离子结合位点的确切位置及其蛋白质-离子配位基序仍不清楚。在本工作中,我们将配体竞争饱和作图和广泛的分子动力学采样与功能突变研究相结合,确定了 hAE1 和 hNBCe1 的外向构象中的两个底物结合位点(入口和中心)。鉴定结合位点的残基突变导致两种蛋白的转运受损。我们还表明,hAE1 中的 R730 对于入口和中心位点的阴离子结合都是至关重要的,而在 hNBCe1 中,Na 充当 CO 结合到中心位点的锚。此外,中心酸性残基(hAE1 中的 E681 和 hNBCe1 中的 D754)的质子化改变了渗透腔中的离子动力学,可能有助于 SLC4 蛋白的转运模式差异。这些结果为理解 hAE1 和 hNBCe1 之间的功能差异提供了基础,并可能为近端和远端肾小管酸中毒等疾病的潜在药物开发提供便利。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea45/8191340/2bc295c709ec/gr1.jpg

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