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人尿酸盐转运蛋白 URAT1 的转运机制和结构药理学。

Transport mechanism and structural pharmacology of human urate transporter URAT1.

机构信息

Department of Structural Biology, St. Jude Children's Research Hospital, Memphis, TN, USA.

出版信息

Cell Res. 2024 Nov;34(11):776-787. doi: 10.1038/s41422-024-01023-1. Epub 2024 Sep 9.

Abstract

Urate is an endogenous product of purine metabolism in the liver. High urate levels in the blood lead to gout, a very common and painful inflammatory arthritis. Excreted urate is reabsorbed in the kidney mainly by URAT1 antiporter, a key target for anti-gout drugs. To uncover the mechanisms of urate transport and drug inhibition, we determined cryo-EM structures of human URAT1 with urate, counter anion pyrazinoate, or anti-gout drugs of different chemotypes - lesinurad, verinurad, and dotinurad. We captured the outward-to-inward transition of URAT1 during urate uptake, revealing that urate binds in a phenylalanine-rich pocket and engages with key gating residues to drive the transport cycle. In contrast to the single binding site for urate, pyrazinoate interacts with three distinct, functionally relevant sites within URAT1, a mechanism that has not yet been observed in other anion antiporters. In addition, we found that while all three drugs compete with substrates and halt the transport cycle, verinurad and dotinurad further hijack gating residues to achieve high potency. These insights advance our understanding of organic anion transport and provide a foundation for designing improved gout therapeutics.

摘要

尿酸是肝脏嘌呤代谢的内源性产物。血液中尿酸水平升高会导致痛风,这是一种非常常见且疼痛的炎症性关节炎。排泄的尿酸主要通过 URAT1 转运蛋白在肾脏中被重吸收,URAT1 转运蛋白是抗痛风药物的关键靶点。为了揭示尿酸转运和药物抑制的机制,我们利用 cryo-EM 技术确定了人类 URAT1 与尿酸、对阴离子吡嗪酸盐或不同化学型抗痛风药物(lesinurad、verinurad 和 dotinurad)的复合物结构。我们捕获了 URAT1 在摄取尿酸过程中外向到内向的转变,揭示了尿酸结合在富含苯丙氨酸的口袋中,并与关键门控残基相互作用,驱动转运循环。与尿酸的单一结合位点不同,吡嗪酸盐与 URAT1 内三个不同的、功能相关的位点相互作用,这种机制在其他阴离子转运蛋白中尚未观察到。此外,我们发现虽然这三种药物都与底物竞争并阻断转运循环,但 verinurad 和 dotinurad 进一步劫持门控残基以实现高活性。这些发现增进了我们对有机阴离子转运的理解,并为设计改进的痛风治疗药物提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf9b/11528023/6541f62ca530/41422_2024_1023_Fig1_HTML.jpg

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