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人类有机阳离子转运体1转运与抑制的结构见解

Structural insights into human organic cation transporter 1 transport and inhibition.

作者信息

Zhang Shuhao, Zhu Angqi, Kong Fang, Chen Jianan, Lan Baoliang, He Guodong, Gao Kaixuan, Cheng Lili, Sun Xiaoou, Yan Chuangye, Chen Ligong, Liu Xiangyu

机构信息

State Key Laboratory of Membrane Biology, Tsinghua-Peking Center for Life Sciences, School of Pharmaceutical Sciences, Tsinghua University, Beijing, China.

Beijing Frontier Research Center for Biological Structure, Tsinghua University, Beijing, China.

出版信息

Cell Discov. 2024 Mar 15;10(1):30. doi: 10.1038/s41421-024-00664-1.

Abstract

The human organic cation transporter 1 (hOCT1), also known as SLC22A1, is integral to hepatic uptake of structurally diversified endogenous and exogenous organic cations, influencing both metabolism and drug pharmacokinetics. hOCT1 has been implicated in the therapeutic dynamics of many drugs, making interactions with hOCT1 a key consideration in novel drug development and drug-drug interactions. Notably, metformin, the frontline medication for type 2 diabetes, is a prominent hOCT1 substrate. Conversely, hOCT1 can be inhibited by agents such as spironolactone, a steroid analog inhibitor of the aldosterone receptor, necessitating a deep understanding of hOCT1-drug interactions in the development of new pharmacological treatments. Despite extensive study, specifics of hOCT1 transport and inhibition mechanisms remain elusive at the molecular level. Here, we present cryo-electron microscopy structures of the hOCT1-metformin complex in three distinct conformational states - outward open, outward occluded, and inward occluded as well as substrate-free hOCT1 in both partially and fully open states. We also present hOCT1 in complex with spironolactone in both outward and inward facing conformations. These structures provide atomic-level insights into the dynamic metformin transfer process via hOCT1 and the mechanism by which spironolactone inhibits it. Additionally, we identify a 'YER' motif critical for the conformational flexibility of hOCT1 and likely other SLC22 family transporters. Our findings significantly advance the understanding of hOCT1 molecular function and offer a foundational framework for the design of new therapeutic agents targeting this transporter.

摘要

人类有机阳离子转运体1(hOCT1),也被称为SLC22A1,对于肝脏摄取结构多样的内源性和外源性有机阳离子至关重要,影响着代谢和药物的药代动力学。hOCT1与许多药物的治疗动态相关,使得与hOCT1的相互作用成为新药开发和药物相互作用中的关键考虑因素。值得注意的是,2型糖尿病的一线药物二甲双胍是一种重要的hOCT1底物。相反,hOCT1可被诸如螺内酯(一种醛固酮受体的类固醇类似物抑制剂)等药物抑制,这就需要在新的药物治疗开发中深入了解hOCT1与药物的相互作用。尽管进行了广泛研究,但hOCT1转运和抑制机制的具体细节在分子水平上仍然难以捉摸。在这里,我们展示了处于三种不同构象状态——向外开放、向外堵塞和向内堵塞——的hOCT1 - 二甲双胍复合物的冷冻电子显微镜结构,以及部分开放和完全开放状态下无底物的hOCT1。我们还展示了hOCT1与螺内酯处于向外和向内构象时的复合物结构。这些结构提供了关于二甲双胍通过hOCT1进行动态转运过程以及螺内酯抑制该过程的机制的原子水平见解。此外,我们确定了一个对hOCT1以及可能其他SLC22家族转运体的构象灵活性至关重要的“YER”基序。我们的研究结果显著推进了对hOCT1分子功能的理解,并为设计针对该转运体的新型治疗药物提供了基础框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b841/10940649/269e470b28c2/41421_2024_664_Fig1_HTML.jpg

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