Suppr超能文献

二脒那秦是酸敏感离子通道1a(ASIC1a)的一种缓慢的孔道阻滞剂。

Diminazene Is a Slow Pore Blocker of Acid-Sensing Ion Channel 1a (ASIC1a).

作者信息

Schmidt Axel, Rossetti Giulia, Joussen Sylvia, Gründer Stefan

机构信息

Institute of Physiology (A.S., S.J., S.G.), and Department of Oncology, Hematology and Stem Cell Transplantation (G.R.), RWTH Aachen University, Aachen, Germany; and Computational Biomedicine - Institute for Advanced Simulation/Institute of Neuroscience and Medicine, and Jülich Supercomputing Centre, Jülich, Germany (G.R.)

Institute of Physiology (A.S., S.J., S.G.), and Department of Oncology, Hematology and Stem Cell Transplantation (G.R.), RWTH Aachen University, Aachen, Germany; and Computational Biomedicine - Institute for Advanced Simulation/Institute of Neuroscience and Medicine, and Jülich Supercomputing Centre, Jülich, Germany (G.R.).

出版信息

Mol Pharmacol. 2017 Dec;92(6):665-675. doi: 10.1124/mol.117.110064. Epub 2017 Oct 12.

Abstract

Acid-sensing ion channels (ASICs) are neuronal receptors for extracellular protons. They contribute to the excitatory postsynaptic current and to the detection of painful acidosis. Moreover, they are activated during peripheral inflammation and acidosis associated with various neuronal disorders, such as stroke and neuroinflammation, rendering them interesting drug targets. Diminazene aceturate is a small-molecule inhibitor of ASICs with a reported apparent affinity in the low micromolar range, making it an interesting lead compound. It was reported that diminazene accelerates desensitization of ASICs, which was, however, not explained mechanistically. Furthermore, a binding site in a groove of the extracellular domain was proposed but not experimentally verified. In this study, we revisited the mechanism of inhibition by diminazene and its binding site on ASIC1a, the ASIC subunit with the greatest importance in the central nervous system. We show that diminazene slowly blocks ASIC1a, leading to the apparent acceleration of desensitization and underestimating its potency; we show that diminazene indeed has a submicromolar potency at ASIC1a (IC 0.3 M). Moreover, we show that the inhibition is voltage-dependent and competes with that by amiloride, a pore blocker of ASICs. Finally, we identify by molecular docking a binding site in the ion pore that we confirm by site-directed mutagenesis. In summary, our results show that diminazene blocks ASIC1a by a slow open-channel block and suggest that diminazene is an interesting lead compound for high-affinity blockers of ASICs.

摘要

酸敏感离子通道(ASICs)是细胞外质子的神经元受体。它们有助于兴奋性突触后电流以及疼痛性酸中毒的检测。此外,它们在与各种神经元疾病(如中风和神经炎症)相关的外周炎症和酸中毒期间被激活,这使得它们成为有趣的药物靶点。乙酰氧苄氨嘧啶是一种ASICs的小分子抑制剂,据报道其表观亲和力在低微摩尔范围内,使其成为一种有趣的先导化合物。据报道,乙酰氧苄氨嘧啶可加速ASICs的脱敏,但未从机制上进行解释。此外,有人提出细胞外结构域凹槽中的一个结合位点,但未通过实验验证。在本研究中,我们重新审视了乙酰氧苄氨嘧啶的抑制机制及其在ASIC1a上的结合位点,ASIC1a是在中枢神经系统中最重要的ASIC亚基。我们表明,乙酰氧苄氨嘧啶缓慢阻断ASIC1a,导致脱敏明显加速并低估其效力;我们表明,乙酰氧苄氨嘧啶在ASIC1a上确实具有亚微摩尔效力(IC 0.3 μM)。此外,我们表明这种抑制是电压依赖性的,并且与氨氯吡脒(一种ASICs的孔道阻断剂)的抑制作用相互竞争。最后,我们通过分子对接确定了离子孔中的一个结合位点,并通过定点诱变进行了证实。总之,我们的结果表明,乙酰氧苄氨嘧啶通过缓慢的开放通道阻断作用阻断ASIC1a,并表明乙酰氧苄氨嘧啶是一种有趣的ASICs高亲和力阻断剂的先导化合物。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验