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一个疏水漏斗决定了离子通道TRPM5中的单价阳离子选择性。

A hydrophobic funnel governs monovalent cation selectivity in the ion channel TRPM5.

作者信息

Ives Callum M, Şahin Alp Tegin, Thomson Neil J, Zachariae Ulrich

机构信息

Computational Biology, School of Life Sciences, University of Dundee, Dundee, United Kingdom.

Computational Biology, School of Life Sciences, University of Dundee, Dundee, United Kingdom; School of Medicine, University of St Andrews, St Andrews, United Kingdom.

出版信息

Biophys J. 2024 Oct 1;123(19):3304-3316. doi: 10.1016/j.bpj.2024.07.035. Epub 2024 Jul 30.

Abstract

A key capability of ion channels is the facilitation of selective permeation of certain ionic species across cellular membranes at high rates. Due to their physiological significance, ion channels are of great pharmaceutical interest as drug targets. The polymodal signal-detecting transient receptor potential (TRP) superfamily of ion channels forms a particularly promising group of drug targets. While most members of this family permeate a broad range of cations including Ca, TRPM4 and TRPM5 are unique due to their strong monovalent selectivity and impermeability for divalent cations. Here, we investigated the mechanistic basis for their unique monovalent selectivity by in silico electrophysiology simulations of TRPM5. Our simulations reveal an unusual mechanism of cation selectivity, which is underpinned by the function of the central channel cavity alongside the selectivity filter. Our results suggest that a subtle hydrophobic barrier at the cavity entrance ("hydrophobic funnel") enables monovalent but not divalent cations to pass and occupy the cavity at physiologically relevant membrane voltages. Monovalent cations then permeate efficiently by a cooperative, distant knock-on mechanism between two binding regions in the extracellular pore vestibule and the central cavity. By contrast, divalent cations do not enter or interact favorably with the channel cavity due to its raised hydrophobicity. Hydrophilic mutations in the transition zone between the selectivity filter and the central channel cavity abolish the barrier for divalent cations, enabling both monovalent and divalent cations to traverse TRPM5.

摘要

离子通道的一项关键能力是促进某些离子种类以高速率选择性地透过细胞膜。由于其生理意义,离子通道作为药物靶点具有极大的药学研究价值。离子通道的多模式信号检测瞬时受体电位(TRP)超家族构成了一类特别有前景的药物靶点。虽然该家族的大多数成员能通透包括钙离子在内的多种阳离子,但TRPM4和TRPM5却很独特,因为它们对单价阳离子具有很强的选择性,且对二价阳离子不通透。在此,我们通过对TRPM5进行计算机模拟电生理实验,研究了其独特单价选择性的机制基础。我们的模拟揭示了一种不同寻常的阳离子选择性机制,该机制由中央通道腔以及选择性过滤器的功能所支撑。我们的结果表明,在通道腔入口处存在一个微妙的疏水屏障(“疏水漏斗”),使得单价阳离子而非二价阳离子能够通过并在生理相关膜电位下占据通道腔。单价阳离子随后通过细胞外孔前庭和中央通道腔中两个结合区域之间的协同、远距离撞击机制高效通透。相比之下,二价阳离子由于通道腔疏水性增强而无法进入或与通道腔发生有利的相互作用。在选择性过滤器和中央通道腔之间的过渡区进行亲水性突变会消除对二价阳离子的屏障,使单价和二价阳离子都能穿过TRPM5。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f66b/11480762/a1bcb950d65a/gr1.jpg

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