Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel

Jongdae Won, Jinhyeong Kim, Jinsung Kim, Juyeon Ko, Christine Haewon Park, Byeongseok Jeong, Sang-Eun Lee, Hyeongseop Jeong, Sun-Hong Kim, Hyunwoo Park, Insuk So, Hyung Ho Lee
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Abstract

Transient receptor potential (TRP) ion channels have a crucial role as cellular sensors, mediating diverse physical and chemical stimuli. The formation of heteromeric structures expands the functionality of TRP channels; however, their molecular architecture remains largely unknown. Here we present the cryo-electron microscopy structures of the human TRPC1/TRPC4 heteromer in the apo and antagonist-bound states, both consisting of one TRPC1 subunit and three TRPC4 subunits. The heteromer structure reveals a distinct ion-conduction pathway, including an asymmetrically constricted selectivity filter and an asymmetric lower gate, primarily attributed to the incorporation of TRPC1. Through a structure-guided electrophysiological assay, we show that both the selectivity filter and the lower part of the S6 helix participate in deciding overall preference for permeating monovalent cations. Moreover, we reveal that the introduction of one lysine residue of TRPC1 into the tetrameric central cavity is enough to render one of the most important functional consequences of TRPC heteromerization: reduced calcium permeability. Our results establish a framework for addressing the structure–function relationship of the heteromeric TRP channels.

Abstract Image

异构 TRPC1/TRPC4 通道的冷冻电镜结构
瞬态受体电位(TRP)离子通道作为细胞传感器,在介导各种物理和化学刺激方面发挥着至关重要的作用。异构体结构的形成扩展了 TRP 通道的功能;然而,它们的分子结构在很大程度上仍不为人知。在这里,我们展示了人类 TRPC1/TRPC4 异构体在无拮抗剂和拮抗剂结合状态下的冷冻电镜结构,两者都由一个 TRPC1 亚基和三个 TRPC4 亚基组成。异构体结构揭示了一个独特的离子传导途径,包括一个不对称收缩的选择性过滤器和一个不对称的下闸门,这主要归因于 TRPC1 的加入。通过结构引导的电生理试验,我们发现选择性过滤器和 S6 螺旋的下部都参与决定渗透单价阳离子的整体偏好。此外,我们还揭示出,将 TRPC1 的一个赖氨酸残基引入四聚体中心腔足以产生 TRPC 异构化最重要的功能性后果之一:钙渗透性降低。我们的研究结果为研究异构 TRP 通道的结构-功能关系建立了一个框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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