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无规则 TRPV4 N 端调控元件间的串扰调节脂质依赖型通道活性。

Crosstalk between regulatory elements in disordered TRPV4 N-terminus modulates lipid-dependent channel activity.

机构信息

Friedrich Schiller University Jena, Faculty of Chemistry and Earth Sciences, Institute of Organic Chemistry and Macromolecular Chemistry, Jena, Germany.

Centre for Biomolecular Magnetic Resonance (BMRZ), Goethe University, Frankfurt am Main, Germany.

出版信息

Nat Commun. 2023 Jul 13;14(1):4165. doi: 10.1038/s41467-023-39808-4.

Abstract

Intrinsically disordered regions (IDRs) are essential for membrane receptor regulation but often remain unresolved in structural studies. TRPV4, a member of the TRP vanilloid channel family involved in thermo- and osmosensation, has a large N-terminal IDR of approximately 150 amino acids. With an integrated structural biology approach, we analyze the structural ensemble of the TRPV4 IDR and the network of antagonistic regulatory elements it encodes. These modulate channel activity in a hierarchical lipid-dependent manner through transient long-range interactions. A highly conserved autoinhibitory patch acts as a master regulator by competing with PIP binding to attenuate channel activity. Molecular dynamics simulations show that loss of the interaction between the PIP-binding site and the membrane reduces the force exerted by the IDR on the structured core of TRPV4. This work demonstrates that IDR structural dynamics are coupled to TRPV4 activity and highlights the importance of IDRs for TRP channel function and regulation.

摘要

无规则区域(IDRs)对于膜受体的调节至关重要,但在结构研究中往往仍未得到解决。TRPV4 是参与温度和渗透压感知的 TRP 香草素通道家族的成员,其 N 端有一个大约 150 个氨基酸的大型 IDR。通过综合结构生物学方法,我们分析了 TRPV4 IDR 的结构组合及其编码的拮抗调节元件网络。这些通过层次化的脂质依赖的瞬时远程相互作用来调节通道活性。一个高度保守的自动抑制斑块作为主调节剂,通过与 PIP 结合竞争来减弱通道活性。分子动力学模拟表明,PIP 结合位点与膜之间的相互作用丧失会降低 IDR 对 TRPV4 结构核心的作用力。这项工作表明 IDR 的结构动力学与 TRPV4 的活性相关联,并强调了 IDR 对于 TRP 通道功能和调节的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1074/10344929/46e30c22f101/41467_2023_39808_Fig1_HTML.jpg

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