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连接蛋白36间隙连接通道的N端结构域与电压依赖性

The N-terminal domain and voltage dependence of connexin-36 gap junction channels.

作者信息

Gudaitis L, Snipas M, Kraujalis T, Kraujaliene L, Verselis V K

机构信息

Institute of Cardiology at Lithuanian University of Health Sciences, Sukileliu str. 15, Kaunas, 50103, Lithuania.

Institute of Cardiology at Lithuanian University of Health Sciences, Sukileliu str. 15, Kaunas, 50103, Lithuania; Department of Mathematical Modelling at Kaunas University of Technology, Studentu str. 50, Kaunas, 51368, Lithuania.

出版信息

Arch Biochem Biophys. 2025 Oct;772:110556. doi: 10.1016/j.abb.2025.110556. Epub 2025 Jul 19.

Abstract

Connexin-36 (Cx36) forms gap junction (GJ) channels that constitute the majority of electrical synapses in mammalian CNS and enable direct signaling between pancreatic beta cells. GJ channels are formed by the docking of two hexameric Cx hemichannels, each gating in response to the transjunctional voltage, V. Two distinct V gating mechanisms, attributed to the N-terminal domain (NT) and the first extracellular loop, are operative in each hemichannel and can modulate coupling. Uniquely among the 21 human Cx isoforms, intracellular Mg robustly modulates Cx36 GJs, affecting the magnitude of coupling as well as sensitivity to V. Previously, we showed that charge substitutions E3Q, E8Q, A13K, and H18K in NT of Cx36 modified sensitivity to Mg. Here, we show that these same charge substitutions also alter V dependence. Mathematical modeling indicates that Mg effects alone cannot account for the data, implicating modification of intrinsic V gating properties. The NT domain forms the cytoplasmic vestibule of a GJ channel and a number of residues function in sensing V and stabilizing open/closed configurations. Molecular dynamics simulations show that each of the NT charge substitutions altered the electrostatic profile of the channel pore and produced widespread alterations in interactions between residues in NT and the transmembrane domains that can affect the stability of the putative open conformation. Using heterotypic pairings of WT Cx36 and variants, we established a positive gating polarity for Cx36 and demonstrated polarity reversal for the E3Q substitution, properties indicative that NT-mediated gating plays a predominant role in V-dependence of Cx36 GJs.

摘要

连接蛋白36(Cx36)形成间隙连接(GJ)通道,这些通道构成了哺乳动物中枢神经系统中大多数电突触,并使胰腺β细胞之间能够进行直接信号传递。GJ通道由两个六聚体Cx半通道对接形成,每个半通道根据跨结电压V进行门控。两种不同的V门控机制,分别归因于N端结构域(NT)和第一个细胞外环,在每个半通道中起作用并可调节偶联。在21种人类Cx异构体中,细胞内Mg强烈调节Cx36 GJ,影响偶联幅度以及对V的敏感性。此前,我们表明Cx36的NT中的电荷替代E3Q、E8Q、A13K和H18K改变了对Mg的敏感性。在这里,我们表明这些相同的电荷替代也改变了V依赖性。数学建模表明,仅Mg效应无法解释这些数据,这意味着内在V门控特性发生了改变。NT结构域形成GJ通道的细胞质前庭,许多残基在感知V和稳定开放/关闭构象中起作用。分子动力学模拟表明,每个NT电荷替代都改变了通道孔的静电分布,并在NT中的残基与跨膜结构域之间的相互作用中产生了广泛的改变,这可能影响假定开放构象的稳定性。使用野生型Cx36和变体的异型配对,我们确定了Cx36的正门控极性,并证明了E3Q替代的极性反转,这些特性表明NT介导的门控在Cx36 GJ的V依赖性中起主要作用。

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