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Effects of inserting fluorescent proteins into the α1S II–III loop: insights into excitation–contraction coupling

机译:将荧光蛋白插入α1SII–III环的影响:激发-收缩耦合的见解

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摘要

In skeletal muscle, intermolecular communication between the 1,4-dihydropyridine receptor (DHPR) and RYR1 is bidirectional: orthograde coupling (skeletal excitation–contraction coupling) is observed as depolarization-induced Ca2+ release via RYR1, and retrograde coupling is manifested by increased L-type Ca2+ current via DHPR. A critical domain (residues 720–765) of the DHPR α1S II–III loop plays an important but poorly understood role in bidirectional coupling with RYR1. In this study, we examine the consequences of fluorescent protein insertion into different positions within the α1S II–III loop. In four constructs, a cyan fluorescent protein (CFP)–yellow fluorescent protein (YFP) tandem was introduced in place of residues 672–685 (the peptide A region). All four constructs supported efficient bidirectional coupling as determined by the measurement of L-type current and myoplasmic Ca2+ transients. In contrast, insertion of a CFP–YFP tandem within the N-terminal portion of the critical domain (between residues 726 and 727) abolished bidirectional signaling. Bidirectional coupling was partially preserved when only a single YFP was inserted between residues 726 and 727. However, insertion of YFP near the C-terminal boundary of the critical domain (between residues 760 and 761) or in the conserved C-terminal portion of the α1S II–III loop (between residues 785 and 786) eliminated bidirectional coupling. None of the fluorescent protein insertions, even those that interfered with signaling, significantly altered membrane expression or targeting. Thus, bidirectional signaling is ablated by insertions at two different sites in the C-terminal portion of the α1S II–III loop. Significantly, our results indicate that the conserved portion of the α1S II–III loop C terminal to the critical domain plays an important role in bidirectional coupling either by conveying conformational changes to the critical domain from other regions of the DHPR or by serving as a site of interaction with other junctional proteins such as RYR1.
机译:在骨骼肌中,1,4-二氢吡啶受体(DHPR)与RYR1之间是分子间的双向通讯:观察到正向耦合(骨骼兴奋-收缩耦合)是通过RYR1引起的去极化诱导的Ca 2 + 释放。 ,逆行耦合表现为通过DHPR增加L型Ca 2 + 电流。 DHPRα1SII-III环的关键域(残基720-765)在与RYR1双向偶联中起着重要但鲜为人知的作用。在这项研究中,我们检查了荧光蛋白插入α1SII–III环内不同位置的后果。在四个构建体中,引入了蓝绿色荧光蛋白(CFP)–黄色荧光蛋白(YFP)串联,以代替残基672–685(肽A区)。通过测量L型电流和肌质Ca 2 + 瞬变,这四个结构均支持有效的双向耦合。相反,在关键域的N末端部分(残基726和727之间)插入CFP-YFP串联消除了双向信号传递。当在残基726和727之间仅插入一个YFP时,双向耦合将部分保留。但是,在临界域的C端边界附近(残基760和761之间)或在保守的C端部分插入了YFP。 α1SII–III环(残基785和786之间)消除了双向耦合。没有一个荧光蛋白插入物,即使是那些干扰信号传导的插入物,也不会显着改变膜表达或靶向。因此,双向信号通过在α1SII–III环的C末端部分的两个不同位点插入而消除。重要的是,我们的结果表明,α1SII–III环C末端至关键结构域的保守部分通过将构象变化从DHPR的其他区域传递到关键结构域或用作位点,在双向偶联中起着重要作用。与其他连接蛋白(例如RYR1)的相互作用。

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