Rem uncouples excitation-contraction coupling in adult skeletal muscle fibers.

The Journal of General Physiology Pub Date : 2015-07-01 Epub Date: 2015-06-15 DOI:10.1085/jgp.201411314
Donald Beqollari, Christin F Romberg, Dilyana Filipova, Ulises Meza, Symeon Papadopoulos, Roger A Bannister
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引用次数: 10

Abstract

In skeletal muscle, excitation-contraction (EC) coupling requires depolarization-induced conformational rearrangements in L-type Ca(2+) channel (Ca(V)1.1) to be communicated to the type 1 ryanodine-sensitive Ca(2+) release channel (RYR1) of the sarcoplasmic reticulum (SR) via transient protein-protein interactions. Although the molecular mechanism that underlies conformational coupling between Ca(V)1.1 and RYR1 has been investigated intensely for more than 25 years, the question of whether such signaling occurs via a direct interaction between the principal, voltage-sensing α(1S) subunit of Ca(V)1.1 and RYR1 or through an intermediary protein persists. A substantial body of evidence supports the idea that the auxiliary β(1a) subunit of Ca(V)1.1 is a conduit for this intermolecular communication. However, a direct role for β(1a) has been difficult to test because β(1a) serves two other functions that are prerequisite for conformational coupling between Ca(V)1.1 and RYR1. Specifically, β(1a) promotes efficient membrane expression of Ca(V)1.1 and facilitates the tetradic ultrastructural arrangement of Ca(V)1.1 channels within plasma membrane-SR junctions. In this paper, we demonstrate that overexpression of the RGK protein Rem, an established β subunit-interacting protein, in adult mouse flexor digitorum brevis fibers markedly reduces voltage-induced myoplasmic Ca(2+) transients without greatly affecting Ca(V)1.1 targeting, intramembrane gating charge movement, or releasable SR Ca(2+) store content. In contrast, a β(1a)-binding-deficient Rem triple mutant (R200A/L227A/H229A) has little effect on myoplasmic Ca(2+) release in response to membrane depolarization. Thus, Rem effectively uncouples the voltage sensors of Ca(V)1.1 from RYR1-mediated SR Ca(2+) release via its ability to interact with β(1a). Our findings reveal Rem-expressing adult muscle as an experimental system that may prove useful in the definition of the precise role of the β(1a) subunit in skeletal-type EC coupling.

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成人骨骼肌纤维的Rem解耦兴奋-收缩耦合。
在骨骼肌中,兴奋-收缩(EC)耦合需要去极化诱导的l型Ca(2+)通道(Ca(V)1.1)的构象重排,通过瞬时蛋白-蛋白相互作用传递给肌浆网(SR)的1型红胺敏感Ca(2+)释放通道(RYR1)。尽管Ca(V)1.1和RYR1之间构象耦合的分子机制已经被深入研究了超过25年,但这种信号传导是通过Ca(V)1.1的主要电压感应α(1S)亚基和RYR1之间的直接相互作用还是通过中间蛋白发生的问题仍然存在。大量证据支持Ca(V)1.1的辅助β(1a)亚基是这种分子间通信的管道的观点。然而,β(1a)的直接作用一直难以测试,因为β(1a)具有Ca(V)1.1和RYR1之间构象耦合的先决条件的两个其他功能。具体来说,β(1a)促进了Ca(V)1.1的高效膜表达,并促进了质膜- sr结内Ca(V)1.1通道的四重超微结构排列。在本文中,我们证明了RGK蛋白Rem(一种已建立的β亚基相互作用蛋白)在成年小鼠指屈肌短纤维中的过度表达可显著降低电压诱导的肌浆Ca(2+)瞬态,而不会对Ca(V)1.1靶向、膜内门控电荷运动或可释放的SR Ca(2+)储存含量产生很大影响。相比之下,β(1a)结合缺陷的Rem三突变体(R200A/L227A/H229A)对肌浆Ca(2+)释放在膜去极化反应中几乎没有影响。因此,Rem通过其与β相互作用的能力,有效地将Ca(V)1.1的电压传感器与ryr1介导的SR Ca(2+)释放解耦(1a)。我们的研究结果表明,表达rem的成人肌肉作为一个实验系统,可能有助于定义β(1a)亚基在骨骼型EC偶联中的精确作用。
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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