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Structure and function of STAC proteins: Calcium channel modulators and critical components of muscle excitation–contraction coupling

机译:Stac蛋白的结构和功能:钙通道调节器和肌肉激发收缩耦合的关键组分

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摘要

In skeletal muscle tissue, an intriguing mechanical coupling exists between two ion channels from different membranes: the L-type voltage-gated calcium channel (CaV1.1), located in the plasma membrane, and ryanodine receptor 1 (RyR1) located in the sarcoplasmic reticulum membrane. Excitable cells rely on Cavs to initiate Ca2+ entry in response to action potentials. RyRs can amplify this signal by releasing Ca2+ from internal stores. Although this process can be mediated through Ca2+ as a messenger, an overwhelming amount of evidence suggests that RyR1 has recruited CaV1.1 directly as its voltage sensor. The exact mechanisms that underlie this coupling have been enigmatic, but a recent wave of reports have illuminated the coupling protein STAC3 as a critical player. Without STAC3, the mechanical coupling between Cav1.1 and RyR1 is lost, and muscles fail to contract. Various sequence variants of this protein have been linked to congenital myopathy. Other STAC isoforms are expressed in the brain and may serve as regulators of L-type CaVs. Despite the short length of STACs, several points of contacts have been proposed between them and CaVs. However, it is currently unclear whether STAC3 also forms direct interactions with RyR1, and whether this modulates RyR1 function. In this review, we discuss the 3D architecture of STAC proteins, the biochemical evidence for their interactions, the relevance of these connections for functional modulation, and their involvement in myopathy.
机译:在骨骼肌组织中,在来自不同膜的两个离子通道之间存在有趣的机械耦合:位于血浆膜中的L型电压门控钙通道(CaV1.1),以及位于肌浆的ryanodine受体1(Ryr1)中网状膜。依靠CAVE依赖CA2 +进入响应于动作电位来启动CA2 +条目。 Ryrs可以通过从内部商店释放CA2 +来扩增该信号。虽然该过程可以通过CA2 +作为信使介导,但是一种压倒性的证据表明,Ryr1直接招募了CAV1.1作为其电压传感器。提出这种耦合的确切机制是神秘的,但最近的一波报告已经照亮了偶联蛋白质Stac3作为关键员。没有Stac3,Cav1.1和Ryr1之间的机械耦合丢失,肌肉无法收缩。该蛋白质的各种序列变体与先天性肌病有关。其他STAC同种型在大脑中表达,可用作L型脉的调节剂。尽管STAC的长度短,但在它们和脉冲之间提出了几个触点点。但是,目前目前不清楚Stac3还与RYR1形成直接交互,以及这是否调制RYR1功能。在这篇综述中,我们讨论了Stac蛋白的3D架构,其相互作用的生化证据,这些连接对于功能调节的相关性,以及它们对肌病的参与。

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