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电压感知机制在骨骼肌兴奋-收缩耦联中的作用:初露端倪还是中年危机?

Voltage sensing mechanism in skeletal muscle excitation-contraction coupling: coming of age or midlife crisis?

机构信息

Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, 108 N. Greene Street, Baltimore, MD, 21201, USA.

出版信息

Skelet Muscle. 2018 Jul 19;8(1):22. doi: 10.1186/s13395-018-0167-9.

Abstract

The process by which muscle fiber electrical depolarization is linked to activation of muscle contraction is known as excitation-contraction coupling (ECC). Our understanding of ECC has increased enormously since the early scientific descriptions of the phenomenon of electrical activation of muscle contraction by Galvani that date back to the end of the eighteenth century. Major advances in electrical and optical measurements, including muscle fiber voltage clamp to reveal membrane electrical properties, in conjunction with the development of electron microscopy to unveil structural details provided an elegant view of ECC in skeletal muscle during the last century. This surge of knowledge on structural and biophysical aspects of the skeletal muscle was followed by breakthroughs in biochemistry and molecular biology, which allowed for the isolation, purification, and DNA sequencing of the muscle fiber membrane calcium channel/transverse tubule (TT) membrane voltage sensor (Cav1.1) for ECC and of the muscle ryanodine receptor/sarcoplasmic reticulum Ca release channel (RyR1), two essential players of ECC in skeletal muscle. In regard to the process of voltage sensing for controlling calcium release, numerous studies support the concept that the TT Cav1.1 channel is the voltage sensor for ECC, as well as also being a Ca channel in the TT membrane. In this review, we present early and recent findings that support and define the role of Cav1.1 as a voltage sensor for ECC.

摘要

肌肉纤维电去极化与肌肉收缩激活相关的过程被称为兴奋-收缩偶联(ECC)。自从 Galvani 在 18 世纪末对肌肉收缩的电激活现象进行早期科学描述以来,我们对 ECC 的理解已经有了巨大的提高。电和光学测量的重大进展,包括用于揭示膜电特性的纤维电压钳,以及电子显微镜的发展以揭示结构细节,为上个世纪骨骼肌的 ECC 提供了一个优雅的观点。对骨骼肌结构和生物物理方面的这些知识的大量涌现,随后在生物化学和分子生物学方面取得了突破,这使得 ECC 的肌肉纤维膜钙通道/横管(TT)膜电压传感器(Cav1.1)和肌肉ryanodine 受体/肌浆网 Ca 释放通道(RyR1)的分离、纯化和 DNA 测序成为可能,这两种都是骨骼肌 ECC 的重要参与者。关于控制钙释放的电压感应过程,许多研究支持 TT Cav1.1 通道是 ECC 的电压传感器的概念,同时也是 TT 膜中的 Ca 通道。在这篇综述中,我们提出了早期和最近的发现,这些发现支持并定义了 Cav1.1 作为 ECC 电压传感器的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9a6/6053751/653e20769d88/13395_2018_167_Fig1_HTML.jpg

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