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骨骼肌信号传导中的活性氧物种

Reactive oxygen species in skeletal muscle signaling.

作者信息

Barbieri Elena, Sestili Piero

机构信息

Dipartimento di Scienze Biomolecolari, Università degli Studi di Urbino "Carlo Bo", via Saffi 2, 61029 Urbino, Italy.

出版信息

J Signal Transduct. 2012;2012:982794. doi: 10.1155/2012/982794. Epub 2011 Dec 5.

Abstract

Generation of reactive oxygen species (ROS) is a ubiquitous phenomenon in eukaryotic cells' life. Up to the 1990s of the past century, ROS have been solely considered as toxic species resulting in oxidative stress, pathogenesis and aging. However, there is now clear evidence that ROS are not merely toxic species but also-within certain concentrations-useful signaling molecules regulating physiological processes. During intense skeletal muscle contractile activity myotubes' mitochondria generate high ROS flows: this renders skeletal muscle a tissue where ROS hold a particular relevance. According to their hormetic nature, in muscles ROS may trigger different signaling pathways leading to diverging responses, from adaptation to cell death. Whether a "positive" or "negative" response will prevail depends on many variables such as, among others, the site of ROS production, the persistence of ROS flow or target cells' antioxidant status. In this light, a specific threshold of physiological ROS concentrations above which ROS exert negative, toxic effects is hard to determine, and the concept of "physiologically compatible" levels of ROS would better fit with such a dynamic scenario. In this review these concepts will be discussed along with the most relevant signaling pathways triggered and/or affected by ROS in skeletal muscle.

摘要

活性氧(ROS)的产生是真核细胞生命中普遍存在的现象。直到上世纪90年代,ROS一直仅被视为导致氧化应激、发病机制和衰老的毒性物质。然而,现在有明确证据表明,ROS不仅是毒性物质,而且在一定浓度范围内还是调节生理过程的有用信号分子。在剧烈的骨骼肌收缩活动中,肌管的线粒体产生大量ROS流:这使得骨骼肌成为ROS具有特殊重要性的组织。根据其 hormetic 性质,在肌肉中ROS可能触发不同的信号通路,导致从适应到细胞死亡等不同反应。“正向”或“负向”反应何者占主导取决于许多变量,例如ROS产生的部位、ROS流的持续时间或靶细胞的抗氧化状态等。鉴于此,很难确定生理ROS浓度的特定阈值,超过该阈值ROS会产生负面的毒性作用,而“生理兼容”水平的ROS概念更适合这种动态情况。在这篇综述中,将讨论这些概念以及骨骼肌中由ROS触发和/或影响的最相关信号通路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/146e/3235811/54ab994f3c08/JST2012-982794.001.jpg

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