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缺氧与平滑肌功能:代谢应激期间的关键调节事件

Hypoxia and smooth muscle function: key regulatory events during metabolic stress.

作者信息

Taggart M J, Wray S

机构信息

Physiology Department, University of Liverpool, Crown Street, Liverpool L69 3BX, UK.

出版信息

J Physiol. 1998 Jun 1;509 ( Pt 2)(Pt 2):315-25. doi: 10.1111/j.1469-7793.1998.315bn.x.

Abstract

Hypoxia rapidly reduces force in many smooth muscles and we review recent data that shed light on the mechanisms involved. As many regulated cellular processes are integrated to co-ordinate smooth muscle contractility, the processes responsible for decreased force output with altered metabolism are also likely to be many, acting in concert, rather than the actions of one altered parameter. Nevertheless the aim of this study is to elucidate the hierarchical series of events that contribute to reduced smooth muscle force production during altered metabolism. We conclude that in many phasic smooth muscles the decrease in force can be attributed to impaired electro-mechanical coupling whereby the Ca2+ transient is reduced. A direct effect of hypoxia on the Ca2+ channel may be of key importance. In tonic vascular smooth muscles KATP channels may also play a role in the integrated functional responses to hypoxia. There are also many examples of force being reduced, in tonically activated preparations, without a fall in steady-state Ca2+; indeed it usually increases. We examine the roles of altered [ATP], pH, myosin phosphorylation, inorganic phosphate and proteolytic activity on the [Ca2+]-force relationship during hypoxia. We find no defining force-inhibitory role for any one factor acting alone, and suggest that force most probably falls as a result of the combination of myriad factors.

摘要

缺氧会迅速降低许多平滑肌的收缩力,我们回顾了近期揭示其中涉及机制的数据。由于许多受调控的细胞过程相互整合以协调平滑肌收缩性,因此在代谢改变时导致力输出降低的过程可能也有很多,它们协同作用,而非单一改变参数的作用。尽管如此,本研究的目的是阐明在代谢改变期间导致平滑肌力产生减少的一系列层级事件。我们得出结论,在许多相性平滑肌中,力的降低可归因于电 - 机械偶联受损,由此Ca2 + 瞬变减少。缺氧对Ca2 + 通道的直接作用可能至关重要。在紧张性血管平滑肌中,KATP通道也可能在对缺氧的综合功能反应中发挥作用。在紧张性激活的标本中,也有许多力降低的例子,而稳态Ca2 + 并未下降;实际上,它通常会增加。我们研究了缺氧期间[ATP]、pH、肌球蛋白磷酸化、无机磷酸盐和蛋白水解活性的改变对[Ca2 + ] - 力关系的作用。我们发现没有任何一个单独作用的因素具有明确的抑制力的作用,并表明力最可能是多种因素共同作用的结果而下降。

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