[TRPA1通道在氧感应中的普遍作用】。]

Akito Nakao, Ke Liu, Nobuaki Takahashi, Yasuo Mori
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引用次数: 0

摘要

分子氧足以产生我们这些有氧生物生存所需的 ATP。但氧气也是活性氧的来源之一,会对生物体造成一系列损害。为了应对氧气在生物体内所发挥的这种固有的模糊作用,有氧机制配备了一个精巧的适应系统,它能灵敏地检测到体内的氧分压,并控制对组织的适当供氧。对缺氧的生理反应包括急性和慢性两个阶段,其中前者的氧传感仍然存在争议,特别是从机理角度来看。最近,我们发现对氧化还原反应敏感的阳离子通道 TRPA1 在外周组织和中枢神经系统的氧传感机制中发挥着关键作用。在这篇综述中,我们总结了氧传感机制研究的最新进展,包括颈动脉体中的氧传感机制,该器官已被认为是急性氧传感的核心氧受体器官。我们还讨论了 TRPA1 如何普遍存在于适应缺氧的急性阶段的机制中。
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[Universal roles of the TRPA1 channel in oxygen-sensing].

Molecular oxygen suffices the ATP production required for the survival of us aerobic organisms. But it is also true that oxygen acts as a source of reactive oxygen species that elicit a spectrum of damages in living organisms. To cope with such intrinsic ambiguity of biological activity oxygen exerts, aerobic mechanisms are equipped with an exquisite adaptive system, which sensitively detects partial pressure of oxygen within the body and controls appropriate oxygen supply to the tissues. Physiological responses to hypoxia are comprised of the acute and chronic phases, in the former of which the oxygen-sensing remains controversial particularly from mechanistic points of view. Recently, we have revealed that the prominently redox-sensitive cation channel TRPA1 plays key roles in oxygen-sensing mechanisms identified in the peripheral tissues and the central nervous system. In this review, we summarize recent development of researches on oxygen-sensing mechanisms including that in the carotid body, which has been recognized as the oxygen receptor organ central to acute oxygen-sensing. We also discuss how ubiquitously the TRPA1 contributes to the mechanisms underlying the acute phase of adaptation to hypoxia.

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来源期刊
Folia Pharmacologica Japonica
Folia Pharmacologica Japonica Pharmacology, Toxicology and Pharmaceutics-Pharmacology
CiteScore
0.40
自引率
0.00%
发文量
132
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