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机械敏感性的分子基础。

Molecular basis of mechanosensitivity.

机构信息

Nerve-Gut Research Laboratory, Department of Gastroenterology & Hepatology, Hanson Institute, Royal Adelaide Hospital, Adelaide, South Australia, 5000 Australia.

出版信息

Auton Neurosci. 2010 Feb 16;153(1-2):58-68. doi: 10.1016/j.autneu.2009.07.017. Epub 2009 Aug 15.

Abstract

An organism's ability to perceive mechanical stimuli is vital in determining how it responds to environmental challenges. External mechanosensation is responsible for the senses of touch, hearing, proprioception and aspects of somatic pain. Internally, mechanosensation underlies the initiation of autonomic reflex control and all manner of visceral sensations including chronic pain. Despite our increased knowledge of the molecular identity of invertebrate proteins that convert mechanical stimuli into electrical signals, understanding the complete molecular basis of mammalian mechanotransduction is currently a major challenge. Although the number of candidate molecules that serve as mechanotransducers is ever increasing, debate currently rages as to whether or not they contribute directly or indirectly to mammalian mechanotransduction. Despite these controversies novel molecules have been identified and their contribution to mechanosensation, be it direct or indirect, have improved our understanding of the mechanisms underlying visceral mechanosensation. Moreover, they have provided potential new pharmacological strategies for the control of visceral pain.

摘要

生物体感知机械刺激的能力对于确定其如何应对环境挑战至关重要。外部机械感觉负责触觉、听觉、本体感觉和躯体疼痛的某些方面。在内部,机械感觉是自主反射控制和各种内脏感觉的基础,包括慢性疼痛。尽管我们对将机械刺激转化为电信号的无脊椎动物蛋白质的分子身份有了更多的了解,但理解哺乳动物机械转导的完整分子基础目前仍是一个主要挑战。尽管作为机械感受器的候选分子数量不断增加,但目前仍存在争议,即它们是直接还是间接参与哺乳动物机械转导。尽管存在这些争议,但已经鉴定出了新的分子,它们对机械感觉的直接或间接贡献提高了我们对内脏机械感觉机制的理解。此外,它们为控制内脏疼痛提供了潜在的新的药理学策略。

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