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NO-敏感型鸟苷酸环化酶的功能:从遗传小鼠模型中学到的知识。

The function of NO-sensitive guanylyl cyclase: what we can learn from genetic mouse models.

机构信息

Physiologisches Institut I, Universität Würzburg, Röntgenring 9, 97070 Würzburg, Germany.

出版信息

Nitric Oxide. 2009 Nov-Dec;21(3-4):149-56. doi: 10.1016/j.niox.2009.07.004. Epub 2009 Jul 25.

Abstract

The signaling molecule nitric oxide (NO) acts as physiological activator of NO-sensitive guanylyl cyclase (NO-GC) in the cardiovascular, gastrointestinal and nervous systems. Two isoforms of NO-GC are known to exist on the protein level. The enzyme is a heterodimer consisting of an alpha (alpha(1) or alpha(2)) and a beta subunit (beta(1)). Strategies for the genomic deletion of either subunit have been developed in the recent years. Removal of one of the two isoforms by deletion of one of the alpha subunits allowed the investigation of the specific functions of the respective isoform. The deletion of the beta(1) subunit led to complete knock-out thus completely disrupting the NO/cGMP signaling cascade. The phenotypes of these KO mice have corroborated the already known physiological importance of the NO/cGMP cascade e.g. in the regulation of blood pressure, platelet inhibition, interneuronal communication; yet, they have also given hints to novel functions and mechanisms. In addition, mice lacking both NO-GC isoforms permitted the investigation of possible cGMP-independent signaling pathways of NO. As cell- and tissue-specific knock-out models are beginning to emerge, a more detailed analysis of the importance of the NO receptor in specific tissues will become possible.

摘要

信号分子一氧化氮(NO)在心血管、胃肠道和神经系统中作为生理激活剂作用于一氧化氮敏感的鸟苷酸环化酶(NO-GC)。目前已知在蛋白质水平上存在两种 NO-GC 同工型。该酶是由一个α(α(1)或α(2))和一个β亚基(β(1))组成的异二聚体。近年来已经开发出用于基因组缺失任一亚基的策略。通过删除一个α亚基来删除两种同工型中的一种,允许研究各自同工型的特定功能。β(1)亚基的缺失导致完全敲除,从而完全破坏了 NO/cGMP 信号级联。这些 KO 小鼠的表型证实了已经知道的 NO/cGMP 级联的生理重要性,例如在调节血压、血小板抑制、中间神经元通讯方面;然而,它们也为新的功能和机制提供了线索。此外,缺乏两种 NO-GC 同工型的小鼠允许研究 NO 的可能 cGMP 非依赖性信号通路。随着细胞和组织特异性敲除模型的出现,对特定组织中 NO 受体的重要性进行更详细的分析将成为可能。

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