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[一氧化氮在生殖中的作用]

[The role of nitric oxide in reproduction].

作者信息

Tschugguel W, Schneeberger C, Unfried G, Bräutigam G, Wieser F, Czerwenka K, Vytiska-Binstorfer E, Kurz C, Weninger W, Mildner M, Waselmayr B, Bursch W, Kaider A, Waldhör T, Breitschopf H, Ellinger A, Huber J C

机构信息

Abteilung für gynäkologische Endokrinologie und Sterilitätsbehandlung, Klinik für Geburtshilfe und Frauenheilkunde, Universität Wien, Osterreich.

出版信息

Gynakol Geburtshilfliche Rundsch. 1998;38(1):44-6. doi: 10.1159/000022226.

Abstract

Nitrix oxide (NO) is a highly reactive and short-lived radical (half-life time: 10-12 s), which is derived from L-arginine by the NO synthases (NOS) in several organ systems. The release of NO by endothelial cells leads to rapid relaxation of vascular smooth muscle cells, whereas release by several neuronal cells causes neurotransmission. When NOS is actively induced in immune cells or certain epithelia it causes cytotoxicity and/or apoptosis of these cells. In the reproductive organs NO is now considered to be an important trigger molecule for several physiological mechanisms. Follicular synthesized NO is involved in rupture of the follicle during ovulation. Moreover, NO participates in the acrosome reaction of spermatozoa during capacitation. Apoptosis and collagenolysis of the functional endometrium may be involved in endometrial shedding during menstruation. Since NO induces both apoptosis and collagenolysis, the newly discovered production of NO in late secretory endometrium could act as a key mechanism in the process of menstrual disintegration of the endometrium. Additionally, NO is necessary to support and maintain the decidualization process and plays a pivotal role in implantation.

摘要

一氧化氮(NO)是一种高反应性且寿命短暂的自由基(半衰期:10 - 12秒),它由多种器官系统中的一氧化氮合酶(NOS)从L - 精氨酸衍生而来。内皮细胞释放NO会导致血管平滑肌细胞迅速舒张,而多种神经元细胞释放NO则会引起神经传递。当NOS在免疫细胞或某些上皮细胞中被积极诱导时,会导致这些细胞的细胞毒性和/或凋亡。在生殖器官中,NO现在被认为是多种生理机制的重要触发分子。卵泡合成的NO参与排卵期间卵泡的破裂。此外,NO在精子获能过程中参与精子的顶体反应。功能性子宫内膜的凋亡和胶原溶解可能参与月经期间子宫内膜的脱落。由于NO既能诱导凋亡又能诱导胶原溶解,因此新发现的晚期分泌期子宫内膜中NO的产生可能是子宫内膜月经崩解过程中的关键机制。此外,NO对于支持和维持蜕膜化过程是必需的,并且在着床过程中起关键作用。

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