哺乳动物精子发生中的氧化还原反应和氧化应激下活性氧的潜在靶点。

Spermatogenesis Pub Date : 2014-12-31 eCollection Date: 2014-05-01 DOI:10.4161/21565562.2014.979108
Junichi Fujii, Hirotaka Imai
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引用次数: 30

摘要

还原氧化(Redox)反应是所有生物体中普遍存在的重要活动机制,它们在精子发生的调节中也发挥着关键作用。在这里,我们重点讨论了最近引起广泛关注的3个氧化还原相关过程:活性氧(ROS)(如过氧化氢)对信号转导的调节、内质网(ER)中的氧化蛋白折叠以及精子染色质凝聚过程中精蛋白的硫氧化。前两个过程是细胞生物学中新兴的主题,适用于大多数活细胞,包括生精细胞。ROS在信号转导中的作用在过去20年中得到了阐明,并受到了广泛的关注,尤其是从有丝分裂信号的适当控制的角度来看。内质网中的氧化还原过程很重要,因为这是分泌蛋白和膜蛋白合成并朝着其功能结构前进的细胞器,因此内质网的故障不仅影响相关细胞,还影响多细胞生物中分泌蛋白的接受细胞。硫氧化是这些过程中的第三个,染色质的硫氧化是精子成熟过程中的一个独特过程。在最近的亚砜酶研究中,GPX4已成为一种很有前途的酶,在生产可育精子中发挥重要作用,但其他氧化还原蛋白的参与也越来越明显。由于参与氧化还原反应的分子容易被氧化,它们对氧化损伤很敏感,这使它们成为抗氧化治疗的潜在靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Redox reactions in mammalian spermatogenesis and the potential targets of reactive oxygen species under oxidative stress.

Reduction-oxidation (Redox) reactions are ubiquitous mechanisms for vital activities in all organisms, and they play pivotal roles in the regulation of spermatogenesis as well. Here we focus on 3 redox-involved processes that have drawn much recent attention: the regulation of signal transduction by reactive oxygen species (ROS) such as hydrogen peroxide, oxidative protein folding in the endoplasmic reticulum (ER), and sulfoxidation of protamines during sperm chromatin condensation. The first 2 of these processes are emerging topics in cell biology and are applicable to most living cells, which includes spermatogenic cells. The roles of ROS in signal transduction have been elucidated in the last 2 decades and have received broad attention, most notably from the viewpoint of the proper control of mitotic signals. Redox processes in the ER are important because this is the organelle where secretory and membrane proteins are synthesized and proceed toward their functional structure, so that malfunction of the ER affects not only the involved cells but also the accepting cells of the secreted proteins in multicellular organisms. Sulfoxidation is the third of these processes, and the sulfoxidation of chromatin is a unique process in sperm maturation. During recent sulfoxidase research, GPX4 has emerged as a promising enzyme that plays essential roles in the production of fertile sperm, but the involvement of other redox proteins is also becoming evident. Because the molecules involved in the redox reactions are prone to oxidation, they can be sensitive to oxidative damage, which makes them potential targets for antioxidant therapy.

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