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发育胚胎中的谷胱甘肽氧化还原动力学及谷胱甘肽相关基因的表达

Glutathione redox dynamics and expression of glutathione-related genes in the developing embryo.

作者信息

Timme-Laragy Alicia R, Goldstone Jared V, Imhoff Barry R, Stegeman John J, Hahn Mark E, Hansen Jason M

机构信息

Biology Department, Woods Hole Oceanographic Institution, Woods Hole, MA 02543, USA; Division of Environmental Health, Department of Public Health, School of Public Health and Health Sciences, University of Massachusetts, Amherst, MA 01003, USA.

Biology Department, Woods Hole Oceanographic Institution, Woods Hole, MA 02543, USA.

出版信息

Free Radic Biol Med. 2013 Dec;65:89-101. doi: 10.1016/j.freeradbiomed.2013.06.011. Epub 2013 Jun 13.

Abstract

Embryonic development involves dramatic changes in cell proliferation and differentiation that must be highly coordinated and tightly regulated. Cellular redox balance is critical for cell fate decisions, but it is susceptible to disruption by endogenous and exogenous sources of oxidative stress. The most abundant endogenous nonprotein antioxidant defense molecule is the tripeptide glutathione (γ-glutamylcysteinylglycine, GSH), but the ontogeny of GSH concentration and redox state during early life stages is poorly understood. Here, we describe the GSH redox dynamics during embryonic and early larval development (0-5 days postfertilization) in the zebrafish (Danio rerio), a model vertebrate embryo. We measured reduced and oxidized glutathione using HPLC and calculated the whole embryo total glutathione (GSHT) concentrations and redox potentials (Eh) over 0-120 h of zebrafish development (including mature oocytes, fertilization, midblastula transition, gastrulation, somitogenesis, pharyngula, prehatch embryos, and hatched eleutheroembryos). GSHT concentration doubled between 12h postfertilization (hpf) and hatching. The GSH Eh increased, becoming more oxidizing during the first 12h, and then oscillated around -190 mV through organogenesis, followed by a rapid change, associated with hatching, to a more negative (more reducing) Eh (-220 mV). After hatching, Eh stabilized and remained steady through 120 hpf. The dynamic changes in GSH redox status and concentration defined discrete windows of development: primary organogenesis, organ differentiation, and larval growth. We identified the set of zebrafish genes involved in the synthesis, utilization, and recycling of GSH, including several novel paralogs, and measured how expression of these genes changes during development. Ontogenic changes in the expression of GSH-related genes support the hypothesis that GSH redox state is tightly regulated early in development. This study provides a foundation for understanding the redox regulation of developmental signaling and investigating the effects of oxidative stress during embryogenesis.

摘要

胚胎发育涉及细胞增殖和分化的巨大变化,这些变化必须高度协调且严格调控。细胞氧化还原平衡对于细胞命运决定至关重要,但它易受内源性和外源性氧化应激源的干扰。最丰富的内源性非蛋白质抗氧化防御分子是三肽谷胱甘肽(γ-谷氨酰半胱氨酰甘氨酸,GSH),但早期生命阶段GSH浓度和氧化还原状态的个体发生情况却知之甚少。在此,我们描述了斑马鱼(Danio rerio)这一模式脊椎动物胚胎在胚胎期和幼体早期发育(受精后0至5天)期间的GSH氧化还原动态。我们使用高效液相色谱法测量了还原型和氧化型谷胱甘肽,并计算了斑马鱼发育0至120小时(包括成熟卵母细胞、受精、中囊胚转换、原肠胚形成、体节发生、咽胚、孵化前胚胎和孵化后幼胚)期间的全胚胎总谷胱甘肽(GSHT)浓度和氧化还原电位(Eh)。GSHT浓度在受精后12小时(hpf)至孵化期间翻倍。GSH Eh在最初12小时内升高,变得更具氧化性,然后在器官发生过程中围绕 -190 mV振荡,随后与孵化相关发生快速变化,变为更负(更具还原性)的Eh(-220 mV)。孵化后,Eh稳定并在120 hpf内保持稳定。GSH氧化还原状态和浓度的动态变化定义了不同的发育窗口:主要器官发生、器官分化和幼体生长。我们鉴定了参与GSH合成、利用和循环的斑马鱼基因集,包括几个新的旁系同源基因,并测量了这些基因在发育过程中的表达变化。GSH相关基因表达的个体发生变化支持了GSH氧化还原状态在发育早期受到严格调控的假说。本研究为理解发育信号的氧化还原调控以及研究胚胎发生过程中氧化应激的影响提供了基础。

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