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淡水龟中甲硫氨酸亚砜还原酶A和B对缺氧和氧化应激的不同反应

Differential Responses of Methionine Sulfoxide Reductases A and B to Anoxia and Oxidative Stress in the Freshwater Turtle .

作者信息

Reiterer Melissa, Bruce Lynsey, Milton Sarah

机构信息

Department of Biological Sciences, Florida Atlantic University, Boca Raton, FL 33431, USA.

出版信息

Metabolites. 2021 Jul 16;11(7):458. doi: 10.3390/metabo11070458.

Abstract

Oxidative stress has been acknowledged as a major factor in aging, senescence and neurodegenerative conditions. Mammalian models are susceptible to these stresses following the restoration of oxygen after anoxia; however, some organisms including the freshwater turtle can withstand repeated anoxia and reoxygenation without apparent pathology. thus provides us with an alternate vertebrate model to investigate physiological mechanisms of neuroprotection. The objective of this study was to investigate the antioxidant methionine sulfoxide reductase system (Msr) in turtle neuronal tissue. We examined brain transcript and protein levels of MsrA and MsrB and examined the potential for the transcription factor FOXO3a to regulate the oxygen-responsive changes in Msr in vitro. We found that Msr mRNA and protein levels are differentially upregulated during anoxia and reoxygenation, and when cells were exposed to chemical oxidative stress. However, while MsrA and MsrB3 levels increased when cell cultures were exposed to chemical oxidative stress, this induction was not enhanced by treatment with epigallocatechin gallate (EGCG), which has previously been shown to enhance FOXO3a levels in the turtle. These results suggest that FOXO3a and Msr protect the cells from oxidative stress through different molecular pathways, and that both the Msr pathway and EGCG may be therapeutic targets to treat diseases related to oxidative damage.

摘要

氧化应激已被公认为是衰老、细胞衰老和神经退行性疾病的主要因素。哺乳动物模型在缺氧后恢复氧气时易受这些应激的影响;然而,包括淡水龟在内的一些生物能够耐受反复的缺氧和复氧而无明显病理变化。这为我们提供了一个用于研究神经保护生理机制的替代脊椎动物模型。本研究的目的是研究龟神经元组织中的抗氧化蛋氨酸亚砜还原酶系统(Msr)。我们检测了MsrA和MsrB的脑转录本和蛋白水平,并在体外检测了转录因子FOXO3a调节Msr中氧反应性变化的可能性。我们发现,在缺氧和复氧期间以及细胞暴露于化学氧化应激时,Msr mRNA和蛋白水平会有不同程度的上调。然而,当细胞培养物暴露于化学氧化应激时,虽然MsrA和MsrB3水平会升高,但表没食子儿茶素没食子酸酯(EGCG)处理并未增强这种诱导作用,此前已证明EGCG可提高龟体内的FOXO3a水平。这些结果表明,FOXO3a和Msr通过不同的分子途径保护细胞免受氧化应激,并且Msr途径和EGCG都可能是治疗与氧化损伤相关疾病的治疗靶点。

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