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首页> 外文期刊>Molecular Plant >Protein-Repairing Methionine Sulfoxide Reductases in Photosynthetic Organisms: Gene Organization, Reduction Mechanisms, and Physiological Roles
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Protein-Repairing Methionine Sulfoxide Reductases in Photosynthetic Organisms: Gene Organization, Reduction Mechanisms, and Physiological Roles

机译:光合生物中的蛋白修复蛋氨酸亚砜还原酶:基因组织,还原机制和生理作用。

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摘要

Methionine oxidation to methionine sulfoxide (MetSO) is reversed by two types of methionine sulfoxide reductases (MSRs), A and B, specific to the S- and R-diastereomers of MetSO, respectively. MSR genes are found in most organisms from bacteria to human. In the current review, we first compare the organization of the MSR gene families in photosynthetic organisms from cyanobacteria to higher plants. The analysis reveals that MSRs constitute complex families in higher plants, bryophytes, and algae compared to cyanobacteria and all non-photosynthetic organisms. We also perform a classification, based on gene number and structure, position of redox-active cysteines and predicted sub-cellular localization. The various catalytic mechanisms and potential physiological electron donors involved in the regeneration of MSR activity are then described. Data available from higher plants reveal that MSRs fulfill an essential physiological function during environmental constraints through a role in protein repair and in protection against oxidative damage. Taking into consideration the expression patterns of MSR genes in plants and the known roles of these genes in non-photosynthetic cells, other functions of MSRs are discussed during specific developmental stages and ageing in photosynthetic organisms.
机译:甲硫氨酸氧化成甲硫氨酸亚砜(MetSO)的过程被两种甲硫氨酸亚砜还原酶(MSR)A和B逆转,分别对MetSO的S-和R-非对映异构体而言。从细菌到人类,大多数生物中都发现了MSR基因。在当前的审查中,我们首先比较从蓝细菌到高等植物的光合生物中MSR基因家族的组织。分析表明,与蓝细菌和所有非光合生物相比,MSR在高等植物,苔藓植物和藻类中构成复杂的科。我们还根据基因数量和结构,氧化还原活性半胱氨酸的位置以及预测的亚细胞定位进行分类。然后描述了参与MSR活性再生的各种催化机制和潜在的生理电子供体。来自高等植物的数据表明,MSR通过在蛋白质修复和抗氧化损伤中发挥作用,在环境限制条件下发挥了重要的生理功能。考虑到MSR基因在植物中的表达模式以及这些基因在非光合细胞中的已知作用,在特定的发育阶段和光合生物的衰老过程中,讨论了MSR的其他功能。

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