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首页> 外文期刊>The Journal of Nutritional Biochemistry >Lysine biotinylation and methionine oxidation in the heat shock protein HSP60 synergize in the elimination of reactive oxygen species in human cell cultures
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Lysine biotinylation and methionine oxidation in the heat shock protein HSP60 synergize in the elimination of reactive oxygen species in human cell cultures

机译:热休克蛋白HSP60中的赖氨酸生物素化和蛋氨酸氧化可协同消除人类细胞培养物中的活性氧

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Previous studies suggest that the number of proteins containing covalently bound biotin is larger than previously thought. Here, we report the identity of some of these proteins. Using mass spectrometry, we discovered 108 novel biotinylation sites in the human embryonic kidney HEK293 cell proteome; members of the heat shock protein (HSP) superfamily were overrepresented among the novel biotinylated proteins. About half of the biotinylated proteins also displayed various degrees of methionine oxidation, which is known to play an important role in the defense against reactive oxygen species; for biotinylated HSPs, the percent of methionine sulfoxidation approached 100%. Protein structure analysis suggests that methionine sulfoxides localize in close physical proximity to the biotinylated lysines on the protein surface. Mass spectrometric analysis revealed that between one and five of the methionine residues in the C-terminal KEEKDPGMGAMGGMGGGMGGGMF motif are oxidized in HSP60. The likelihood of methionine sulfoxidation is higher if one of the adjacent lysine residues is biotinylated. Knockdown of HSP60 caused a 60% increase in the level of reactive oxygen species in fibroblasts cultured in biotin-sufficient medium. When HEK293 cells were transferred from biotin-sufficient medium to biotin-free medium, the level of reactive oxygen species increased by >9 times compared with baseline controls and a time-response relationship was evident. High levels of methionine sulfoxidation coincided with cell cycle arrest in the G0/G1 and S phases in biotin-depleted cells. We conclude that biotinylation of lysines synergizes with sulfoxidation of methionines in heat shock proteins such as HSP60 in the defense against reactive oxygen species. (C) 2014 Elsevier Inc. All rights reserved.
机译:先前的研究表明,含有共价结合的生物素的蛋白质数量要比以前想象的要多。在这里,我们报告其中一些蛋白质的身份。使用质谱法,我们在人类胚胎肾脏HEK293细胞蛋白质组中发现了108个新的生物素化位点;在新型生物素化蛋白中,热休克蛋白(HSP)超家族成员的数量过高。大约一半的生物素化蛋白还表现出不同程度的甲硫氨酸氧化,这在抵抗活性氧方面起着重要作用。对于生物素化的HSP,蛋氨酸硫氧化的百分比接近100%。蛋白质结构分析表明,蛋氨酸亚砜在物理上紧邻蛋白质表面上的生物素化赖氨酸。质谱分析表明,在C末端KEEKDPGMGAMGGMGGGGGGGGGMF基序中,甲硫氨酸残基中的1至5个在HSP60中被氧化。如果相邻的赖氨酸残基之一被生物素化,则蛋氨酸硫氧化的可能性更高。敲低HSP60可使生物素充足培养基中培养的成纤维细胞中的活性氧含量增加60%。当HEK293细胞从生物素充足的培养基转移到无生物素的培养基时,与基线对照组相比,活性氧的水平增加了9倍以上,并且时间-反应关系也很明显。高水平的蛋氨酸硫氧化与生物素缺乏细胞中G0 / G1和S期的细胞周期停滞相吻合。我们得出结论,赖氨酸的生物素化与热休克蛋白(例如HSP60)中蛋氨酸的硫氧化作用协同作用,可防御活性氧。 (C)2014 Elsevier Inc.保留所有权利。

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