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首页> 外文期刊>Scientific reports. >Riboflavin deficiency induces a significant change in proteomic profiles in HepG2 cells
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Riboflavin deficiency induces a significant change in proteomic profiles in HepG2 cells

机译:核黄素缺乏症在HepG2细胞中诱导蛋白质组学谱的显着变化

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摘要

Riboflavin deficiency is widespread in many regions over the world, especially in underdeveloped countries. In this study, we investigated the effects of riboflavin deficiency on protein expression profiles in HepG2 cells in order to provide molecular information for the abnormalities induced by riboflavin deficiency. HepG2 cells were cultured in media containing different concentrations of riboflavin. Changes of cell viability and apoptosis were assessed. A comparative proteomic analysis was performed using a label-free shotgun method with LC–MS/MS to investigate the global changes of proteomic profiles in response to riboflavin deficiency. Immunoblotting test was used to validate the results of proteomic approach. The cell viability and apoptosis tests showed that riboflavin was vital in maintaining the cytoactivity of HepG2 cells. The label-free proteomic analysis revealed that a total of 37 proteins showing differential expression (±2 fold, p??0.05) were identified after riboflavin deficiency. Bioinformatics analysis indicated that the riboflavin deficiency caused an up-regulation of Parkinson’s disease pathway, steroid catabolism, endoplasmic reticulum stress and apoptotic process, while the fatty acid metabolism, tricarboxylic citrate cycle, oxidative phosphorylation and iron metabolism were down-regulated. These findings provide a molecular basis for the elucidation of the effects caused by riboflavin deficiency.
机译:核黄素缺乏在世界上许多地区普遍存在,特别是在欠发达国家。在这项研究中,我们研究了核黄素缺乏对HepG2细胞中蛋白表达谱的影响,以便为核黄素缺乏诱导的异常提供分子信息。在含有不同浓度的核黄素培养基中培养HepG2细胞。评估细胞活力和细胞凋亡的变化。使用具有LC-MS / MS的无标记霰弹枪方法进行比较蛋白质组学分析,以研究蛋白酶形谱的全局变化响应核黄素缺乏。免疫印迹试验用于验证蛋白质组学方法的结果。细胞活力和凋亡试验表明,核黄素在维持HepG2细胞的细胞增长中至关重要。无标记的蛋白质组学分析显示,在核黄素缺乏后,共鉴定了37种显示差异表达(±2倍,P≤0)的蛋白质。生物信息学分析表明,核黄素缺乏导致帕金森病途径的上调,类固醇分解代谢,内质网应激和凋亡过程,而脂肪酸代谢,三羧酸柠檬酸盐循环,氧化磷酸化和铁代谢进行了下调。这些发现提供了培养核黄素缺乏造成的影响的分子基础。

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