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Hyperoxia-Induced Protein Alterations in Renal Rat Tissue: A Quantitative Proteomic Approach to Identify Hyperoxia-Induced Effects in Cellular Signaling Pathways

机译:肾脏大鼠组织中的高氧诱导的蛋白质改变:定量蛋白质组学方法,用于鉴定细胞信号传导途径中的高氧诱导的效果

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摘要

Introduction. In renal tissue as well as in other organs, supranormal oxygen pressure may lead to deleterious consequences on a cellular level. Additionally, hyperoxia-induced effect in cells and related free radicals may potentially contribute to renal failure. The aim of this study was to analyze time-dependent alterations of rat kidney protein expression after short-term normobaric hyperoxia using proteomics and bioinformatic approaches. Material and Methods. N=36 Wistar rats were randomized into six different groups: three groups with normobaric hyperoxia (exposure to 100% oxygen for 3 h) and three groups with normobaric normoxia (NN; room air). After hyperoxia exposure, kidneys were removed immediately, after 3 days and after 7 days. Kidney lysates were analyzed by two-dimensional gel electrophoresis followed by peptide mass fingerprinting using tandem mass spectrometry. Statistical analysis was performed with DeCyder 2D software (p<0.01). Biological functions of differential regulated proteins were studied using functional network analysis (Ingenuity Pathways Analysis and PathwayStudio). Results. Expression of 14 proteins was significantly altered (p<0.01): eight proteins (MEP1A_RAT, RSSA_RAT, F16P1_RAT, STML2_RAT, BPNT1_RAT, LGMN_RAT, ATPA_RAT, and VDAC1_RAT) were downregulated and six proteins (MTUS1_RAT, F16P1_RAT, ACTG_RAT, ACTB_RAT, 2ABA_RAT, and RAB1A_RAT) were upregulated. Bioinformatic analyses revealed an association of regulated proteins with inflammation. Conclusions. Significant alterations in renal protein expression could be demonstrated for up to 7 days even after short-term hyperoxia. The identified proteins indicate an association with inflammation signaling cascades. MEP1A and VDAC1 could be promising candidates to identify hyperoxic injury in kidney cells.
机译:介绍。在肾组织以及其他器官中,Supranormal氧气压力可能导致对细胞水平的有害后果。此外,细胞和相关自由基中的高氧诱导的效果可能有助于肾功能衰竭。本研究的目的是分析使用蛋白质组学和生物信息化方法的短期正常性高氧后大鼠肾蛋白表达的时间依赖性改变。材料与方法。 N = 36只Wistar大鼠随机分为六种不同的组:三组,具有正常性高氧(暴露于100%氧气3小时)和三组,具有正常常氧氧化(NN;室内空气)。在过氧暴露后,3天和7天后立即除去肾脏。通过二维凝胶电泳分析肾裂解物,然后使用串联质谱法进行肽质量指纹纹理。用解换剂2D软件进行统计分析(P <0.01)进行。使用功能网络分析研究了差分调节蛋白的生物学功能(熟练途径分析和途径)。结果。 14种蛋白的表达显着改变(P <0.01):八种蛋白质(MEP1A_RAT,RSSA_RAT,F16P1_RAT,STML2_RAT,BPNT1_RAT,LGMN_RAT,ATPA_RAT和VDAC1_RAT)是六种蛋白质(MTUS1_RAT,F16P1_RAT,ACTG_RAT,ACTB_RAT,2ABA_RAT和rab1a_rat)被上调。生物信息分析揭示了具有炎症的受管制蛋白质的关联。结论。肾蛋白表达的显着改变即使在短期高氧症后也可以证明长达7天。所鉴定的蛋白质表示与炎症信号级联的关系。 MEP1A和VDAC1可能是有希望的候选人,以鉴定肾细胞的高氧损伤。

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