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首页> 外文期刊>Proteomics >Proteomic analysis reveals perturbed energy metabolism and elevated oxidative stress in hearts of rats with inborn low aerobic capacity.
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Proteomic analysis reveals perturbed energy metabolism and elevated oxidative stress in hearts of rats with inborn low aerobic capacity.

机译:蛋白质组学分析显示,先天性有氧运动能力低的大鼠心脏能量代谢紊乱,氧化应激升高。

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Selection on running capacity has created rat phenotypes of high-capacity runners (HCRs) that have enhanced cardiac function and low-capacity runners (LCRs) that exhibit risk factors of metabolic syndrome. We analysed hearts of HCRs and LCRs from generation 22 of selection using DIGE and identified proteins from MS database searches. The running capacity of HCRs was six-fold greater than LCRs. DIGE resolved 957 spots and proteins were unambiguously identified in 369 spots. Protein expression profiling detected 67 statistically significant (p<0.05; false discovery rate <10%, calculated using q-values) differences between HCRs and LCRs. Hearts of HCR rats exhibited robust increases in the abundance of each enzyme of the beta-oxidation pathway. In contrast, LCR hearts were characterised by the modulation of enzymes associated with ketone body or amino acid metabolism. LCRs also exhibited enhanced expression of antioxidant enzymes such as catalase and greater phosphorylation of alpha B-crystallin at serine 59, which is a common point of convergence in cardiac stress signalling. Thus, proteomic analysis revealed selection on low running capacity is associated with perturbations in cardiac energy metabolism and provided the first evidence that the LCR cardiac proteome is exposed to greater oxidative stress.
机译:对运行能力的选择已经创建了具有增强的心脏功能的高容量跑步者(HCR)和表现出代谢综合征风险因素的低容量跑步者(LCR)的大鼠表型。我们使用DIGE分析了第22代选择的HCR和LCR的心脏,并从MS数据库搜索中鉴定了蛋白质。 HCR的运行容量是LCR的六倍。 DIGE解决了957个斑点,并在369个斑点中明确鉴定出蛋白质。蛋白表达谱分析检测到HCR和LCR之间有67个统计学显着性差异(p <0.05;错误发现率<10%,使用q值计算)。 HCR大鼠的心脏在β氧化途径的每种酶的丰度方面显示出强劲的增加。相反,LCR心脏的特征是与酮体或氨基酸代谢有关的酶的调节。 LCR还显示出抗氧化酶(如过氧化氢酶)的增强表达以及丝氨酸59处αB-晶状体蛋白的磷酸化程度更高,这是心脏压力信号转导的常见收敛点。因此,蛋白质组学分析表明,对低运行能力的选择与心脏能量代谢的扰动有关,并提供了LCR心脏蛋白质组暴露于更大氧化应激的第一个证据。

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