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Disruption of endothelial cell mitochondrial bioenergetics in lambs with increased pulmonary blood flow

机译:肺血流量增加时羔羊内皮细胞线粒体生物能的破坏

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Aims: The mitochondrial dysfunction in our lamb model of congenital heart disease with increased pulmonary blood flow (PBF) (Shunt) is associated with disrupted carnitine metabolism. Our recent studies have also shown that asymmetric dimethylarginine (ADMA) levels are increased in Shunt lambs and ADMA increases the nitration of mitochondrial proteins in lamb pulmonary arterial endothelial cells (PAEC) in a nitric oxide synthase (NOS)-dependent manner. Thus, we determined whether there was a mechanistic link between endothelial nitric oxide synthase (eNOS), ADMA, and the disruption of carnitine homeostasis in PAEC. Results: Exposure of PAEC to ADMA induced the redistribution of eNOS to the mitochondria, resulting in an increase in carnitine acetyl transferase (CrAT) nitration and decreased CrAT activity. The resulting increase in acyl-carnitine levels resulted in mitochondrial dysfunction and the disruption of mitochondrial bioenergetics. Since the addition of l-arginine prevented these pathologic changes, we examined the effect of l-arginine supplementation on carnitine homeostasis, mitochondrial function, and nitric oxide (NO) signaling in Shunt lambs. We found that the treatment of Shunt lambs with l-arginine prevented the ADMA-mediated mitochondrial redistribution of eNOS, the nitration-mediated inhibition of CrAT, and maintained carnitine homeostasis. In turn, adenosine-5′-triphosphate levels and eNOS/heat shock protein 90 interactions were preserved, and this decreased NOS uncoupling and enhanced NO generation. Innovation: Our data link alterations in cellular l-arginine metabolism with the disruption of mitochondrial bioenergetics and implicate altered carnitine homeostasis as a key player in this process. Conclusion: l-arginine supplementation may be a useful therapy to prevent the mitochondrial dysfunction involved in the pulmonary vascular alterations secondary to increased PBF.
机译:目的:在我们的先天性心脏病羔羊模型中,肺血流量增加(PBF)(Shunt)的线粒体功能障碍与肉碱代谢紊乱有关。我们最近的研究还表明,分流羔羊中的不对称二甲基精氨酸(ADMA)水平升高,而ADMA以一氧化氮合酶(NOS)依赖性方式增加了羔羊肺动脉内皮细胞(PAEC)中线粒体蛋白质的硝化作用。因此,我们确定了内皮一氧化氮合酶(eNOS),ADMA与PAEC中肉碱稳态的破坏之间是否存在机械联系。结果:PAEC暴露于ADMA导致eNOS重新分布到线粒体,导致肉碱乙酰基转移酶(CrAT)硝化作用增加,CrAT活性降低。酰基肉碱水平的增加导致线粒体功能障碍和线粒体生物能学破坏。由于添加l-精氨酸可防止这些病理变化,因此我们检查了添加l-精氨酸对分流羔羊肉碱稳态,线粒体功能和一氧化氮(NO)信号的影响。我们发现,用L-精氨酸处理分流羔羊可防止ADMA介导的eNOS线粒体再分布,硝化作用抑制CrAT并维持肉碱的体内稳态。相应地,保留了5'-三磷酸腺苷水平和eNOS /热激蛋白90的相互作用,这减少了NOS的解偶联并增强了NO的产生。创新:我们的数据将细胞l-精氨酸代谢的改变与线粒体生物能的破坏联系在一起,并暗示了肉碱稳态的改变是这一过程的关键因素。结论:补充l-精氨酸可能是预防线粒体功能障碍所致的因PBF升高而引起的肺血管改变的有用疗法。

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