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Translatable mitochondria-targeted protection against programmed cardiovascular dysfunction

机译:可翻译的线粒体靶向保护免受编程的心血管功能障碍

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The prenatal origins of heart disease in offspring have been established. However, research in species with developmental milestones comparable to humans is lacking, preventing translation of this knowledge to clinical contexts. Using sheep and chickens, two species with similar cardiovascular developmental milestones to humans, we combined in vivo experiments with in vitro studies at organ, cellular, mitochondrial, and molecular levels. We tested mitochondria-targeted antioxidant intervention with MitoQ against cardiovascular dysfunction programmed by developmental hypoxia, a common complication in human pregnancy. Experiments in sheep determined in vivo fetal and adult cardiovascular function through surgical techniques not possible in humans, while those in chicken embryos isolated effects independent of maternal or placental influences. We show that hypoxia generates mitochondria-derived oxidative stress during cardiovascular development, programming endothelial dysfunction and hypertension in adult offspring. MitoQ treatment during hypoxic development protects against this cardiovascular risk via enhanced nitric oxide signaling, offering a plausible intervention strategy.
机译:已经建立了后代心脏病的产前起源。然而,缺乏与人类相当的发育里程碑的物种的研究,防止这种知识翻译到临床环境。使用绵羊和鸡,两种具有类似的心血管发育里程碑的人类,我们将体内实验组合在体外研究,在器官,细胞,线粒体和分子水平。我们测试了用MITOQ对发育缺氧编程的心血管功能障碍进行线粒体抗氧化剂干预,人体怀孕的常见并发症。通过人类不可能通过手术技术在体内胎儿和成人心血管功能中测定的羊实验,而那些鸡胚的孤立的蛋白质孤立的作用,无关,患有母体或胎盘影响。我们表明,缺氧在心血管发育期间产生线粒体衍生的氧化应激,在成人后代编程内皮功能障碍和高血压。缺氧发育期间的米托克治疗通过增强的一氧化氮信号来保护这种心血管风险,提供合理的干预策略。

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