复合物I中RET-ROS的缺失可诱导小鼠舒张功能障碍,而这种功能可通过有氧运动逆转。

IF 4.1 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Ana Vujic, Amy Koo, Guillaume Bidault, Jan Lj Miljkovic, Andrew M James, Andreas Dannhorn, Xiaowen Duan, Lucy M Davis, Jiro Abe, Joyce Valadares, Jordan J Lee, Alexis Diaz-Vegas, Keira Turner, Richard Goodwin, Daniel J Fazakerley, Antonio Vidal-Puig, Michael P Murphy, Thomas Krieg
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引用次数: 0

摘要

保留射血分数心力衰竭(HFpEF)发展的核心是代谢过程的氧化还原破坏,然而,其潜在机制尚不完全清楚。本研究利用携带同源线粒体DNA点突变(ND6 G13997A)的小鼠模型(ND6),该模型维持NADH氧化功能,但缺乏通过反向电子传递(RET)产生位点特异性活性氧(ROS)。我们证明,尽管瘦体重增加,对高脂肪/高蔗糖饮食应激的恢复能力受损,心脏肥厚伴舒张功能障碍,但RET-ROS缺乏的小鼠运动能力降低。重要的是,多巴酚丁胺诱导的应激升高了WT小鼠心脏中的琥珀酸盐水平,并伴随着RET-ROS的产生,而ND6小鼠则没有。此外,ND6小鼠在多巴酚丁胺应激后表现出代谢物谱的扰动。机制上,ND6心脏的脂肪酸转运、氧化和合成基因(CD36、Cpt1b、Acly、Fas、Elovl6和Scd1)表达上调,脂质代谢调节因子(乙酰辅酶a羧化酶和perilipin 2)蛋白水平升高。有趣的是,在RET-ROS突变心脏中,8周的强制跑步增加了乙酰辅酶a的丰富度,减轻了代谢应激,改善了舒张功能。总之,这些发现揭示了RET-ROS在调节运动能力和心脏代谢健康方面的关键作用,并将其确定为调节心脏代谢的潜在选择性靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Loss of RET-ROS at complex I induces diastolic dysfunction in mice that is reversed by aerobic exercise.

Central to the development of heart failure with preserved ejection fraction (HFpEF) is the redox disruption of metabolic processes; however, the underlying mechanisms are not fully understood. This study utilized a murine model (ND6) carrying a homoplasmic mitochondrial DNA point mutation (ND6 G13997A), which maintains functional NADH oxidation but lacks the site-specific reactive oxygen species (ROS) generation via reverse electron transport (RET). We demonstrate that mice with RET-ROS deficiency have reduced exercise capacity despite higher lean body mass, impaired resilience to high-fat/high-sucrose dietary stress, and cardiac hypertrophy with diastolic dysfunction. Importantly, dobutamine-induced stress elevated succinate levels in the heart, accompanied by RET-ROS production in wild-type but not in ND6 mice. Furthermore, ND6 mice showed perturbation in metabolite profiles following dobutamine stress. Mechanistically, the ND6 heart had an upregulated expression of fatty acid transport, oxidation, and synthesis genes (CD36, Cpt1b, Acly, Fas, Elovl6, and Scd1) and increased protein levels of lipid metabolism regulators (acetyl-CoA carboxylase and perilipin 2). Interestingly, 8 wk of forced treadmill running increased acetyl-CoA abundance, alleviated metabolic stress, and improved diastolic function in RET-ROS mutant hearts. In summary, these findings reveal a critical role for RET-ROS in regulating exercise capacity and cardiometabolic health, identifying it as a potentially selective target for modulating cardiac metabolism.NEW & NOTEWORTHY Loss of reverse electron transport (RET)-reactive oxygen species (ROS) impairs diastolic function and exercise capacity, which can be improved by long-term aerobic exercise. RET-ROS may act as a modulator of cardiac metabolism.

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来源期刊
CiteScore
9.60
自引率
10.40%
发文量
202
审稿时长
2-4 weeks
期刊介绍: The American Journal of Physiology-Heart and Circulatory Physiology publishes original investigations, reviews and perspectives on the physiology of the heart, vasculature, and lymphatics. These articles include experimental and theoretical studies of cardiovascular function at all levels of organization ranging from the intact and integrative animal and organ function to the cellular, subcellular, and molecular levels. The journal embraces new descriptions of these functions and their control systems, as well as their basis in biochemistry, biophysics, genetics, and cell biology. Preference is given to research that provides significant new mechanistic physiological insights that determine the performance of the normal and abnormal heart and circulation.
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