Center for Translational Science, Florida International University, 11350 SW Village Parkway, Port St. Lucie, FL, 34987-2352, USA; Department of Cellular Biology & Pharmacology, Howard Wertheim College of Medicine, Florida International University, Miami, FL, 33199, USA.
Center for Translational Science, Florida International University, 11350 SW Village Parkway, Port St. Lucie, FL, 34987-2352, USA; Department of Environmental Health Sciences, Robert Stempel College of Public Health and Social Work, Florida International University, Miami, FL, 33199, USA.
Redox Biol. 2023 Aug;64:102797. doi: 10.1016/j.redox.2023.102797. Epub 2023 Jun 24.
Mitochondria are highly dynamic organelles essential for cell metabolism, growth, and function. It is becoming increasingly clear that endothelial cell dysfunction significantly contributes to the pathogenesis and vascular remodeling of various lung diseases, including pulmonary arterial hypertension (PAH), and that mitochondria are at the center of this dysfunction. The more we uncover the role mitochondria play in pulmonary vascular disease, the more apparent it becomes that multiple pathways are involved. To achieve effective treatments, we must understand how these pathways are dysregulated to be able to intervene therapeutically. We know that nitric oxide signaling, glucose metabolism, fatty acid oxidation, and the TCA cycle are abnormal in PAH, along with alterations in the mitochondrial membrane potential, proliferation, and apoptosis. However, these pathways are incompletely characterized in PAH, especially in endothelial cells, highlighting the urgent need for further research. This review summarizes what is currently known about how mitochondrial metabolism facilitates a metabolic shift in endothelial cells that induces vascular remodeling during PAH.
线粒体是细胞代谢、生长和功能所必需的高度动态细胞器。越来越明显的是,内皮细胞功能障碍对各种肺部疾病(包括肺动脉高压)的发病机制和血管重塑有重要贡献,而线粒体是这种功能障碍的核心。我们对线粒体在肺血管疾病中的作用了解得越多,就越明显地发现涉及多个途径。为了实现有效的治疗,我们必须了解这些途径是如何失调的,以便能够进行治疗性干预。我们知道,在肺动脉高压中,一氧化氮信号、葡萄糖代谢、脂肪酸氧化和三羧酸循环异常,同时线粒体膜电位、增殖和凋亡也发生改变。然而,这些途径在肺动脉高压中,特别是在内皮细胞中,尚未完全描述,这突出表明迫切需要进一步研究。这篇综述总结了目前已知的关于线粒体代谢如何促进内皮细胞代谢转变,从而在肺动脉高压中诱导血管重塑的知识。