1)昆明理工大学医学部基础医学院,昆明 650500;2)丽江市人民医院超声科,丽江 674100;3)昆明理工大学医学部临床医学院,昆明 650500
昆明理工大学科学基金与丽江市人民医院联合基金(KUST-LJ2022003Y),云南省应用基础研究(202201AT070194)和云南省临床医学中心开放项目(2022LCZXKF-XY07)资助。
1)School of Basic Medical Sciences, Medical School, Kunming University of Science and Technology, Kunming 650500, China;2)Department of Ultrasound, Lijiang People’s Hospital, Lijiang 674100, China;3)School of Clinical Medicine, Medical School, Kunming University of Science and Technology, Kunming 650500, China
This work was supported by grants from Joint Funds of the Science Foundation of Kunming University of Science and Technology and The People’s Hospital of Lijiang (KUST-LJ2022003Y), Yunnan Provincial Applied Basic Research Program (202201AT070194), and Yunnan Provincial Clinical Medical Center Open Program (2022LCZXKF-XY07).
心血管疾病(cardiovascular disease,CVD)是全球成年人死亡的主要原因之一,其发病率和病死率持续攀升,而代谢紊乱与多种心血管疾病密切相关。代谢紊乱在心血管疾病的发生发展过程中起到关键作用,其涉及底物利用的改变、线粒体结构和功能的障碍,以及ATP合成与运输的阻碍等多个方面。过氧化物酶体增殖物激活受体(peroxisome proliferators-activated receptors,PPARs)在心血管疾病中的潜在作用越来越引起人们的关注,特别是过氧化物酶体增殖物激活受体α(peroxisome proliferator-activated receptors α,PPARα),它被认为是心血管疾病治疗的一个极具潜力的靶点。PPARα通过脂肪酸代谢调控心血管生理与病理过程。PPARα作为核激素受体家族中的一种配体激活受体,在骨骼肌、肝脏、肠道、肾脏和心脏等多种器官中高度表达,能够调控多种底物的代谢。作为维持代谢平衡、催化和调节多种生化反应的关键转录因子,PPARα通过调节脂质代谢、参与心脏能量代谢、增加胰岛素敏感性、抑制炎症反应、改善血管内皮功能以及抑制平滑肌细胞增殖和迁移等多种方式,发挥其心血管保护作用,进而显著降低心血管疾病的发生风险。因此,PPARα通过调节脂质代谢、抗炎、抗凋亡等多种机制,在多种病理过程中发挥作用。PPARα可以通过结合天然或合成的脂溶性配体而被激活。这些配体包括内源性脂肪酸及其衍生物,如亚油酸、油酸和花生四烯酸,以及合成的过氧化物酶体增殖物。配体与PPARα结合后,激活了核受体视黄醛衍生物X受体(retinal dehyderivative X receptor,RXR),形成PPARα-RXR异二聚体。PPARα-RXR异二聚体在共激活因子的作用下进一步激活,活化后的复合物识别并结合PPRE,调控在脂质和葡萄糖稳态中起关键作用的靶基因转录,如脂肪酸转位酶(fatty acid translocase,FAT/CD36)、二酰甘油酰基转移酶(diacylglycerol acyltransferase,DGAT)、肉碱脂酰转移酶I(carnitine palmitoyl transferase1,CPT1)和葡萄糖转运蛋白(glucose transporter,GLUT)等,这些基因主要参与脂肪酸的摄取、储存以及脂肪酸氧化和葡萄糖氧化的过程。PPARα作为心血管疾病治疗靶点的研究不断推进,使其在临床上的重要性日益凸显。目前,PPARα激活剂/激动剂,如贝特类和噻唑烷二酮类,已经广泛应用于大量预防心血管疾病的临床研究。传统的PPARα激动剂,例如非诺贝特和苯扎贝特,已经广泛应用于临床,主要用于治疗高甘油三酯血症和低高密度脂蛋白胆固醇血症。贝特类药物通过激活PPARα受体增强肝脏和骨骼肌的脂肪酸代谢能力,其心血管保护作用在多项临床研究中得到验证。最近的这些临床研究揭示,贝特类药物通过改善胰岛素抵抗、调节脂质代谢、纠正能量代谢紊乱、抑制血管平滑肌细胞和内皮细胞的增殖与迁移,从而改善心血管系统的病理重塑,同时还可以降低血压。干预PPARα在基础医学研究及临床应用中均受到诸多关注。因此,激活PPARα作为靶点可能是治疗心肌肥大、动脉粥样硬化、缺血性心肌病、心肌梗死、糖尿病心肌病以及心力衰竭等心血管疾病的关键策略之一。本文对PPARα在心血管疾病中的调控作用及其临床应用价值进行综述,意在为进一步开发和利用PPARα相关药物治疗心血管疾病提供理论依据。
Cardiovascular disease (CVD) remains one of the leading causes of mortality among adults globally, with continuously rising morbidity and mortality rates. Metabolic disorders are closely linked to various cardiovascular diseases and play a critical role in their pathogenesis and progression, involving multifaceted mechanisms such as altered substrate utilization, mitochondrial structural and functional dysfunction, and impaired ATP synthesis and transport. In recent years, the potential role of peroxisome proliferator-activated receptors (PPARs) in cardiovascular diseases has garnered significant attention, particularly peroxisome proliferator-activated receptor alpha (PPARα), which is recognized as a highly promising therapeutic target for CVD. PPARα regulates cardiovascular physiological and pathological processes through fatty acid metabolism. As a ligand-activated receptor within the nuclear hormone receptor family, PPARα is highly expressed in multiple organs, including skeletal muscle, liver, intestine, kidney, and heart, where it governs the metabolism of diverse substrates. Functioning as a key transcription factor in maintaining metabolic homeostasis and catalyzing or regulating biochemical reactions, PPARα exerts its cardioprotective effects through multiple pathways: modulating lipid metabolism, participating in cardiac energy metabolism, enhancing insulin sensitivity, suppressing inflammatory responses, improving vascular endothelial function, and inhibiting smooth muscle cell proliferation and migration. These mechanisms collectively reduce the risk of cardiovascular disease development. Thus, PPARα plays a pivotal role in various pathological processes via mechanisms such as lipid metabolism regulation, anti-inflammatory actions, and anti-apoptotic effects. PPARα is activated by binding to natural or synthetic lipophilic ligands, including endogenous fatty acids and their derivatives (e.g., linoleic acid, oleic acid, and arachidonic acid) as well as synthetic peroxisome proliferators. Upon ligand binding, PPARα activates the nuclear receptor retinoid X receptor (RXR), forming a PPARα-RXR heterodimer. This heterodimer, in conjunction with coactivators, undergoes further activation and subsequently binds to peroxisome proliferator response elements (PPREs), thereby regulating the transcription of target genes critical for lipid and glucose homeostasis. Key genes include fatty acid translocase (FAT/CD36), diacylglycerol acyltransferase (DGAT), carnitine palmitoyltransferase I (CPT1), and glucose transporter (GLUT), which are primarily involved in fatty acid uptake, storage, oxidation, and glucose utilization processes. Advancing research on PPARα as a therapeutic target for cardiovascular diseases has underscored its growing clinical significance. Currently, PPARα activators/agonists, such as fibrates (e.g., fenofibrate and bezafibrate) and thiazolidinediones, have been extensively studied in clinical trials for CVD prevention. Traditional PPARα agonists, including fenofibrate and bezafibrate, are widely used in clinical practice to treat hypertriglyceridemia and low high-density lipoprotein cholesterol (HDL-C) levels. These fibrates enhance fatty acid metabolism in the liver and skeletal muscle by activating PPARα, and their cardioprotective effects have been validated in numerous clinical studies. Recent research highlights that fibrates improve insulin resistance, regulate lipid metabolism, correct energy metabolism imbalances, and inhibit the proliferation and migration of vascular smooth muscle and endothelial cells, thereby ameliorating pathological remodeling of the cardiovascular system and reducing blood pressure. Given the substantial attention to PPARα-targeted interventions in both basic research and clinical applications, activating PPARα may serve as a key therapeutic strategy for managing cardiovascular conditions such as myocardial hypertrophy, atherosclerosis, ischemic cardiomyopathy, myocardial infarction, diabetic cardiomyopathy, and heart failure. This review comprehensively examines the regulatory roles of PPARα in cardiovascular diseases and evaluates its clinical application value, aiming to provide a theoretical foundation for further development and utilization of PPARα-related therapies in CVD treatment.
张彤彤,张浩卓,和丽,刘嘉伟,邬家贞,苏文华,旦菊花.靶向过氧化物酶体增殖物激活受体α(PPARα)治疗心血管疾病[J].生物化学与生物物理进展,2025,52(9):2295-2313 ZHANG Tong-Tong, ZHANG Hao-Zhuo, HE Li, LIU Jia-Wei, WU Jia-Zhen, SU Wen-Hua, DAN Ju-Hua. Targeting PPARα for The Treatment of Cardiovascular Diseases[J]. Progress in Biochemistry and Biophysics,2025,52(9):2295-2313
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