Ferroptosis: a potential therapeutic target in cardio-cerebrovascular diseases.

IF 3.5 2区 生物学 Q3 CELL BIOLOGY
Molecular and Cellular Biochemistry Pub Date : 2025-07-01 Epub Date: 2025-03-27 DOI:10.1007/s11010-025-05262-7
Chenlong Jiang, Yang Yan, Tianlin Long, Jiawei Xu, Cuicui Chang, Meili Kang, Xuanqi Wang, Yuhua Chen, Junlin Qiu
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引用次数: 0

Abstract

Cardio-cerebrovascular diseases (CCVDs) are the leading cause of global mortality, yet effective treatment options remain limited. Ferroptosis, a novel form of regulated cell death, has emerged as a critical player in various CCVDs, including atherosclerosis, myocardial infarction, ischemia-reperfusion injury, cardiomyopathy, and ischemic/hemorrhagic strokes. This review highlights the core mechanisms of ferroptosis, its pathological implications in CCVDs, and the therapeutic potential of targeting this process. Additionally, it explores the role of Chinese herbal medicines (CHMs) in mitigating ferroptosis, offering novel therapeutic strategies for CCVDs management. Ferroptosis is regulated by several key pathways. The GPX4-GSH-System Xc- axis is central to ferroptosis execution, involving GPX4 using GSH to neutralize lipid peroxides, with system Xc- being crucial for GSH synthesis. The NAD(P)H/FSP1/CoQ10 axis involves FSP1 regenerating CoQ10 via NAD(P)H, inhibiting lipid peroxidation independently of GPX4. Lipid peroxidation, driven by PUFAs and enzymes like ACSL4 and LPCAT3, and iron metabolism, regulated by proteins like TfR1 and ferritin, are also crucial for ferroptosis. Inhibiting ferroptosis shows promise in managing CCVDs. In atherosclerosis, ferroptosis inhibitors reduce iron accumulation and lipid peroxidation. In myocardial infarction, inhibitors protect cardiomyocytes by preserving GPX4 and SLC7A11 levels. In ischemia-reperfusion injury, targeting ferroptosis reduces myocardial and cerebral damage. In diabetic cardiomyopathy, Nrf2 activators alleviate oxidative stress and iron metabolism irregularities. CHMs offer natural compounds that mitigate ferroptosis. They possess antioxidant properties, chelate iron, and modulate signaling pathways like Nrf2 and AMPK. For example, Salvia miltiorrhiza and Astragalus membranaceus reduce oxidative stress, while some CHMs chelate iron, reducing its availability for ferroptosis. In conclusion, ferroptosis plays a pivotal role in CCVDs, and targeting it offers novel therapeutic avenues. CHMs show promise in reducing ferroptosis and improving patient outcomes. Future research should explore combination therapies and further elucidate the molecular interactions in ferroptosis.

上睑下垂:心脑血管疾病的潜在治疗靶点。
心脑血管疾病(ccvd)是全球死亡的主要原因,但有效的治疗选择仍然有限。上铁坏死是一种新型的细胞死亡调控形式,在动脉粥样硬化、心肌梗死、缺血再灌注损伤、心肌病和缺血性/出血性中风等多种ccvd中发挥着重要作用。本文综述了铁下垂的核心机制、其在ccvd中的病理意义以及针对这一过程的治疗潜力。此外,本文还探讨了中草药在减轻铁下垂中的作用,为ccvd的治疗提供了新的治疗策略。铁下垂受几个关键途径的调控。GPX4-GSH-系统Xc-轴是铁死亡的核心,涉及GPX4使用GSH中和脂质过氧化物,系统Xc-对GSH合成至关重要。NAD(P)H/FSP1/CoQ10轴涉及FSP1通过NAD(P)H再生CoQ10,独立于GPX4抑制脂质过氧化。由PUFAs和ACSL4和LPCAT3等酶驱动的脂质过氧化,以及由TfR1和铁蛋白等蛋白质调节的铁代谢,对铁下垂也至关重要。抑制铁下垂有望治疗ccvd。在动脉粥样硬化中,铁下垂抑制剂可减少铁积累和脂质过氧化。在心肌梗死中,抑制剂通过维持GPX4和SLC7A11水平来保护心肌细胞。在缺血再灌注损伤中,靶向铁下垂可减少心肌和脑损伤。在糖尿病性心肌病中,Nrf2激活剂可缓解氧化应激和铁代谢异常。中药提供减轻铁下垂的天然化合物。它们具有抗氧化特性,螯合铁,并调节Nrf2和AMPK等信号通路。例如,丹参和黄芪可以降低氧化应激,而一些中草药可以螯合铁,减少铁的可用性。综上所述,铁下垂在ccvd中起着关键作用,针对它提供了新的治疗途径。中药在减少铁下垂和改善患者预后方面表现出希望。未来的研究应探索联合治疗,并进一步阐明铁下垂的分子相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular and Cellular Biochemistry
Molecular and Cellular Biochemistry 生物-细胞生物学
CiteScore
8.30
自引率
2.30%
发文量
293
审稿时长
1.7 months
期刊介绍: Molecular and Cellular Biochemistry: An International Journal for Chemical Biology in Health and Disease publishes original research papers and short communications in all areas of the biochemical sciences, emphasizing novel findings relevant to the biochemical basis of cellular function and disease processes, as well as the mechanics of action of hormones and chemical agents. Coverage includes membrane transport, receptor mechanism, immune response, secretory processes, and cytoskeletal function, as well as biochemical structure-function relationships in the cell. In addition to the reports of original research, the journal publishes state of the art reviews. Specific subjects covered by Molecular and Cellular Biochemistry include cellular metabolism, cellular pathophysiology, enzymology, ion transport, lipid biochemistry, membrane biochemistry, molecular biology, nuclear structure and function, and protein chemistry.
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