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The Role of Apoptosis and Ferroptosis in Primary Mitochondrial Diseases: Mechanisms and Pathogenesis

心磷脂 线粒体 细胞生物学 生物 程序性细胞死亡 细胞凋亡 脂质过氧化 线粒体DNA 活性氧 细胞色素c 磷脂过氧化氢谷胱甘肽过氧化物酶 氧化应激 线粒体内膜 背景(考古学) DNAJA3公司 内质网 氧化磷酸化 GPX4 凋亡诱导因子 线粒体凋亡诱导通道 线粒体融合 凋亡体 DNA损伤 内源性凋亡 线粒体ROS 生物化学 谷胱甘肽过氧化物酶 化学 粒体自噬 线粒体呼吸链 线粒体通透性转换孔
作者
Anastasia A. Kolotova,Alexandr Shestopalov,S I Kutsev
出处
期刊:International Journal of Molecular Sciences [Multidisciplinary Digital Publishing Institute]
卷期号:27 (13): 5931-5931
标识
DOI:10.3390/ijms27135931
摘要

Mitochondrial diseases have traditionally been viewed as energy deficiencies, but current evidence positions mitochondria as central regulators of multiple cell death pathways. This review systematically analyzes the molecular mechanisms of apoptosis and ferroptosis in the context of both primary mitochondrial diseases-caused by mutations in mtDNA or nuclear DNA directly affecting oxidative phosphorylation-and secondary mitochondrial dysfunction associated with broader pathological conditions. Apoptosis is an energy-dependent process characterized by mitochondrial outer membrane permeabilization, cytochrome c release, and caspase cascade activation, whereas ferroptosis involves iron-dependent lipid peroxidation, glutathione depletion, and inactivation of glutathione peroxidase 4 (GPX4), leading to accumulation of oxidized phospholipids predominantly in endoplasmic reticulum and plasma membranes; mitochondrial ultrastructural changes-including volume reduction and cristae loss-represent characteristic morphological features of ferroptosis rather than its primary site of initiation. Key findings reveal that reactive oxygen species overproduction, disruption of reducing equivalent metabolism, iron dyshomeostasis, and calcium overload simultaneously prime cells for both death pathways. Cytochrome c, p53, and BCL-2 family proteins serve as integration hubs, with cardiolipin peroxidation and phospholipid composition influencing pathway switching. Tissue specificity is pronounced in primary mitochondrial diseases: retinal ganglion cells in Leber's hereditary optic neuropathy, cardiomyocytes in mtDNA-associated cardiomyopathies, and hepatocytes in mtDNA depletion syndromes exhibit distinct dominant death pathways. It should be noted, however, that for many conditions discussed, the evidence for ferroptosis involvement relies on indirect markers-such as lipid peroxidation products, decreased GPX4, and iron deposition-rather than on pharmacological rescue with ferrostatin-1 or liproxstatin-1 and rigorous exclusion of alternative death modalities; this limitation is discussed critically throughout the review. Diagnostic criteria combining morphological, biochemical, and pharmacological tools enable differentiation of death pathways. The review concludes that combined inhibition-using mitochondria-targeted antioxidants, GPX4 modulators, iron chelators, and mPTP blockers-together with personalized diagnostic algorithms offers the most promising therapeutic strategy. Understanding the apoptosis-ferroptosis crosstalk is essential for developing targeted interventions in mitochondrial diseases.
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