The Third Affiliated Hospital of Guangzhou Medical University, Guangzhou, China.
Department of Surgery, UT Southwestern Medical Center, Dallas, TX, USA.
FEBS J. 2022 Nov;289(22):7038-7050. doi: 10.1111/febs.16059. Epub 2021 Jun 17.
As a type of lytic cell death driven by unrestricted lipid peroxidation and subsequent plasma membrane damage, ferroptosis occurs and develops because of sophisticated signals and regulatory mechanisms. The reactive oxygen species (ROS) used to initiate ferroptosis come from a variety of sources, including iron-mediated Fenton reactions, mitochondrial ROS, and membrane-associated ROS driven by the NOX protein family. Polyunsaturated fatty acid-containing phospholipids are the main substrates of lipid peroxidation in ferroptosis, which is positively regulated by enzymes, such as ACSL4, LPCAT3, ALOXs, or POR. Selective activation of autophagic degradation pathways promotes ferroptosis by increasing iron accumulation to cause lipid peroxidation. In contrast, system xc -glutathione-GPX4 axis plays a central role in limiting lipid peroxidation, although other antioxidants (such as coenzyme Q10 and tetrahydrobiopterin) can also inhibit ferroptosis. A main nuclear mechanism of cell defense against ferroptosis is the activation of the NFE2L2-dependent antioxidant response by transcriptionally upregulating the expression of antioxidants or cytoprotective genes. Additionally, the membrane damage caused by ferroptotic stimulus can be repaired by ESCRT-III-dependent membrane scission machinery. In this review, we summarize recent progress in understanding the signaling pathways and defense mechanisms of ferroptosis.
作为一种由不受限制的脂质过氧化作用和随后的细胞膜损伤驱动的裂解细胞死亡类型,铁死亡是由于复杂的信号和调节机制而发生和发展的。引发铁死亡的活性氧(ROS)来自多种来源,包括铁介导的芬顿反应、线粒体 ROS 以及由 NOX 蛋白家族驱动的膜相关 ROS。含有多不饱和脂肪酸的磷脂是铁死亡中脂质过氧化的主要底物,其受到酶的正向调节,如 ACSL4、LPCAT3、ALOXs 或 POR。选择性激活自噬降解途径通过增加铁积累来促进脂质过氧化,从而促进铁死亡。相反,系统 xc -谷胱甘肽-GPX4 轴在限制脂质过氧化中起着核心作用,尽管其他抗氧化剂(如辅酶 Q10 和四氢生物蝶呤)也可以抑制铁死亡。细胞抵御铁死亡的主要核机制是通过转录上调抗氧化剂或细胞保护基因的表达来激活 NFE2L2 依赖性抗氧化反应。此外,铁死亡刺激引起的膜损伤可以通过 ESCRT-III 依赖性膜分裂机制来修复。在这篇综述中,我们总结了对铁死亡信号通路和防御机制的理解的最新进展。