Drp1 depletion protects against ferroptotic cell death by preserving mitochondrial integrity and redox homeostasis.

IF 8.1 1区 生物学 Q1 CELL BIOLOGY Cell Death & Disease Pub Date : 2024-08-27 DOI:10.1038/s41419-024-07015-8
Stephan Tang, Anneke Fuß, Zohreh Fattahi, Carsten Culmsee
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Abstract

Mitochondria are highly dynamic organelles which undergo constant fusion and fission as part of the mitochondrial quality control. In genetic diseases and age-related neurodegenerative disorders, altered mitochondrial fission-fusion dynamics have been linked to impaired mitochondrial quality control, disrupted organelle integrity and function, thereby promoting neural dysfunction and death. The key enzyme regulating mitochondrial fission is the GTPase Dynamin-related Protein 1 (Drp1), which is also considered as a key player in mitochondrial pathways of regulated cell death. In particular, increasing evidence suggests a role for impaired mitochondrial dynamics and integrity in ferroptosis, which is an iron-dependent oxidative cell death pathway with relevance in neurodegeneration. In this study, we demonstrate that CRISPR/Cas9-mediated genetic depletion of Drp1 exerted protective effects against oxidative cell death by ferroptosis through preserved mitochondrial integrity and maintained redox homeostasis. Knockout of Drp1 resulted in mitochondrial elongation, attenuated ferroptosis-mediated impairment of mitochondrial membrane potential, and stabilized iron trafficking and intracellular iron storage. In addition, Drp1 deficiency exerted metabolic effects, with reduced basal and maximal mitochondrial respiration and a metabolic shift towards glycolysis. These metabolic effects further alleviated the mitochondrial contribution to detrimental ROS production thereby significantly enhancing neural cell resilience against ferroptosis. Taken together, this study highlights the key role of Drp1 in mitochondrial pathways of ferroptosis and expose the regulator of mitochondrial dynamics as a potential therapeutic target in neurological diseases involving oxidative dysregulation.

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通过保护线粒体的完整性和氧化还原平衡,Drp1 的耗竭可防止铁中毒细胞死亡。
线粒体是高度动态的细胞器,作为线粒体质量控制的一部分,它不断发生融合和裂变。在遗传性疾病和与年龄有关的神经退行性疾病中,线粒体裂变-融合动力学的改变与线粒体质量控制受损、细胞器完整性和功能破坏有关,从而促进神经功能紊乱和死亡。调控线粒体裂变的关键酶是 GTPase Dynamin-related Protein 1(Drp1),它也被认为是线粒体调控细胞死亡途径中的关键角色。特别是,越来越多的证据表明,线粒体动力学和完整性受损在铁凋亡中的作用,铁凋亡是一种铁依赖性氧化细胞死亡途径,与神经变性有关。在这项研究中,我们证明了 CRISPR/Cas9 介导的 Drp1 基因缺失能通过保护线粒体完整性和维持氧化还原平衡,对铁跃迁引起的氧化性细胞死亡起到保护作用。敲除 Drp1 会导致线粒体伸长,减轻铁突变介导的线粒体膜电位损伤,并稳定铁的运输和细胞内铁的储存。此外,Drp1 缺乏还会产生新陈代谢效应,降低线粒体的基础呼吸和最大呼吸,使新陈代谢转向糖酵解。这些新陈代谢效应进一步减轻了线粒体对有害 ROS 生成的贡献,从而显著增强了神经细胞抵御铁中毒的能力。综上所述,本研究强调了 Drp1 在线粒体铁变态反应途径中的关键作用,并揭示了线粒体动力学调节器是涉及氧化失调的神经系统疾病的潜在治疗靶点。
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来源期刊
Cell Death & Disease
Cell Death & Disease CELL BIOLOGY-
CiteScore
15.10
自引率
2.20%
发文量
935
审稿时长
2 months
期刊介绍: Brought to readers by the editorial team of Cell Death & Differentiation, Cell Death & Disease is an online peer-reviewed journal specializing in translational cell death research. It covers a wide range of topics in experimental and internal medicine, including cancer, immunity, neuroscience, and now cancer metabolism. Cell Death & Disease seeks to encompass the breadth of translational implications of cell death, and topics of particular concentration will include, but are not limited to, the following: Experimental medicine Cancer Immunity Internal medicine Neuroscience Cancer metabolism
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