Nicotinamide Mononucleotide Prevents Cisplatin-Induced Mitochondrial Defects in Cortical Neurons Derived from Human Induced Pluripotent Stem Cells.

Brain plasticity (Amsterdam, Netherlands) Pub Date : 2022-12-20 eCollection Date: 2022-01-01 DOI:10.3233/BPL-220143
Mohammad Abdur Rashid, Alfredo Oliveros, Yu Shin Kim, Mi-Hyeon Jang
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Abstract

Background: Chemotherapy-induced cognitive impairment (CICI) is a neurotoxic side effect of chemotherapy that has yet to have an effective treatment.

Objective: Using cisplatin, a platinum-based chemotherapy together with excitatory cortical neurons derived from human induced pluripotent cells (iPSCs) to model of CICI, our recent study demonstrated that dysregulation of brain NAD+ metabolism contributes to cisplatin-induced impairments in neurogenesis and cognitive function, which was prevented by administration of the NAD+ precursor, nicotinamide mononucleotide (NMN). However, it remains unclear how cisplatin causes neurogenic dysfunction and the mechanism by which NMN prevents cisplatin-induced cognitive impairment. Given that mitochondrial dysfunction is thought to play a prominent role in age-related neurodegenerative disease and chemotherapy-induced neurotoxicity, we sought to explore if NMN prevents chemotherapy-related neurotoxicity by attenuating cisplatin-induced mitochondrial damage.

Results: We demonstrate that cisplatin induces neuronal DNA damage, increases generation of mitochondrial reactive oxygen species (ROS) and decreases ATP production, all of which are indicative of oxidative DNA damage and mitochondrial functional defects. Ultrastructural analysis revealed that cisplatin caused loss of cristae membrane integrity and matrix swelling in human cortical neurons. Notably, pretreatment with NMN prevents cisplatin-induced defects in mitochondria of human cortical neurons.

Conclusion: Our results suggest that increased mitochondrial oxidative stress and functional defects play key roles in cisplatin-induced neurotoxicity. Thus, NMN may be an effective therapeutic strategy to prevent cisplatin-induced deleterious effects on mitochondria, making this organelle a key factor in amelioration of cisplatin-induced cognitive impairments.

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烟酰胺单核苷酸阻止顺铂诱导的人诱导多能干细胞皮质神经元线粒体缺陷。
背景:化疗诱导的认知障碍(CICI)是化疗的一种神经毒性副作用,目前尚未有有效的治疗方法。目的:我们最近的研究表明,使用顺铂(一种基于铂的化疗)和来源于人类诱导多能干细胞(iPSC)的兴奋性皮层神经元来建立CICI模型,大脑NAD+代谢的失调会导致顺铂诱导的神经发生和认知功能损伤,这可以通过给予NAD+前体来预防,烟酰胺单核苷酸(NMN)。然而,目前尚不清楚顺铂如何导致神经源性功能障碍,以及NMN预防顺铂诱导的认知障碍的机制。鉴于线粒体功能障碍被认为在与年龄相关的神经退行性疾病和化疗诱导的神经毒性中发挥着重要作用,我们试图探索NMN是否通过减轻顺铂诱导的线粒体损伤来预防化疗相关的神经毒性。结果:我们证明顺铂诱导神经元DNA损伤,增加线粒体活性氧(ROS)的产生,降低ATP的产生,所有这些都表明DNA氧化损伤和线粒体功能缺陷。超微结构分析显示,顺铂导致人皮质神经元嵴膜完整性丧失和基质肿胀。值得注意的是,NMN预处理可以防止顺铂诱导的人类皮层神经元线粒体缺陷。结论:我们的研究结果表明,线粒体氧化应激的增加和功能缺陷在顺铂诱导的神经毒性中起着关键作用。因此,NMN可能是预防顺铂诱导的线粒体有害影响的有效治疗策略,使这种细胞器成为改善顺铂诱导的认知障碍的关键因素。
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