Liposomes-Loaded miR-9-5p Alleviated Hypoxia-Ischemia-Induced Mitochondrial Oxidative Stress by Targeting ZBTB20 to Inhibiting Nrf2/Keap1 Interaction in Neonatal Mice.

IF 5.9 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Antioxidants & redox signaling Pub Date : 2025-04-01 Epub Date: 2025-01-27 DOI:10.1089/ars.2024.0640
Yijing Zhao, Chengcheng Gai, Shuwen Yu, Yan Song, Bing Gu, Qian Luo, Xixi Wang, Quan Hu, Weiyang Liu, Dexiang Liu, Zhen Wang
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引用次数: 0

Abstract

Aims: Hypoxia ischemia (HI) is a leading cause of cerebral palsy and long-term neurological sequelae in infants. Given that mitochondrial dysfunction in neurons contributes to HI brain damage, this study aimed to investigate the regulatory role of miR-9-5p in mitochondrial function following HI injury. Results: Overexpression of miR-9-5p in HI mice or H2O2-exposed PC12 cells suppressed neuronal injury, associated with increased mitochondrial copy number, normalizing mitochondrial membrane potential, improved nuclear factor-erythroid factor 2-related factor 2 (Nrf2) activation, and downregulation of Keap1. This was mediated, in part, through the ability of this miR-9-5p to bind and regulate the transcriptional activity of zinc finger and BTB domain-containing protein 20 (ZBTB20). Further study suggested that the knockdown of ZBTB20 exerts neuroprotection by inhibiting Nrf2/Keap1 interaction to promote the translocation of Nrf2 from the cytoplasm to the nucleus and the consequent expression of antioxidant proteins. Notably, the protective effects of miR-9-5p overexpression against HI-induced mitochondrial damage were reversed by the Nrf2 inhibitor ML385. Finally, the utilization of liposomes for the delivery of miR-9-5p (miR-9-5p@Lip) presents a promising therapeutic strategy for the treatment of HI injury. Innovation: miR-9-5p is a potential therapeutic agent for ischemic stroke through its modulation of the ZBTB20/Nrf2/Keap1 signaling pathway, influencing mitochondrial function and antioxidant response. Furthermore, the use of liposomal delivery for miR-9-5p offers a promising therapeutic strategy for HI injury. Conclusion: Overexpression of miR-9-5p protects against cerebral HI injury by modulating mitochondrial function through the ZBTB20/Nrf2/Keap1 signaling pathway. Antioxid. Redox Signal. 42, 512-528. [Figure: see text].

脂质体负载miR-9-5p通过靶向ZBTB20抑制Nrf2/Keap1相互作用减轻新生小鼠缺氧缺血诱导的线粒体氧化应激。
目的:缺氧缺血(HI)是婴儿脑瘫和长期神经系统后遗症的主要原因。鉴于神经元线粒体功能障碍有助于HI脑损伤,本研究旨在探讨miR-9-5p在HI损伤后线粒体功能中的调节作用。结果:miR-9-5p在HI小鼠或h2o2暴露的PC12细胞中过表达可抑制神经元损伤,与线粒体拷贝数增加、线粒体膜电位正常化、核因子-红细胞因子2相关因子2 (Nrf2)激活改善、Keap1下调相关。这在一定程度上是通过miR-9-5p结合和调节锌指和BTB结构域蛋白20 (ZBTB20)的转录活性的能力介导的。进一步的研究表明,ZBTB20的下调通过抑制Nrf2/Keap1的相互作用,促进Nrf2从细胞质向细胞核的易位以及由此产生的抗氧化蛋白的表达来发挥神经保护作用。值得注意的是,miR-9-5p过表达对hi诱导的线粒体损伤的保护作用被Nrf2抑制剂ML385逆转。最后,利用脂质体递送miR-9-5p (miR-9-5p@Lip)为治疗HI损伤提供了一种有希望的治疗策略。创新:miR-9-5p通过调节ZBTB20/Nrf2/Keap1信号通路,影响线粒体功能和抗氧化反应,是缺血性卒中的潜在治疗剂。此外,使用脂质体递送miR-9-5p为HI损伤提供了一种有希望的治疗策略。结论:miR-9-5p的过表达通过ZBTB20/Nrf2/Keap1信号通路调节线粒体功能,对脑HI损伤具有保护作用。Antioxid。氧化还原信号:00000 - 00000。
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
Antioxidants & redox signaling
Antioxidants & redox signaling 生物-内分泌学与代谢
CiteScore
14.10
自引率
1.50%
发文量
170
审稿时长
3-6 weeks
期刊介绍: Antioxidants & Redox Signaling (ARS) is the leading peer-reviewed journal dedicated to understanding the vital impact of oxygen and oxidation-reduction (redox) processes on human health and disease. The Journal explores key issues in genetic, pharmaceutical, and nutritional redox-based therapeutics. Cutting-edge research focuses on structural biology, stem cells, regenerative medicine, epigenetics, imaging, clinical outcomes, and preventive and therapeutic nutrition, among other areas. ARS has expanded to create two unique foci within one journal: ARS Discoveries and ARS Therapeutics. ARS Discoveries (24 issues) publishes the highest-caliber breakthroughs in basic and applied research. ARS Therapeutics (12 issues) is the first publication of its kind that will help enhance the entire field of redox biology by showcasing the potential of redox sciences to change health outcomes. ARS coverage includes: -ROS/RNS as messengers -Gaseous signal transducers -Hypoxia and tissue oxygenation -microRNA -Prokaryotic systems -Lessons from plant biology
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