基因治疗可预防Ndufs6缺乏症新生小鼠线粒体心肌病的发生。

IF 6.1 2区 生物学 Q1 CELL BIOLOGY
Xiaoxian Zhang, Li Huang, Cheng Li, Jinjuan Yang, Fuyu Duan, Qiang Su, Yuelin Zhang, Meng Kou, Xiaoya Zhou, Liyan Guo, Shaoxiang Chen, Yongxia Niu, Ziyue Li, Sihua Ou, Min Zhang, Kenneth King-Yip Cheng, Jianlong Wu, Xiang Xu, Qizhou Lian
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引用次数: 0

摘要

影响线粒体复合体I (CI)的基因突变可导致线粒体心肌病(MCM),但目前尚无有效的治疗方法。本研究旨在确定基于腺相关病毒9 (AAV9)的基因治疗是否可以预防或挽救Ndufs6缺陷引起的不同疾病阶段的MCM。用Ndufs6gt/gt小鼠模拟MCM,出生后第4周出现明显的心功能障碍,表现为射血分数降低、CI活性增加、纤维化增加、线粒体分裂和嵴破坏。新生小鼠和成年小鼠静脉注射AAV9-hNdufs6 (1e14 vg kg-1)。AAV9-hNdufs6治疗有效地预防了新生小鼠心功能障碍的发生,并在11个月的时间内保持了CI活性和嵴结构。相比之下,在发病后的成年小鼠中,治疗未能逆转或阻止3个月后心脏扩张和衰竭的进展,表现出线粒体异常和心肌细胞凋亡。在机制上,与新生小鼠相比,成年小鼠Kupffer细胞表现出更强的吞噬能力,在新生小鼠心脏中观察到更高水平的AAV9细胞表面受体,使新生小鼠对AAV9介导的心脏组织基因治疗更敏感。此外,早期启动的AAV9-hNdufs6基因治疗增加了Ndufs6在心脏组织中的表达,保留了线粒体结构和功能,通过调节AMPK/Drp1信号通路防止心肌细胞纤维化。综上所述,早期干预AAV9-hNdufs6基因治疗可有效预防MCM的发生,但发病后干预的效果有限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gene therapy prevents onset of mitochondrial cardiomyopathy in neonatal mice with Ndufs6 deficiency.

Mutations in genes affecting mitochondrial complex I (CI) can lead to mitochondrial cardiomyopathy (MCM) yet no effective treatment. This study sought to determine whether adeno-associated virus 9 (AAV9)-based gene therapy could prevent or rescue Ndufs6 deficiency-induced MCM at different disease stages. Using Ndufs6gt/gt mice to mimic MCM, cardiac dysfunction was evident at week 4 post-birth, showing reduced ejection fraction, CI activity, increased fibrosis, mitochondrial fission, and disrupted cristae. Neonatal and adult mice were intravenously given AAV9-hNdufs6 (1e14 vg kg-1). AAV9-hNdufs6 therapy effectively prevented neonatal mice's cardiac dysfunction onset, preserving CI activity and cristae structure for 11 months. In contrast, therapy in adult mice post-disease onset failed to reverse or halt progression of heart dilation and failure after 3 months, showing mitochondrial abnormalities and cardiomyocyte apoptosis. Mechanistically, adult mouse Kupffer cells demonstrated enhanced phagocytic capabilities compared to neonatal mice, with higher expression levels of AAV9 cell surface receptors observed in neonatal mouse hearts, rendering neonatal mice more responsive to AAV9-mediated gene therapy for heart tissue. Additionally, AAV9-hNdufs6 gene therapy initiated at an early stage increased Ndufs6 expression in cardiac tissue, preserved mitochondrial structure and function, prevented cardiomyocyte fibrosis through modulation of the AMPK/Drp1 signaling pathway. In conclusion, early intervention with AAV9-hNdufs6 gene therapy can effectively prevent the onset of MCM, but intervention after disease onset has limited efficacy.

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来源期刊
Cell Death Discovery
Cell Death Discovery Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
8.30
自引率
1.40%
发文量
468
审稿时长
9 weeks
期刊介绍: Cell Death Discovery is a multidisciplinary, international, online-only, open access journal, dedicated to publishing research at the intersection of medicine with biochemistry, pharmacology, immunology, cell biology and cell death, provided it is scientifically sound. The unrestricted access to research findings in Cell Death Discovery will foster a dynamic and highly productive dialogue between basic scientists and clinicians, as well as researchers in industry with a focus on cancer, neurobiology and inflammation research. As an official journal of the Cell Death Differentiation Association (ADMC), Cell Death Discovery will build upon the success of Cell Death & Differentiation and Cell Death & Disease in publishing important peer-reviewed original research, timely reviews and editorial commentary. Cell Death Discovery is committed to increasing the reproducibility of research. To this end, in conjunction with its sister journals Cell Death & Differentiation and Cell Death & Disease, Cell Death Discovery provides a unique forum for scientists as well as clinicians and members of the pharmaceutical and biotechnical industry. It is committed to the rapid publication of high quality original papers that relate to these subjects, together with topical, usually solicited, reviews, editorial correspondence and occasional commentaries on controversial and scientifically informative issues.
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