SARS-CoV-2 membrane protein induces neurodegeneration via affecting Golgi-mitochondria interaction.

IF 10.8 1区 医学 Q1 NEUROSCIENCES Translational Neurodegeneration Pub Date : 2024-12-27 DOI:10.1186/s40035-024-00458-1
Fang Wang, Hailong Han, Caifang Wang, Jingfei Wang, Yanni Peng, Ye Chen, Yaohui He, Zhouyang Deng, Fang Li, Yikang Rong, Danling Wang, Wen Liu, Hualan Chen, Zhuohua Zhang
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Abstract

Background: Neurological complications are a significant concern of Coronavirus Disease 2019 (COVID-19). However, the pathogenic mechanism of neurological symptoms associated with severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection is poorly understood.

Methods: We used Drosophila as a model to systematically analyze SARS-CoV-2 genes encoding structural and accessory proteins and identified the membrane protein (M) that disrupted mitochondrial functions in vivo. The M protein was stereotaxically injected to further assess its effects in the brains of wild-type (WT) and 5 × FAD mice. Omics technologies, including RNA sequencing and interactome analysis, were performed to explore the mechanisms of the effects of M protein both in vitro and in vivo.

Results: Systematic analysis of SARS-CoV-2 structural and accessory proteins in Drosophila identified that the M protein induces mitochondrial fragmentation and dysfunction, leading to reduced ATP production, ROS overproduction, and eventually cell death in the indirect flight muscles. In WT mice, M caused hippocampal atrophy, neural apoptosis, glial activation, and mitochondrial damage. These changes were further aggravated in 5 × FAD mice. M was localized to the Golgi apparatus and genetically interacted with four wheel drive (FWD, a Drosophila homolog of mammalian PI4KIIIβ) to regulate Golgi functions in flies. Fwd RNAi, but not PI4KIIIα RNAi, reversed the M-induced Golgi abnormality, mitochondrial fragmentation, and ATP reduction. Inhibition of PI4KIIIβ activity suppressed the M-induced neuronal cell death. Therefore, M induced mitochondrial fragmentation and apoptosis likely through disruption of Golgi-derived PI(4)P-containing vesicles.

Conclusions: M disturbs the distribution and function of Golgi, leading to mitochondrial abnormality and eventually neurodegeneration via a PI4KIIIβ-mediated mechanism. This study reveals a potential mechanism for COVID-19 neurological symptoms and opens a new avenue for development of therapeutic strategies targeting SARS-CoV-2 M or mitochondria.

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SARS-CoV-2膜蛋白通过影响高尔基-线粒体相互作用诱导神经变性。
背景:神经系统并发症是2019冠状病毒病(COVID-19)的一个重要问题。然而,与严重急性呼吸综合征冠状病毒2 (SARS-CoV-2)感染相关的神经症状的致病机制尚不清楚。方法:以果蝇为模型,系统分析编码结构蛋白和辅助蛋白的SARS-CoV-2基因,鉴定体内破坏线粒体功能的膜蛋白(M)。通过立体定向注射M蛋白,进一步评估其在野生型(WT)和5 × FAD小鼠脑内的作用。采用组学技术,包括RNA测序和相互作用组分析,探索M蛋白在体外和体内的作用机制。结果:对果蝇中SARS-CoV-2结构蛋白和辅助蛋白的系统分析发现,M蛋白诱导线粒体断裂和功能障碍,导致间接飞行肌中ATP产生减少,ROS产生过剩,最终导致细胞死亡。在WT小鼠中,M引起海马萎缩、神经细胞凋亡、胶质细胞激活和线粒体损伤。这些变化在5 × FAD小鼠中进一步加重。M定位于高尔基体,并与四轮驱动(FWD,哺乳动物pi4kii β的果蝇同源物)基因相互作用,调节果蝇的高尔基体功能。Fwd RNAi,而非pi4kii α RNAi,逆转了m诱导的高尔基体异常、线粒体断裂和ATP减少。抑制pi4kii β活性可抑制m诱导的神经元细胞死亡。因此,M可能通过破坏高尔基衍生的PI(4) p -囊泡诱导线粒体断裂和凋亡。结论:M通过pi4kii β介导的机制干扰高尔基体的分布和功能,导致线粒体异常,最终导致神经退行性变。该研究揭示了COVID-19神经症状的潜在机制,为开发针对sars - cov - 2m或线粒体的治疗策略开辟了新的途径。
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来源期刊
Translational Neurodegeneration
Translational Neurodegeneration Neuroscience-Cognitive Neuroscience
CiteScore
19.50
自引率
0.80%
发文量
44
审稿时长
10 weeks
期刊介绍: Translational Neurodegeneration, an open-access, peer-reviewed journal, addresses all aspects of neurodegenerative diseases. It serves as a prominent platform for research, therapeutics, and education, fostering discussions and insights across basic, translational, and clinical research domains. Covering Parkinson's disease, Alzheimer's disease, and other neurodegenerative conditions, it welcomes contributions on epidemiology, pathogenesis, diagnosis, prevention, drug development, rehabilitation, and drug delivery. Scientists, clinicians, and physician-scientists are encouraged to share their work in this specialized journal tailored to their fields.
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