C9orf72 deficiency impairs the autophagic response to aggregated TDP-25 and exacerbates TDP-25-mediated neurodegeneration in vivo.

IF 6.2 2区 医学 Q1 NEUROSCIENCES
Lilian Tsai-Wei Lin, Marc Shenouda, Philip McGoldrick, Agnes Lau, Janice Robertson
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Abstract

Cytoplasmic aggregates of the predominantly nuclear TAR DNA-binding protein 43 (TDP-43) are a pathological hallmark of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) cases caused by G4C2 hexanucleotide repeat expansions in C9orf72 (C9-ALS/FTD). While these repeat expansions are associated with both gain- and loss-of-function mechanisms, the contribution of C9orf72 loss of function to disease pathogenesis remains unclear. C9orf72 has been shown to regulate autophagy, and its deficiency has been shown to exacerbate phenotypes in gain-of-function G4C2 models, implicating impaired autophagic clearance in disease pathogenesis. Here, we directly test whether C9orf72 deficiency exacerbates TDP-43 pathology and neurodegeneration in vivo. Using AAV9-vectors to drive neuron-specific expression of pathologically relevant C-terminal species of TDP-43, TDP-35 and TDP-25, we established models of TDP-43 pathology that recapitulate key disease features, including cytoplasmic aggregates, motor and cognitive decline, and neuronal loss. TDP-25 expression in particular produced robust, abnormally phosphorylated, ubiquitinated and p62-labelled cytoplasmic aggregates, modelling TDP-43 pathology in disease. Loss of C9orf72 in TDP-25-expressing mice accelerated the onset of motor deficits, increased neurodegeneration, and impaired the autophagic response to TDP-25 expression. These findings reveal that C9orf72 deficiency disrupts autophagy and exacerbates TDP-25-mediated toxicity in vivo, supporting a contributory role for C9orf72 loss-of-function in driving neurodegeneration in C9-ALS/FTD.

体内C9orf72缺乏会损害对聚集的TDP-25的自噬反应,并加剧TDP-25介导的神经退行性变。
胞质中以核为主的TAR dna结合蛋白43 (TDP-43)的聚集是肌萎缩性侧索硬化症(ALS)和额颞叶痴呆(FTD)病例的病理标志,这些病例是由C9orf72中G4C2六核苷酸重复扩增引起的。虽然这些重复扩增与功能获得和功能丧失机制相关,但C9orf72功能丧失在疾病发病机制中的作用尚不清楚。C9orf72已被证明可以调节自噬,其缺失已被证明会在功能获得的G4C2模型中加剧表型,暗示疾病发病机制中自噬清除受损。我们在体内直接检测C9orf72缺乏是否会加重TDP-43病理和神经退行性变。利用aav9载体驱动病理相关的TDP-43、TDP-35和TDP-25 c端物种的神经元特异性表达,我们建立了重现关键疾病特征的TDP-43病理模型,包括细胞质聚集、运动和认知能力下降以及神经元损失。特别是TDP-25的表达产生了强大的、异常磷酸化的、泛素化的和p62标记的细胞质聚集体,模拟了TDP-43在疾病中的病理。在表达TDP-25的小鼠中,C9orf72的缺失加速了运动缺陷的发生,增加了神经变性,并损害了对TDP-25表达的自噬反应。这些研究结果表明,C9orf72缺乏会破坏自噬并加剧tdp -25介导的体内毒性,支持C9orf72功能丧失在驱动C9-ALS/FTD神经退行性变中的作用。
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
Acta Neuropathologica Communications
Acta Neuropathologica Communications Medicine-Pathology and Forensic Medicine
CiteScore
11.20
自引率
2.80%
发文量
162
审稿时长
8 weeks
期刊介绍: "Acta Neuropathologica Communications (ANC)" is a peer-reviewed journal that specializes in the rapid publication of research articles focused on the mechanisms underlying neurological diseases. The journal emphasizes the use of molecular, cellular, and morphological techniques applied to experimental or human tissues to investigate the pathogenesis of neurological disorders. ANC is committed to a fast-track publication process, aiming to publish accepted manuscripts within two months of submission. This expedited timeline is designed to ensure that the latest findings in neuroscience and pathology are disseminated quickly to the scientific community, fostering rapid advancements in the field of neurology and neuroscience. The journal's focus on cutting-edge research and its swift publication schedule make it a valuable resource for researchers, clinicians, and other professionals interested in the study and treatment of neurological conditions.
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