小脑病理有助于脊髓性肌萎缩的神经发育缺陷。

IF 11.7 1区 医学 Q1 CLINICAL NEUROLOGY
Brain Pub Date : 2025-09-12 DOI:10.1093/brain/awaf336
Florian Gerstner, Sandra Wittig, Christian Menedo, Sayan Ruwald, Maria J Carlini, Adela Vankova, Leonie Sowoidnich, Gerardo Martín-López, Vanessa Dreilich, Andrea Alonso Collado, John G Pagiazitis, Oumayma Aousji, Chloe Grzyb, Amy K Smith, Mu Yang, Francesco Roselli, George Z Mentis, Charlotte J Sumner, Livio Pellizzoni, Christian M Simon
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引用次数: 0

摘要

脊髓性肌萎缩症(SMA)是一种以普遍存在的SMN缺乏和运动神经元丧失为特征的神经肌肉疾病。在早期接受SMA恢复治疗的严重I型SMA患者中,持续存在运动和沟通障碍,以及新出现的认知和社交缺陷,表明涉及大脑神经回路的更广泛的功能障碍。为了探索椎管上对这些新出现的表型的潜在贡献,我们研究了小脑,这是一个对运动和认知行为都至关重要的大脑区域。在这里,我们在I型SMA患者和严重小鼠模型的死后组织中发现了小脑病理,其特征是由细胞自主、非凋亡的p53依赖机制驱动的小叶特异性浦肯野细胞(PC)死亡。连接PC的兴奋性平行纤维突触的丧失和功能障碍进一步导致了小脑回路的中断和PC放电的改变。此外,我们在严重SMA小鼠模型中发现了受损的超声发声(USV),这是早期发展的社会沟通技能依赖于小脑功能的代理。细胞特异性救援实验表明,小脑内在病理导致运动和社交障碍,独立于脊髓运动回路异常。总之,这些发现确立了小脑功能障碍是神经发育运动和社交缺陷的致病驱动因素,为SMA的持续存在和新出现的表型提供了机制见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cerebellar pathology contributes to neurodevelopmental deficits in spinal muscular atrophy.

Spinal muscular atrophy (SMA) is a neuromuscular disease characterized by ubiquitous SMN deficiency and loss of motor neurons. The persistence of motor and communication impairments, together with emerging cognitive and social deficits in severe Type I SMA patients treated early with SMN-restoring therapies, suggests a broader dysfunction involving neural circuits of the brain. To explore the potential supraspinal contributions to these emerging phenotypes, we investigated the cerebellum, a brain region critical for both motor and cognitive behaviors. Here, we identify cerebellar pathology in both post-mortem tissue from Type I SMA patients and a severe mouse model, which is characterized by lobule-specific Purkinje cell (PC) death driven by cell-autonomous, non-apoptotic p53-dependent mechanisms. Loss and dysfunction of excitatory parallel fiber synapses onto PC further contribute to cerebellar circuit disruption and altered PC firing. Furthermore, we identified impaired ultrasonic vocalization (USV) in a severe SMA mouse model-a proxy for early-developing social communication skills that depend on cerebellar function. Cell-specific rescue experiments demonstrate that intrinsic cerebellar pathology contributes to motor and social communication impairments independently of spinal motor circuit abnormalities. Together, these findings establish cerebellar dysfunction as a pathogenic driver of neurodevelopmental motor and social defects, providing mechanistic insight into the persisting and emerging phenotypes of SMA.

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来源期刊
Brain
Brain 医学-临床神经学
CiteScore
20.30
自引率
4.10%
发文量
458
审稿时长
3-6 weeks
期刊介绍: Brain, a journal focused on clinical neurology and translational neuroscience, has been publishing landmark papers since 1878. The journal aims to expand its scope by including studies that shed light on disease mechanisms and conducting innovative clinical trials for brain disorders. With a wide range of topics covered, the Editorial Board represents the international readership and diverse coverage of the journal. Accepted articles are promptly posted online, typically within a few weeks of acceptance. As of 2022, Brain holds an impressive impact factor of 14.5, according to the Journal Citation Reports.
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