小鼠SCA1模型步态损伤的纵向研究与表征。

IF 2.4 3区 医学 Q3 NEUROSCIENCES
Siddhartha Maharjan, Eliyahu Kochman, Tatiana Gervase, Nina Page, Mannut Singh, Rajveer Singh, Avani Chitnis, Ashka Shah, Sidharth Addepalli, Ria Paradkar, Rishika Chavali, Hana Mir, Anna Zheng, Lydia Steenman, Hannah Shorrock, Andrew Berglund, Vinata Vedam-Mai, Damian Shin
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引用次数: 0

摘要

脊髓小脑性共济失调1 (SCA1)是一种罕见的常染色体显性神经退行性疾病,其特征是步态、协调和平衡受损。SCA1源于Atxn1基因中CAG重复扩增,诱导蛋白聚集并最终导致小脑浦肯野细胞变性。临床研究表明,步态障碍,如步幅(SL)、步幅时间和站立阶段的变化,在小脑疾病患者中可见。sc1154q /2Q小鼠模型反映了SCA1在人类中的纵向进展,表现为运动不协调、肌肉萎缩和小脑浦肯野细胞降解。在这项研究中,我们的目的是表征sc1154q /2Q小鼠模型中出现的步态障碍的进展。采用腹侧平面成像技术的DigiGait™系统用于跟踪SCA154Q/2Q小鼠的步态参数,从7周龄开始直到42周龄。我们的数据显示,SCA154Q/2Q雄性小鼠从15-16周开始就表现出步态速度下降(p 154Q/2Q雌性小鼠早在9周时就表现出步态速度下降(p 154Q/2Q小鼠,从14周到32周)。我们的数据还表明,在雄性和雌性SCA1小鼠中,在第30周和第40周,后肢加载速度降低,MAX dA/dt值降低(p
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Longitudinal Study and Characterization of Gait Impairment in a Mouse Model of SCA1.

Longitudinal Study and Characterization of Gait Impairment in a Mouse Model of SCA1.

Longitudinal Study and Characterization of Gait Impairment in a Mouse Model of SCA1.

Longitudinal Study and Characterization of Gait Impairment in a Mouse Model of SCA1.

Spinocerebellar ataxia 1 (SCA1) is a rare autosomal dominant neurodegenerative disease characterized by impaired gait, coordination, and balance. SCA1 results from an expanded CAG repeat in the Atxn1 gene, inducing protein aggregation and ultimately leading to the degeneration of cerebellar Purkinje cells. Clinical studies have shown that gait impairments, such as changes in stride length (SL), stride time, and stance phase, are seen in patients with cerebellar diseases. The SCA1154Q/2Q mouse model reflects the longitudinal progression of SCA1 in humans, displaying motor incoordination, muscle atrophy, and cerebellar Purkinje cell degradation. In this study, we aim to characterize the progression of gait impairments that arise in the SCA1154Q/2Q mouse model. The DigiGait™ system, which utilizes ventral plane imaging technology, was used to track gait parameters in SCA154Q/2Q mice, beginning at 7 weeks of age until 42 weeks. Our data revealed that SCA154Q/2Q males exhibited decreasing gait speeds beginning weeks 15-16 (p < 0.05), and SCA154Q/2Q females showed gait speed declining as early as 9 weeks (p < 0.05). A decrease in SL was also found; these emerged at different time points in SCA1154Q/2Q mice, ranging from weeks 14 to 32. Our data also suggest that SCA1 mice have decreased loading speed in hindlimbs with lower MAX dA/dt values at weeks 30 and 40 in both males and females (p < 0.01). Our characterization of this model establishes a framework for sex- and age-related differences, as well as a timeline of various gait performance metrics, which provides a foundation to test the efficacy of novel therapeutics.

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来源期刊
Cerebellum
Cerebellum 医学-神经科学
CiteScore
6.40
自引率
14.30%
发文量
150
审稿时长
4-8 weeks
期刊介绍: Official publication of the Society for Research on the Cerebellum devoted to genetics of cerebellar ataxias, role of cerebellum in motor control and cognitive function, and amid an ageing population, diseases associated with cerebellar dysfunction. The Cerebellum is a central source for the latest developments in fundamental neurosciences including molecular and cellular biology; behavioural neurosciences and neurochemistry; genetics; fundamental and clinical neurophysiology; neurology and neuropathology; cognition and neuroimaging. The Cerebellum benefits neuroscientists in molecular and cellular biology; neurophysiologists; researchers in neurotransmission; neurologists; radiologists; paediatricians; neuropsychologists; students of neurology and psychiatry and others.
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