Subsecond Analysis of Locomotor Activity in Parkinsonian Mice.

IF 2.7 3区 医学 Q3 NEUROSCIENCES
eNeuro Pub Date : 2025-08-05 Print Date: 2025-08-01 DOI:10.1523/ENEURO.0014-25.2025
Daniil Berezhnoi, Hiba Douja Chehade, Gabriel Simms, Liqiang Chen, Kishore Kumar S Narasimhan, Shashank M Dravid, Hong-Yuan Chu
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引用次数: 0

Abstract

The degeneration of midbrain dopamine (DA) neurons disrupts the neural control of natural behavior, such as walking, posture, and gait in Parkinson's disease. While some aspects of motor symptoms can be managed by DA replacement therapies, others respond poorly. Recent advancements in machine learning-based technologies offer opportunities to better understand the organizing principles of behavior modules at fine timescales and its dependence on dopaminergic modulation. In the present study, we applied the motion sequencing (MoSeq) platform to study the spontaneous locomotor activities of neurotoxin and genetic mouse models of parkinsonism as the midbrain DA neurons progressively degenerate. We also evaluated the treatment efficacy of levodopa (l-DOPA) on behavioral modules at fine timescales. We revealed robust changes in the kinematics and usage of the behavioral modules that encode spontaneous locomotor activity. Further analysis demonstrates that fast behavioral modules with higher velocities were more vulnerable to loss of DA and preferentially affected at early stages of Parkinsonism. Last, l-DOPA effectively improved the velocity, but not the usage and transition probability, of behavioral modules in parkinsonian animals. In conclusion, the hypokinetic phenotypes in parkinsonism involve the decreased velocities of behavioral modules and their disrupted temporal organization during movement. Moreover, we showed that the therapeutic effect of l-DOPA is mainly mediated by its effect on the velocities of behavior modules at fine timescales. This work documents robust changes in the velocity, usage, and temporal organization of behavioral modules and their responsiveness to dopaminergic treatment under the parkinsonian state.

Abstract Image

Abstract Image

Abstract Image

帕金森小鼠运动活动的亚秒分析。
中脑多巴胺(DA)神经元的退化破坏了对帕金森病中行走、姿势和步态等自然行为的神经控制。虽然多巴胺替代疗法可以控制运动症状的某些方面,但其他方面的反应很差。基于机器学习技术的最新进展为更好地理解精细时间尺度下行为模块的组织原理及其对多巴胺能调节的依赖提供了机会。在本研究中,我们应用运动测序(MoSeq)平台研究帕金森病神经毒素和遗传小鼠模型在中脑DA神经元进行性退化时的自发运动活动。我们还在精细时间尺度上评估了左旋多巴对行为模块的治疗效果。我们揭示了编码自发运动活动的行为模块在运动学和使用方面的强大变化。进一步分析表明,具有较高速度的快速行为模块更容易失去DA,并且在帕金森病的早期阶段优先受到影响。最后,左旋多巴能有效提高帕金森动物行为模块的速度,但不能提高其使用和转移概率。总之,帕金森病的低运动表型包括运动过程中行为模块的速度下降及其时间组织的破坏。此外,我们还发现左旋多巴的治疗效果主要是通过其在精细时间尺度上对行为模块速度的影响来调节的。这项工作记录了在帕金森状态下,行为模块的速度、使用和时间组织的显著变化及其对多巴胺能治疗的反应。帕金森病是第二大无法治愈的神经退行性疾病。检测细微的帕金森症状是至关重要的疾病改造应用早期干预。目前的工作探索了使用基于机器学习的方法来早期检测帕金森动物的细微行为变化和评估多巴胺能药物的治疗效果的可能性。
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
eNeuro
eNeuro Neuroscience-General Neuroscience
CiteScore
5.00
自引率
2.90%
发文量
486
审稿时长
16 weeks
期刊介绍: An open-access journal from the Society for Neuroscience, eNeuro publishes high-quality, broad-based, peer-reviewed research focused solely on the field of neuroscience. eNeuro embodies an emerging scientific vision that offers a new experience for authors and readers, all in support of the Society’s mission to advance understanding of the brain and nervous system.
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