帕金森病拮抗抑制缺陷和步态冻结的脊髓上部因素

IF 10.6 1区 医学 Q1 CLINICAL NEUROLOGY Brain Pub Date : 2024-10-29 DOI:10.1093/brain/awae223
Philipp Klocke, Moritz A Loeffler, Hannah Muessler, Maria-Sophie Breu, Alireza Gharabaghi, Daniel Weiss
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引用次数: 0

摘要

对帕金森病患者步态冻结的神经肌肉回路机制研究甚少。随着技术的进步,研究人员能够长期感知患者行走时基底节的局部场电位活动。为了研究丘脑下活动和脊髓上运动整合的回路过程,我们记录了患者行走和冻结时的局部场电位、拮抗腿部肌肉的表面肌电图和步态运动学。为了评估我们研究结果的特异性,我们将研究结果与内部产生的意志停止进行了对照。我们发现,在冻结前和冻结过程中,丘脑下核的振荡活动都存在特定的激活-失活异常。此外,我们还通过同步分析表明,脊髓丘脑下环路将脊髓运动神经元与有缺陷的定时和激活模式相联系。变为冻结时的主要神经肌肉相关性如下:(i)拮抗肌之间的互惠性紊乱;(ii)拮抗肌的共同收缩增加;(iii)腓肠肌的激活和时间模式缺陷;以及(iv)冻结前与腓肠肌的眼下肌-肌肉一致性增加。除了从病理生理学角度揭示导致步态冻结的棘上机制外,我们的研究结果还有可能为未来神经恢复疗法的概念化提供参考。
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Supraspinal contributions to defective antagonistic inhibition and freezing of gait in Parkinson's disease.

The neuromuscular circuit mechanisms of freezing of gait in Parkinson's disease have received little study. Technological progress enables researchers chronically to sense local field potential activity of the basal ganglia in patients while walking. To study subthalamic activity and the circuit processes of supraspinal contributions to spinal motor integration, we recorded local field potentials, surface EMG of antagonistic leg muscles and gait kinematics in patients while walking and freezing. To evaluate the specificity of our findings, we controlled our findings to internally generated volitional stops. We found specific activation-deactivation abnormalities of oscillatory activity of the subthalamic nucleus both before and during a freeze. Furthermore, we were able to show with synchronization analyses that subthalamo-spinal circuits entrain the spinal motor neurons to a defective timing and activation pattern. The main neuromuscular correlates when turning into freezing were as follows: (i) disturbed reciprocity between antagonistic muscles; (ii) increased co-contraction of the antagonists; (iii) defective activation and time pattern of the gastrocnemius muscle; and (iv) increased subthalamo-muscular coherence with the gastrocnemius muscles before the freeze. Beyond the pathophysiological insights into the supraspinal mechanisms contributing to freezing of gait, our findings have potential to inform the conceptualization of future neurorestorative therapies.

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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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