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由于小脑皮质变性导致的神经结构变化和感觉运动功能下降。

Neurostructural changes and declining sensorimotor function due to cerebellar cortical degeneration.

机构信息

Department of Neurology, Essen University Medical Center, University of Duisburg-Essen, Essen, Germany.

Erwin L Hahn Institute of Magnetic Resonance Imaging, University of Duisburg-Essen, Essen, Germany.

出版信息

J Neurophysiol. 2021 May 1;125(5):1735-1745. doi: 10.1152/jn.00266.2020. Epub 2021 Mar 24.

Abstract

Neurodegeneration of the cerebellum progresses over years and primarily affects cerebellar cortex. It leads to a progressive loss of control and coordination of gait, posture, speech, fine motor, and oculomotor function. Yet, little is known how the cerebro-cerebellar network compensates for the loss in cerebellar cortical neurons. To address this knowledge gap, we examined 30 people with cerebellar cortical degeneration and a group of 30 healthy controls. We assessed visuomotor performance during a forearm-pointing task to 10°, 25°, and 50° targets. In addition, using MRI imaging, we determined neurodegenerative-induced changes in gray matter volume (GMV) in the cerebro-cerebellar network and correlated them to markers of motor performance. The main results are as follows: first, the relative joint position error (RJPE) during pointing was significantly greater in the ataxia group for all targets confirming the expected motor control deficit. Second, in the ataxia group, GMV was significantly reduced in cerebellar cortex but increased in the deep cerebellar nuclei. Motor error (RJPE) correlated negatively with decreased cerebellar GMV but positively with increased GMV in supplementary motor area (SMA) and premotor cortex. GMV of the deep cerebellar nuclei did not correlate significantly with markers of motor performance. We discuss whether the GMV changes in the cerebellar output nuclei and the extracerebellar efferent targets in secondary motor cortex can be understood as a central compensatory response to the neurodegeneration of the cerebellar cortex. Neurodegeneration of the cerebellum progresses over years and primarily affects cerebellar cortex. It leads to a progressive loss of control and coordination of movement. We here show that the neurodegenerative process not only leads to cells loss in cerebellar cortex but also induces neurostructural changes in the form of increased gray matter in the efferent targets of the cerebellar cortex, namely, the cerebellar output nuclei, the SMA, and premotor cortex.

摘要

小脑的神经退行性变会在几年内进展,并主要影响小脑皮质。它导致运动的控制和协调逐渐丧失。然而,对于小脑皮质神经元丧失时,脑-小脑网络如何进行代偿,人们知之甚少。为了解决这一知识空白,我们检查了 30 名小脑皮质变性患者和 30 名健康对照组。我们评估了在前臂指向任务中,视觉运动表现指向 10°、25°和 50°目标的情况。此外,我们使用 MRI 成像,确定了脑-小脑网络中与神经退行性变相关的灰质体积(GMV)变化,并将其与运动表现标志物相关联。主要结果如下:首先,在所有目标中,小脑病变组的相对关节位置误差(RJPE)在指向时显著更大,这证实了预期的运动控制缺陷。其次,在小脑病变组中,小脑皮质 GMV 显著减少,但小脑深部核团 GMV 增加。运动误差(RJPE)与小脑 GMV 减少呈负相关,与辅助运动区(SMA)和运动前皮质 GMV 增加呈正相关。小脑深部核团的 GMV 与运动表现标志物无显著相关性。我们讨论了小脑皮质输出核团和次级运动皮质的小脑传出靶区的 GMV 变化是否可以被理解为对小脑皮质神经退行性变的中枢代偿反应。小脑的神经退行性变会在几年内进展,并主要影响小脑皮质。它导致运动的控制和协调逐渐丧失。我们在此表明,神经退行性过程不仅导致小脑皮质细胞丢失,而且还导致小脑皮质传出靶区的神经结构变化,即小脑皮质输出核团、辅助运动区和运动前皮质的灰质增加。

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