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利用7T功能磁共振成像研究人类小脑的本体感觉参与情况。

Proprioceptive engagement of the human cerebellum studied with 7T-fMRI.

作者信息

Brouwer Emma J P, Priovoulos Nikos, Hashimoto Julie, van der Zwaag Wietske

机构信息

Spinoza Centre for Neuroimaging, Amsterdam, The Netherlands.

Computational Cognitive Neuroscience & Neuroimaging, Netherlands Institute for Neuroscience, Royal Netherlands Academy for Arts and Sciences (KNAW), Amsterdam, the Netherlands.

出版信息

Imaging Neurosci (Camb). 2024 Aug 14;2. doi: 10.1162/imag_a_00268. eCollection 2024.

Abstract

Proprioception, the process of perceiving our bodies in space, is a key aspect of self-perception. The cerebellar cortex is believed to play a critical role in proprioception. However, our understanding of the functional involvement of the cerebellum in proprioception remains limited due to the intricate, thin, and highly folded structure of the human cerebellar cortex, which is more challenging to resolve using in-vivo MRI compared to the cerebral cortex. In this study, we employed high-resolution, B-shimmed, functional magnetic resonance imaging (fMRI) at 7T to investigate proprioceptive involvement of the cerebellum in humans. We used two tasks designed to differentially require proprioceptive information processing: midline-contralateral-finger-touch and simultaneous-unilateral-finger-flexing. We assessed responses to these tasks across three gradient directions inspired by the mesoscale cerebellar functional organisation, akin to laminar and columnar fMRI approaches in the cerebral cortex. Movements requiring higher proprioceptive engagement, in the midline-contralateral-finger-touch task, elicited stronger activations in both anterior and posterior lobe motor areas of the cerebellum (lobules V and VIIIa/b). We identified distinct activation patterns for the two tasks within these cerebellar motor regions, which may reflect differing functional roles of these motor areas. Midline-contralateral-finger-touch responses were found more medial than simultaneous-unilateral-finger-flexing responses in lobule V and deeper into the cerebellar fissures in lobule VIII. These findings contribute to a deeper understanding of cerebellar functional organisation, the cerebellar involvement in proprioception and may offer insights into addressing proprioceptive deficits associated with neurological conditions.

摘要

本体感觉是指我们在空间中感知自身身体的过程,是自我感知的一个关键方面。小脑皮质被认为在本体感觉中起着至关重要的作用。然而,由于人类小脑皮质复杂、薄且高度折叠的结构,与大脑皮质相比,使用活体磁共振成像(MRI)来解析其结构更具挑战性,因此我们对小脑在本体感觉中的功能参与的理解仍然有限。在本研究中,我们采用7T高分辨率、B匀场功能磁共振成像(fMRI)来研究人类小脑中本体感觉的参与情况。我们使用了两项旨在不同程度地需要本体感觉信息处理的任务:中线对侧手指触摸和同时单侧手指弯曲。我们根据中尺度小脑功能组织,在三个梯度方向上评估了对这些任务的反应,这类似于大脑皮质中的层状和柱状fMRI方法。在中线对侧手指触摸任务中,需要更高本体感觉参与度的运动在小脑的前叶和后叶运动区域(小叶V和VIIIa/b)引发了更强的激活。我们在这些小脑运动区域内确定了两项任务的不同激活模式,这可能反映了这些运动区域不同的功能作用。在小叶V中,发现中线对侧手指触摸反应比同时单侧手指弯曲反应更靠内侧,在小叶VIII中则更深地进入小脑裂。这些发现有助于更深入地理解小脑功能组织、小脑在本体感觉中的参与情况,并可能为解决与神经系统疾病相关的本体感觉缺陷提供见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d721/12290657/93eff52e1ed6/imag_a_00268_fig1.jpg

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