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大脑两半球间束状纤维髓鞘形成与动作再编程过程中皮质间相互作用的宏观关联。

A macroscopic link between interhemispheric tract myelination and cortico-cortical interactions during action reprogramming.

机构信息

Wellcome Centre for Integrative Neuroimaging, FMRIB, Nuffield Department of Clinical Neurosciences, University of Oxford, Oxford, UK.

Wellcome Centre for Integrative Neuroimaging, Department of Experimental Psychology, University of Oxford, Oxford, UK.

出版信息

Nat Commun. 2022 Jul 22;13(1):4253. doi: 10.1038/s41467-022-31687-5.

Abstract

Myelination has been increasingly implicated in the function and dysfunction of the adult human brain. Although it is known that axon myelination shapes axon physiology in animal models, it is unclear whether a similar principle applies in the living human brain, and at the level of whole axon bundles in white matter tracts. Here, we hypothesised that in humans, cortico-cortical interactions between two brain areas may be shaped by the amount of myelin in the white matter tract connecting them. As a test bed for this hypothesis, we use a well-defined interhemispheric premotor-to-motor circuit. We combined TMS-derived physiological measures of cortico-cortical interactions during action reprogramming with multimodal myelin markers (MT, R1, R2* and FA), in a large cohort of healthy subjects. We found that physiological metrics of premotor-to-motor interaction are broadly associated with multiple myelin markers, suggesting interindividual differences in tract myelination may play a role in motor network physiology. Moreover, we also demonstrate that myelination metrics link indirectly to action switching by influencing local primary motor cortex dynamics. These findings suggest that myelination levels in white matter tracts may influence millisecond-level cortico-cortical interactions during tasks. They also unveil a link between the physiology of the motor network and the myelination of tracts connecting its components, and provide a putative mechanism mediating the relationship between brain myelination and human behaviour.

摘要

髓鞘形成在成人大脑的功能和功能障碍中越来越受到关注。虽然已知轴突髓鞘形成在动物模型中塑造了轴突生理学,但尚不清楚这一原则是否适用于活体人类大脑,以及在白质束的整个轴突束水平上是否适用。在这里,我们假设在人类中,两个大脑区域之间的皮质-皮质相互作用可能受到连接它们的白质束中髓鞘的数量的影响。作为该假设的测试平台,我们使用了一个定义明确的大脑半球间运动前区到运动区的回路。我们在一大组健康受试者中,结合了 TMS 衍生的动作再编程过程中的皮质-皮质相互作用的生理测量,以及多种髓鞘标记物(MT、R1、R2*和 FA)。我们发现,运动前区到运动区相互作用的生理指标与多种髓鞘标记物广泛相关,这表明束内髓鞘的个体差异可能在运动网络生理学中起作用。此外,我们还证明髓鞘化指标通过影响局部初级运动皮层的动力学,间接地与动作转换联系起来。这些发现表明,白质束中的髓鞘化水平可能会影响任务期间毫秒级的皮质-皮质相互作用。它们还揭示了运动网络生理学与连接其组成部分的束髓鞘化之间的联系,并提供了一种可能的机制来介导大脑髓鞘化与人类行为之间的关系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/474b/9307658/622323c1cabc/41467_2022_31687_Fig1_HTML.jpg

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