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Contralateral cortico-ponto-cerebellar pathways reconstruction in humans in vivo: implications for reciprocal cerebro-cerebellar structural connectivity in motor and non-motor areas

机译:人类体内对侧皮质-脑桥-小脑通路的重建:对运动和非运动区域中相互的小脑-小脑结构连接的影响

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摘要

Cerebellar involvement in cognition, as well as in sensorimotor control, is increasingly recognized and is thought to depend on connections with the cerebral cortex. Anatomical investigations in animals and post-mortem humans have established that cerebro-cerebellar connections are contralateral to each other and include the cerebello-thalamo-cortical (CTC) and cortico-ponto-cerebellar (CPC) pathways. CTC and CPC characterization in humans in vivo is still challenging. Here advanced tractography was combined with quantitative indices to compare CPC to CTC pathways in healthy subjects. Differently to previous studies, our findings reveal that cerebellar cognitive areas are reached by the largest proportion of the reconstructed CPC, supporting the hypothesis that a CTC-CPC loop provides a substrate for cerebro-cerebellar communication during cognitive processing. Amongst the cerebral areas identified using in vivo tractography, in addition to the cerebral motor cortex, major portions of CPC streamlines leave the prefrontal and temporal cortices. These findings are useful since provide MRI-based indications of possible subtending connectivity and, if confirmed, they are going to be a milestone for instructing computational models of brain function. These results, together with further multi-modal investigations, are warranted to provide important cues on how the cerebro-cerebellar loops operate and on how pathologies involving cerebro-cerebellar connectivity are generated.
机译:小脑对认知以及感觉运动控制的参与越来越多,并且被认为依赖于与大脑皮层的联系。在动物和验尸后的解剖学研究中发现,脑小脑连接彼此对侧,包括小脑-丘脑-皮质(CTC)和皮质-桥小脑(CPC)通路。人体中CTC和CPC的表征仍然具有挑战性。在这里,先进的束线术与定量指标相结合,以比较健康受试者的CPC和CTC途径。与以前的研究不同,我们的发现表明,重构的CPC可以最大程度地覆盖小脑的认知区域,从而支持了CTC-CPC回路为认知过程中小脑与小脑进行交流提供基础的假设。在使用体内束线照相术确定的大脑区域中,除大脑运动皮层外,CPC流线的大部分离开了额叶皮层和颞叶皮层。这些发现非常有用,因为它们提供了基于MRI的可能对接连通性的指示,并且,如果得到证实,它们将成为指导脑功能计算模型的里程碑。这些结果,再加上进一步的多模式研究,保证为脑小脑环的运作方式以及涉及脑小脑连接性的病理学如何产生提供重要线索。

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