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手指神经阻滞后手皮质手区的可塑变化。

Malleability of the cortical hand map following a finger nerve block.

机构信息

Institute of Cognitive Neuroscience, University College London, London, UK.

Wellcome Centre for Integrative Neuroimaging, University of Oxford, Oxford, UK.

出版信息

Sci Adv. 2022 Apr 22;8(16):eabk2393. doi: 10.1126/sciadv.abk2393.

Abstract

Electrophysiological studies in monkeys show that finger amputation triggers local remapping within the deprived primary somatosensory cortex (S1). Human neuroimaging research, however, shows persistent S1 representation of the missing hand's fingers, even decades after amputation. Here, we explore whether this apparent contradiction stems from underestimating the distributed peripheral and central representation of fingers in the hand map. Using pharmacological single-finger nerve block and 7-tesla neuroimaging, we first replicated previous accounts (electrophysiological and other) of local S1 remapping. Local blocking also triggered activity changes to nonblocked fingers across the entire hand area. Using methods exploiting interfinger representational overlap, however, we also show that the blocked finger representation remained persistent despite input loss. Computational modeling suggests that both local stability and global reorganization are driven by distributed processing underlying the topographic map, combined with homeostatic mechanisms. Our findings reveal complex interfinger representational features that play a key role in brain (re)organization, beyond (re)mapping.

摘要

猴子的电生理学研究表明,手指截肢会触发剥夺初级体感皮层(S1)内的局部重新映射。然而,人类神经影像学研究表明,即使在截肢几十年后,缺失的手的手指仍然在 S1 中得到持续的表示。在这里,我们探讨这种明显的矛盾是否源于对手部地图中手指的分布式外周和中枢表示的低估。使用药理学单指神经阻滞和 7 特斯拉神经影像学,我们首先复制了先前关于 S1 局部重映射的报道(电生理学和其他)。局部阻断也会引发整个手部区域内非阻断手指的活动变化。然而,使用利用指间表示重叠的方法,我们还表明,尽管输入丢失,被阻断手指的表示仍然保持不变。计算模型表明,局部稳定性和全局重组都是由拓扑图下的分布式处理以及稳态机制共同驱动的。我们的研究结果揭示了复杂的指间表示特征,这些特征在大脑(重新)组织中起着关键作用,而不仅仅是(重新)映射。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87df/9032959/cfd5fdb74dd6/sciadv.abk2393-f1.jpg

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