Neuroscience Research Center, Jane and John Justin Institute for Mind Health, Cook Children's Health Care System, 1500 Cooper St., Fort Worth, TX 76104, United States.
Department of Bioengineering, University of Texas at Arlington, 500 UTA Blvd., Arlington, TX 76010, United States.
Cereb Cortex. 2024 Jun 4;34(6). doi: 10.1093/cercor/bhae230.
Sense of touch is essential for our interactions with external objects and fine control of hand actions. Despite extensive research on human somatosensory processing, it is still elusive how involved brain regions interact as a dynamic network in processing tactile information. Few studies probed temporal dynamics of somatosensory information flow and reported inconsistent results. Here, we examined cortical somatosensory processing through magnetic source imaging and cortico-cortical coupling dynamics. We recorded magnetoencephalography signals from typically developing children during unilateral pneumatic stimulation. Neural activities underlying somatosensory evoked fields were mapped with dynamic statistical parametric mapping, assessed with spatiotemporal activation analysis, and modeled by Granger causality. Unilateral pneumatic stimulation evoked prominent and consistent activations in the contralateral primary and secondary somatosensory areas but weaker and less consistent activations in the ipsilateral primary and secondary somatosensory areas. Activations in the contralateral primary motor cortex and supramarginal gyrus were also consistently observed. Spatiotemporal activation and Granger causality analysis revealed initial serial information flow from contralateral primary to supramarginal gyrus, contralateral primary motor cortex, and contralateral secondary and later dynamic and parallel information flows between the consistently activated contralateral cortical areas. Our study reveals the spatiotemporal dynamics of cortical somatosensory processing in the normal developing brain.
触觉对于我们与外部物体的相互作用以及手部精细动作的控制至关重要。尽管人类体感处理方面的研究已经很广泛,但涉及大脑区域如何作为一个动态网络相互作用来处理触觉信息仍然难以捉摸。很少有研究探究体感信息流动的时间动态,并且报告的结果也不一致。在这里,我们通过磁源成像和皮质间耦合动力学来检查皮质体感处理。我们在单侧气动刺激期间记录了正常发育儿童的脑磁图信号。使用动态统计参数映射绘制体感诱发电场的神经活动,使用时空激活分析进行评估,并通过格兰杰因果关系进行建模。单侧气动刺激在对侧初级和次级体感区域引起了明显且一致的激活,但在同侧初级和次级体感区域的激活较弱且不太一致。对侧初级运动皮层和缘上回也观察到一致的激活。时空激活和格兰杰因果分析揭示了从对侧初级到缘上回、对侧初级运动皮层以及对侧皮质区域之间动态和并行信息流的初始串行信息流动。我们的研究揭示了正常发育大脑中皮质体感处理的时空动态。