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Effective Connectivity Maps in the Swine Somatosensory Cortex Estimated from Electrocorticography and Validated with Intracortical Local Field Potential Measurements

机译:猪体感皮层中的有效连通性图通过电皮层照相术估算并通过皮层内局部场电势测量验证

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摘要

Macroscopic techniques are increasingly being used to estimate functional connectivity in the brain, which provides valuable information about brain networks. In any such endeavors it is important to understand capabilities and limitations of each technique through direct validation, which is often lacking. This study evaluated a multiple dipole source analysis technique based on electrocorticography (ECOG) data in estimating effective connectivity maps and validated the technique with intracortical local field potential (LFP) recordings. The study was carried out in an animal model (swine) with a large brain to avoid complications caused by spreading of the volume current. The evaluation was carried out for the cortical projections from the trigeminal nerve and corticocortical connectivity from the first rostrum area (R1) in the primary somatosensory cortex. Stimulation of the snout and layer IV of the R1 did not activate all projection areas in each animal, although whenever an area was activated in a given animal, its location was consistent with the intracortical LFP. The two types of connectivity maps based on ECOG analysis were consistent with each other and also with those estimated from the intracortical LFP, although there were small discrepancies. The discrepancies in mean latency based on ECOG and LFP were all very small and nonsignificant: snout stimulation, −1.1–2.0 msec (contralateral hemisphere) and 3.9–8.5 msec (ipsilateral hemisphere); R1 stimulation, −1.4–2.2 msec for the ipsilateral and 0.6–1.4 msec for the contralateral hemisphere. Dipole source analysis based on ECOG appears to be quite useful for estimating effective connectivity maps in the brain.
机译:宏观技术正越来越多地用于估计大脑中的功能连通性,从而提供有关大脑网络的有价值的信息。在任何此类努力中,重要的是通过直接验证来了解每种技术的功能和局限性,而这通常是缺乏的。这项研究评估了基于皮层电图(ECOG)数据的多偶极子源分析技术,以估计有效的连通性图,并用皮层内局部场电势(LFP)记录验证了该技术。该研究是在具有大脑的动物模型(猪)中进行的,以避免由于体积电流的扩散而引起的并发症。对来自三叉神经的皮层投影和来自初级体感皮层的第一个讲台区域(R1)的皮层皮质连接进行了评估。 R1的口鼻部和IV层的刺激并未激活每只动物的所有投射区域,尽管每当在给定动物中激活某个区域时,其位置与皮层内LFP一致。尽管存在小的差异,但基于ECOG分析的两种类型的连通图彼此一致,也与皮质内LFP估计的一致。基于ECOG和LFP的平均潜伏期差异很小且无统计学意义:鼻子刺激,−1.1–2.0µmsec(对侧半球)和3.9–8.5µmsec(同侧半球); R1刺激,同侧为-1.4–2.2µmsec,对侧半球为0.6–1.4µmsec。基于ECOG的偶极子源分析对于估算大脑中有效的连接图似乎非常有用。

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