首页> 美国卫生研究院文献>Brain Connectivity >Effects of Severing the Corpus Callosum on Electrical and BOLD Functional Connectivity and Spontaneous Dynamic Activity in the Rat Brain
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Effects of Severing the Corpus Callosum on Electrical and BOLD Functional Connectivity and Spontaneous Dynamic Activity in the Rat Brain

机译:切断the体对大鼠脑电和BOLD功能连接性及自发动态活动的影响

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摘要

Functional networks, defined by synchronous spontaneous blood oxygenation level-dependent (BOLD) oscillations between spatially distinct brain regions, appear to be essential to brain function and have been implicated in disease states, cognitive capacity, and sensing and motor processes. While the topographical extent and behavioral function of these networks has been extensively investigated, the neural functions that create and maintain these synchronizations remain mysterious. In this work callosotomized rodents are examined, providing a unique platform for evaluating the influence of structural connectivity via the corpus callosum on bilateral resting state functional connectivity. Two experimental groups were assessed, a full callosotomy group, in which the corpus callosum was completely sectioned, and a sham callosotomy group, in which the gray matter was sectioned but the corpus callosum remained intact. Results indicated a significant reduction in interhemispheric connectivity in the full callosotomy group as compared with the sham group in primary somatosensory cortex and caudate-putamen regions. Similarly, electrophysiology revealed significantly reduced bilateral correlation in band limited power. Bilateral gamma Band-limited power connectivity was most strongly affected by the full callosotomy procedure. This work represents a robust finding indicating the corpus callosum's influence on maintaining integrity in bilateral functional networks; further, functional magnetic resonance imaging (fMRI) and electrophysiological connectivity share a similar decrease in connectivity as a result of the callosotomy, suggesting that fMRI-measured functional connectivity reflects underlying changes in large-scale coordinated electrical activity. Finally, spatiotemporal dynamic patterns were evaluated in both groups; the full callosotomy rodents displayed a striking loss of bilaterally synchronous propagating waves of cortical activity.
机译:功能性网络由空间上不同的大脑区域之间的同步自发性血液氧合水平依赖性(BOLD)振荡定义,似乎对大脑功能至关重要,并且与疾病状态,认知能力以及感知和运动过程有关。虽然已经对这些网络的地形范围和行为功能进行了广泛研究,但创建和维持这些同步的神经功能仍然是个谜。在这项工作中,对call骨切除的啮齿动物进行了检查,为评估通过connectivity体的结构连通性对双边静止状态功能连通性的影响提供了独特的平台。评估了两个实验组,一个完整的call切开术组,其中which体被完全切开,一个假的os切开术组,其中灰质被切开,但call体保持完整。结果表明,与假手术组相比,在完整的躯体切开术组中,半球间的连接性显着降低,主要是在体感皮层和尾状-丘脑区。类似地,电生理学揭示了在频带受限功率中双边相关性显着降低。双边伽马有限的功率连接受到完整的ot切手术的影响最大。这项工作是一项有力的发现,表明call体对维持双边功能网络的完整性有影响。此外,由于进行了骨切开术,功能磁共振成像(fMRI)和电生理连通性的连通性也有相似的下降,这表明fMRI测量的功能连通性反映了大规模协调电活动的潜在变化。最后,对两组的时空动态模式进行了评估。完整的切开牙的啮齿动物表现出惊人的双侧同步传播的皮层活动波损失。

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