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Regionally Specific Regulation of Sensorimotor Network Connectivity Following Tactile Improvement

机译:触觉改善后的感觉运动网络连接的区域特定法规

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摘要

Correlations between inherent, task-free low-frequency fluctuations in the blood oxygenation level-dependent (BOLD) signals of the brain provide a potent tool to delineate its functional architecture in terms of intrinsic functional connectivity (iFC). Still, it remains unclear how iFC is modulated during learning. We employed whole-brain resting-state magnetic resonance imaging prior to and after training-independent repetitive sensory stimulation (rSS), which is known to induce somatosensory cortical reorganization. We investigated which areas in the sensorimotor network are susceptible to neural plasticity (i.e., where changes in functional connectivity occurred) and where iFC might be indicative of enhanced tactile performance. We hypothesized iFC to increase in those brain regions primarily receiving the afferent tactile input. Strengthened intrinsic connectivity within the sensorimotor network after rSS was found not only in the postcentral gyrus contralateral to the stimulated hand, but also in associative brain regions, where iFC correlated positively with tactile performance or learning. We also observed that rSS led to attenuation of the network at higher cortical levels, which possibly promotes facilitation of tactile discrimination. We found that resting-state BOLD fluctuations are linked to behavioral performance and sensory learning, indicating that network fluctuations at rest are predictive of behavioral changes and neuroplasticity.
机译:大脑的血液氧合水平依赖性(BOLD)信号中固有的,无需执行任务的低频波动之间的相关性为根据固有功能连接性(iFC)描绘其功能体系结构提供了有效的工具。但是,仍不清楚在学习过程中如何调制iFC。我们在训练独立的重复感觉刺激(rSS)之前和之后采用了全脑静止状态磁共振成像,众所周知,rSS会引起体感皮质重组。我们调查了感觉运动网络中哪些区域易受神经可塑性影响(即功能连接发生变化的地方)以及iFC可能指示触觉性能增强的地方。我们假设iFC在主要接收传入触觉输入的那些大脑区域中增加。 rSS后不仅在受刺激的手对侧的中央后回中,而且在iFC与触觉表现或学习呈正相关的联想大脑区域中,都发现感觉运动网络内部的内在连通性增强。我们还观察到,rSS导致较高皮层水平的网络衰减,这可能会促进触觉辨别。我们发现,静止状态的BOLD波动与行为表现和感官学习有关,表明静止时的网络波动可预测行为变化和神经可塑性。

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