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Neurovascular Coupling and Decoupling in the Cortex during Voluntary Locomotion

机译:自愿运动过程中皮层中的神经血管偶联和解偶联

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摘要

Hemodynamic signals are widely used to infer neural activity in the brain. We tested the hypothesis that hemodynamic signals faithfully report neural activity during voluntary behaviors by measuring cerebral blood volume (CBV) and neural activity in the somatosensory cortex and frontal cortex of head-fixed mice during locomotion. Locomotion induced a large and robust increase in firing rate and gamma-band (40–100 Hz) power in the local field potential in the limb representations in somatosensory cortex, and was accompanied by increases in CBV, demonstrating that hemodynamic signals are coupled with neural activity in this region. However, in the frontal cortex, CBV did not change during locomotion, but firing rate and gamma-band power both increased, indicating a decoupling of neural activity from the hemodynamic signal. These results show that hemodynamic signals are not faithful indicators of the mean neural activity in the frontal cortex during locomotion; thus, the results from fMRI and other hemodynamic imaging methodologies for studying neural processes must be interpreted with caution.
机译:血液动力学信号被广泛用于推断大脑的神经活动。我们测试了以下假设:通过测量运动过程中头部固定小鼠的体感皮层和额叶皮层的脑血容量(CBV)和神经活动,血液动力学信号如实报告自愿行为期间的神经活动。运动引起体感皮层肢体代表的局部场电位的发射速率和伽马带(40–100 Hz)功率大幅增强,并伴随CBV的增加,表明血液动力学信号与神经系统耦合该地区的活动。然而,在额叶皮层中,CBV在运动过程中没有变化,但发动速率和伽马带功率均增加,表明神经活动与血流动力学信号脱钩。这些结果表明,血流动力学信号并不是运动过程中额叶皮层平均神经活动的忠实指示剂。因此,fMRI和其他血液动力学成像方法用于研究神经过程的结果必须谨慎解释。

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