New York University Neuroscience Institute, Department of Neuroscience and Physiology, Smilow Research Center, New York University School of Medicine, New York, New York, USA.
Nat Neurosci. 2013 Nov;16(11):1662-70. doi: 10.1038/nn.3544. Epub 2013 Oct 6.
The influence of motor activity on sensory processing is crucial for perception and motor execution. However, the underlying circuits are not known. To unravel the circuit by which activity in the primary vibrissal motor cortex (vM1) modulates sensory processing in the primary somatosensory barrel cortex (S1), we used optogenetics to examine the long-range inputs from vM1 to the various neuronal elements in S1. We found that S1-projecting vM1 pyramidal neurons strongly recruited vasointestinal peptide (VIP)-expressing GABAergic interneurons, a subset of serotonin receptor-expressing interneurons. These VIP interneurons preferentially inhibited somatostatin-expressing interneurons, neurons that target the distal dendrites of pyramidal cells. Consistent with this vM1-mediated disinhibitory circuit, the activity of VIP interneurons in vivo increased and that of somatostatin interneurons decreased during whisking. These changes in firing rates during whisking depended on vM1 activity. Our results suggest previously unknown circuitry by which inputs from motor cortex influence sensory processing in sensory cortex.
运动活动对感觉处理的影响对于感知和运动执行至关重要。然而,其潜在的回路尚不清楚。为了解开初级触须运动皮层(vM1)活动调节初级体感皮层(S1)感觉处理的回路,我们使用光遗传学来检查 vM1 到 S1 中各种神经元元件的长程输入。我们发现,投射到 S1 的 vM1 锥体神经元强烈募集血管活性肠肽(VIP)表达 GABA 能中间神经元,这是一组表达 5-羟色胺受体的中间神经元。这些 VIP 中间神经元优先抑制表达生长抑素的中间神经元,这些神经元靶向锥体细胞的远端树突。与 vM1 介导的去抑制回路一致,体内 VIP 中间神经元的活动在刷动时增加,而生长抑素中间神经元的活动则减少。这种在刷动过程中放电率的变化取决于 vM1 的活动。我们的结果表明,来自运动皮层的输入影响感觉皮层感觉处理的以前未知的回路。