Marino Francesca, Moreno-López Yunuen, Hollis Edmund
University of California, San Francisco, CA, USA.
Burke Neurological Institute, White Plains, NY, USA.
Neurosci Insights. 2024 Apr 27;19:26331055241249497. doi: 10.1177/26331055241249497. eCollection 2024.
Recently we demonstrated a critical role for temporal coding of corticospinal activity in a prehension movement requiring precise forelimb control. Learning of precision isometric pull drives large-scale remodeling of corticospinal motor networks. Optogenetic modulation of corticospinal activity and full transection of the corticospinal tract disrupted critical functions of the network in expert animals resulting in impaired modulation of precise movements. In contrast, we observed more widespread corticospinal co-activation and limited temporal coding on a similar, yet more simplistic prehension task, adaptive isometric pull. Disrupting corticospinal neuron activity had much more limited effects on adaptive isometric pull, which was found to be corticospinal independent by transection of the corticospinal tract. Here we discuss these results in context of known roles for corticospinal and corticostriatal neurons in motor control, as well as some of the questions our study raised.
最近,我们证明了在需要精确前肢控制的抓握运动中,皮质脊髓活动的时间编码起着关键作用。精确等长拉伸的学习驱动皮质脊髓运动网络的大规模重塑。皮质脊髓活动的光遗传学调制和皮质脊髓束的完全横断破坏了专家动物网络的关键功能,导致精确运动的调制受损。相比之下,在类似但更简单的抓握任务——适应性等长拉伸中,我们观察到更广泛的皮质脊髓共同激活和有限的时间编码。破坏皮质脊髓神经元活动对适应性等长拉伸的影响要有限得多,通过皮质脊髓束横断发现其与皮质脊髓无关。在此,我们结合皮质脊髓和皮质纹状体神经元在运动控制中的已知作用,以及我们的研究所提出的一些问题来讨论这些结果。