Burke Neurological Institute, White Plains, NY, USA.
University of California, San Francisco, CA, USA.
Nat Commun. 2023 May 11;14(1):2708. doi: 10.1038/s41467-023-38418-4.
Motor skill learning relies on the plasticity of the primary motor cortex as task acquisition drives cortical motor network remodeling. Large-scale cortical remodeling of evoked motor outputs occurs during the learning of corticospinal-dependent prehension behavior, but not simple, non-dexterous tasks. Here we determine the response of corticospinal neurons to two distinct motor training paradigms and assess the role of corticospinal neurons in the execution of a task requiring precise modulation of forelimb movement and one that does not. In vivo calcium imaging in mice revealed temporal coding of corticospinal activity coincident with the development of precise prehension movements, but not more simplistic movement patterns. Transection of the corticospinal tract and optogenetic regulation of corticospinal activity show the necessity for patterned corticospinal network activity in the execution of precise movements but not simplistic ones. Our findings reveal a critical role for corticospinal network modulation in the learning and execution of precise motor movements.
运动技能学习依赖于初级运动皮层的可塑性,因为任务获取驱动皮质运动网络重塑。在学习依赖皮质脊髓的抓握行为时,会发生运动输出的大规模皮质重塑,但在执行简单、非灵巧的任务时则不会。在这里,我们确定了皮质脊髓神经元对两种不同运动训练范式的反应,并评估了皮质脊髓神经元在执行需要精确调制前肢运动的任务和不需要的任务中的作用。在小鼠体内钙成像显示,皮质脊髓活动的时间编码与精确抓握运动的发展一致,但与更简单的运动模式不一致。皮质脊髓束横断和皮质脊髓活动的光遗传学调节表明,在执行精确运动而非简单运动时,需要有模式化的皮质脊髓网络活动。我们的发现揭示了皮质脊髓网络调制在精确运动学习和执行中的关键作用。