Champalimaud Neuroscience Program, Champalimaud Centre for the Unknown, Lisbon 1400-038, Portugal.
Champalimaud Neuroscience Program, Champalimaud Centre for the Unknown, Lisbon 1400-038, Portugal.
Neuron. 2019 Apr 3;102(1):217-231.e4. doi: 10.1016/j.neuron.2019.01.038. Epub 2019 Feb 19.
Stable and efficient locomotion requires the precise coordination of movement across the limbs and body. Learned changes in interlimb coordination can be induced by exposure to a split-belt treadmill that imposes different speeds under each side of the body. Here, we demonstrate locomotor learning on a split-belt treadmill in mice. Mouse locomotor adaptation is specific to measures of interlimb coordination, has spatial and temporal components that adapt at different rates, and is context specific. The many similarities between human and mouse locomotor adaptation suggest that this form of locomotor learning is highly conserved across vertebrates. Using a variety of approaches, we demonstrate that split-belt adaptation in mice specifically depends on the intermediate cerebellum but is insensitive to large lesions of the cerebral cortex. Finally, cell-type-specific chemogenetics combined with quantitative behavioral analysis reveals that spatial and temporal components of locomotor adaptation are dissociable on the circuit level. VIDEO ABSTRACT.
稳定和高效的运动需要精确协调肢体和身体的运动。通过暴露在分割带跑步机上,可以在身体的每一侧施加不同的速度,从而引起肢体间协调的学习变化。在这里,我们在分割带跑步机上展示了小鼠的运动学习。小鼠的运动适应特定于肢体间协调的度量,具有适应不同速率的空间和时间成分,并且是特定于情境的。人类和小鼠运动适应之间的许多相似之处表明,这种形式的运动学习在脊椎动物中高度保守。通过多种方法,我们证明了小鼠的分割带适应特定于中间小脑,但对大脑皮层的大损伤不敏感。最后,细胞类型特异性化学遗传学结合定量行为分析表明,运动适应的空间和时间成分在电路水平上可分离。视频摘要。