Deconstruction of Corticospinal Circuits for Goal-Directed Motor Skills
Author(s) -
Xuhua Wang,
Yuanyuan Liu,
Xinjian Li,
Zicong Zhang,
Hengfu Yang,
Yu Zhang,
Philip R. Williams,
Noaf S.A. Alwahab,
Kush Kapur,
Bin Yu,
Yiming Zhang,
Mengying Chen,
Haixia Ding,
Charles R. Gerfen,
Kuan Hong Wang,
Zhigang He
Publication year - 2017
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2017.08.014
Subject(s) - forelimb , neuroscience , biology , task (project management) , spinal cord , motor program , motor skill , motor control , computer science , management , economics
Corticospinal neurons (CSNs) represent the direct cortical outputs to the spinal cord and play important roles in motor control across different species. However, their organizational principle remains unclear. By using a retrograde labeling system, we defined the requirement of CSNs in the execution of a skilled forelimb food-pellet retrieval task in mice. In vivo imaging of CSN activity during performance revealed the sequential activation of topographically ordered functional ensembles with moderate local mixing. Region-specific manipulations indicate that CSNs from caudal or rostral forelimb area control reaching or grasping, respectively, and both are required in the transitional pronation step. These region-specific CSNs terminate in different spinal levels and locations, therefore preferentially connecting with the premotor neurons of muscles engaged in different steps of the task. Together, our findings suggest that spatially defined groups of CSNs encode different movement modules, providing a logic for parallel-ordered corticospinal circuits to orchestrate multistep motor skills.
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