4.8 Article

Transformation of Cortex-wide Emergent Properties during Motor Learning

期刊

NEURON
卷 94, 期 4, 页码 880-+

出版社

CELL PRESS
DOI: 10.1016/j.neuron.2017.04.015

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资金

  1. NIH [R01 DC014690-01, R21 DC012641, R01 NS091010A, U01 NS094342, R01 EY025349]
  2. Human Frontier Science Program
  3. Japan Science and Technology Agency (PRESTO)
  4. New York Stem Cell Foundation
  5. David & Lucile Packard Foundation
  6. Pew Charitable Trusts
  7. McKnight Foundation
  8. NARSAD Young Investigator Grant from Brain & Behavior Research Foundation
  9. Nanyang Assistant Professorship from Lee Kong Chian School of Medicine at Nanyang Technological University
  10. Office of Naval Research Young Investigator Award
  11. UCSD Frontiers of Innovation Scholars Program

向作者/读者索取更多资源

Learning involves a transformation of brain-wide operation dynamics. However, our understanding of learning-related changes in macroscopic dynamics is limited. Here, we monitored cortex-wide activity of the mouse brain using wide-field calcium imaging while the mouse learned a motor task over weeks. Over learning, the sequential activity across cortical modules became temporally more compressed, and its trial-by-trial variability decreased. Moreover, a new flow of activity emerged during learning, originating from premotor cortex (M2), and M2 became predictive of the activity of many other modules. Inactivation experiments showed that M2 is critical for the post-learning dynamics in the cortex-wide activity. Furthermore, two-photon calcium imaging revealed that M2 ensemble activity also showed earlier activity onset and reduced variability with learning, which was accompanied by changes in the activity-movement relationship. These results reveal newly emergent properties of macroscopic cortical dynamics during motor learning and highlight the importance of M2 in controlling learned movements.

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