Cell Reports
Volume 11, Issue 8, 26 May 2015, Pages 1319-1330
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Article
Cellular Mechanisms Underlying Behavioral State-Dependent Bidirectional Modulation of Motor Cortex Output

https://doi.org/10.1016/j.celrep.2015.04.042Get rights and content
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open access

Highlights

  • During movement, reduced Vm variance lowers spike probability in L5B output neurons

  • Noradrenaline mediates a tonic depolarization in L5Benh neurons during movement

  • Noradrenaline selectively enhances signal-to-baseline ratio of L5Benh neurons

  • Blocking noradrenaline receptors in M1 reduces contralateral forepaw motor coordination

Summary

Neuronal activity in primary motor cortex (M1) correlates with behavioral state, but the cellular mechanisms underpinning behavioral state-dependent modulation of M1 output remain largely unresolved. Here, we performed in vivo patch-clamp recordings from layer 5B (L5B) pyramidal neurons in awake mice during quiet wakefulness and self-paced, voluntary movement. We show that L5B output neurons display bidirectional (i.e., enhanced or suppressed) firing rate changes during movement, mediated via two opposing subthreshold mechanisms: (1) a global decrease in membrane potential variability that reduced L5B firing rates (L5Bsuppressed neurons), and (2) a coincident noradrenaline-mediated increase in excitatory drive to a subpopulation of L5B neurons (L5Benhanced neurons) that elevated firing rates. Blocking noradrenergic receptors in forelimb M1 abolished the bidirectional modulation of M1 output during movement and selectively impaired contralateral forelimb motor coordination. Together, our results provide a mechanism for how noradrenergic neuromodulation and network-driven input changes bidirectionally modulate M1 output during motor behavior.

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This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).

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Co-first author