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bioRxiv · 10.1101/157032

Discrete and coordinated encoding of punishment contingent on rewarded actions by prefrontal cortex and VTA

Abstract

Actions motivated by a rewarding outcome are often associated with a risk of punishment. Little is known about the neural representation of punishment that is contingent on reward-guided behavior. We modeled this circumstance by using a task where actions were consistently rewarded but probabilistically punished. Spike activity and local field potentials were recorded during this task simultaneously from VTA and mPFC, two reciprocally connected regions implicated in both reward-seeking and aversive behavioral states. At the single unit level, we found that ensembles of VTA and mPFC neurons encode the contingency between action and punishment. At the network level, we found that coherent theta oscillations synchronize the VTA and mPFC in a bottom-up direction, effectively phase-modulating the neuronal spike activity in the two regions during punishment-free actions. This synchrony declined as a function of punishment contingency, suggesting that during reward-seeking actions, risk of punishment diminishes VTA-driven neural synchrony between the two regions.

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BibTeXRIS

Park, J., Moghaddam, B.. 2017-06-28. Discrete and coordinated encoding of punishment contingent on rewarded actions by prefrontal cortex and VTA. https://doi.org/10.1101/157032

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