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Pesaran, B.

Publications and source records attributed to Pesaran, B..

2 recordsLinked to original sources

Coherent neuronal dynamics driven by optogenetic stimulation in the primate brain

Coherent neuronal dynamics play an important role in complex cognitive functions. Optogenetic stimulation promises to provide new ways to test the functional significance of coherent neural activity. However, the mechanisms by which optogenetic stimulation drives coherent dynamics remain unclear, especially in the non-human primate brain. Here, we perform computational modeling and experiments to study the mechanisms of optogenetic-stimulation-driven coherent neuronal dynamics in non-human primates. Neural responses arise from stimulation-evoked temporal windows of excitatory and inhibitory activity. The temporal properties of the E-I windows generate coherent neuronal dynamics at varied frequencies and depend on optogenetic stimulation parameters. Experimental results agree with parameter dependent predictions from the computational models. These results demonstrate that responses to optogenetic stimulation are governed by local circuit properties that alter the timing of E-I activity. Transient imbalances in excitatory and inhibitory activity may provide a general mechanism for generating coherent neuronal dynamics.

neuroscience

Deliberation and enaction during adaptive economic choice

Economic decisions can adapt to contexts. Choices can be quick and impulsive or slow and more deliberative, depending on the temporal context. Choices can also depend on how we enact the choice, in an action context. Where we decide to go for dinner may change if we can take a taxi or need to walk.\n\nWe hypothesized that frontal action circuits could contribute to adapting economic choices to context because of their privileged position over actions as endpoints of decisions.\n\nTo test this, we performed an unbiased survey of neuronal population activity across motor, premotor and prefrontal cortices as animals expressed context-dependent economic preferences. Activity in distributed action circuits tracked the animals evolving preferences in real-time and integrated them with a signal for their enaction. We propose that frontal action circuits form a neural substrate that supports an adaptive control over economic choice by flexibly translating real-time preferences into actions.

neuroscience