Optogenetic stimulation of infralimbic PFC reproduces ketamine’s rapid and sustained antidepressant actions
Manabu Fuchikami, Alexandra M. Thomas, Rongjian Liu, Eric S. Wohleb, Benjamin B. Land, Ralph Dileone, George K. Aghajanian, Ronald S. Duman
Proceedings of the National Academy of Sciences June 8, 2015 DOI: 10.1073/pnas.1414728112 (opens in new tab) via OpenAlex
Summary
AI-generated from the abstractKetamine's rapid and sustained antidepressant and anxiolytic effects depend on neuronal activity in the infralimbic prefrontal cortex (IL-PFC). Inactivating the IL-PFC in rodents completely blocked the behavioral effects of systemic ketamine, while direct microinfusion of ketamine into the IL-PFC reproduced those effects. Optogenetic stimulation of the IL-PFC alone also produced rapid, long-lasting antidepressant and anxiolytic effects, which were linked to increased number and function of spine synapses in layer V pyramidal neurons. The findings demonstrate that activating the IL-PFC is sufficient to produce long-lasting antidepressant behavioral and synaptic responses similar to those from systemic ketamine.
Study at a glance
| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Rodents |
| Interventions | Ketamine Optogenetic stimulation |
| Topics | Ketamine |
| Keywords | Optogenetics Antidepressant Neuroscience Anxiolytic |
| Citations | 282 |
| Key finding | Neuronal activity in the infralimbic prefrontal cortex is necessary and sufficient for ketamine's rapid and sustained antidepressant and anxiolytic effects in rodents. |
Abstract
Ketamine produces rapid and sustained antidepressant actions in depressed patients, but the precise cellular mechanisms underlying these effects have not been identified. Here we determined if modulation of neuronal activity in the infralimbic prefrontal cortex (IL-PFC) underlies the antidepressant and anxiolytic actions of ketamine. We found that neuronal inactivation of the IL-PFC completely blocked the antidepressant and anxiolytic effects of systemic ketamine in rodent models and that ketamine microinfusion into IL-PFC reproduced these behavioral actions of systemic ketamine. We also found that optogenetic stimulation of the IL-PFC produced rapid and long-lasting antidepressant and anxiolytic effects and that these effects are associated with increased number and function of spine synapses of layer V pyramidal neurons. The results demonstrate that ketamine infusions or optogenetic stimulation of IL-PFC are sufficient to produce long-lasting antidepressant behavioral and synaptic responses similar to the effects of systemic ketamine administration.