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Ketamine Induced Synaptic Plasticity Operates Independently of Long-term Potentiation

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Date 2024 Jun 19
PMID 38898206
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Abstract

Synaptic plasticity occurs via multiple mechanisms to regulate synaptic efficacy. Homeostatic and Hebbian plasticity are two such mechanisms by which neuronal synapses can be altered. Although these two processes are mechanistically distinct, they converge on downstream regulation of AMPA receptor activity to modify glutamatergic neurotransmission. However, much remains to be explored regarding how these two prominent forms of plasticity interact. Ketamine, a rapidly acting antidepressant, increases glutamatergic transmission via pharmacologically-induced homeostatic plasticity. Here, we demonstrate that Hebbian plasticity mechanisms are still intact in synapses that have undergone homeostatic scaling by ketamine after either systemic injection or perfusion onto hippocampal brain slices. We also investigated this relationship in the context of stress induced by chronic exposure to corticosterone (CORT) to better model the circumstances under which ketamine may be used as an antidepressant. We found that CORT induced an anhedonia-like behavioral phenotype in mice but did not impair long-term potentiation (LTP) induction. Furthermore, corticosterone exposure does not impact the intersection of homeostatic and Hebbian plasticity mechanisms, as synapses from CORT-exposed mice also demonstrated intact ketamine-induced plasticity and LTP in succession. These results provide a mechanistic explanation for how ketamine used for the treatment of depression does not impair the integrity of learning and memory processes encoded by mechanisms such as LTP.

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References
1.
Toyoizumi T, Kaneko M, Stryker M, Miller K . Modeling the dynamic interaction of Hebbian and homeostatic plasticity. Neuron. 2014; 84(2):497-510. PMC: 4223656. DOI: 10.1016/j.neuron.2014.09.036. View

2.
Hsu Y, Li J, Wu D, Sudhof T, Chen L . Synaptic retinoic acid receptor signaling mediates mTOR-dependent metaplasticity that controls hippocampal learning. Proc Natl Acad Sci U S A. 2019; 116(14):7113-7122. PMC: 6452649. DOI: 10.1073/pnas.1820690116. View

3.
Ribeiro P, Silva H, Tome A, Cunha R, Antunes L . Hippocampal long-term potentiation in adult mice after recovery from ketamine anesthesia. Lab Anim (NY). 2014; 43(10):353-7. DOI: 10.1038/laban.571. View

4.
Aleksandrova L, Wang Y, Phillips A . Ketamine and its metabolite, (2R,6R)-HNK, restore hippocampal LTP and long-term spatial memory in the Wistar-Kyoto rat model of depression. Mol Brain. 2020; 13(1):92. PMC: 7296711. DOI: 10.1186/s13041-020-00627-z. View

5.
Kauer J, Malenka R, Nicoll R . A persistent postsynaptic modification mediates long-term potentiation in the hippocampus. Neuron. 1988; 1(10):911-7. DOI: 10.1016/0896-6273(88)90148-1. View