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August 19, 2010Science2,918 citationsOpen Access

mTOR-Dependent Synapse Formation Underlies the Rapid Antidepressant Effects of NMDA Antagonists

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NLNanxin LiBLBoyoung LeeRLRongjian Liu

Key Points

  • To identify the molecular and cellular mechanisms underlying the rapid antidepressant response of NMDA receptor antagonists like ketamine.
  • Assessed mTOR pathway activation, synaptic signaling protein expression, and spine synapse number and function in the prefrontal cortex of rats following ketamine administration.
  • Evaluated synaptogenesis and behavioral responses in rodent models of depression in the presence of mTOR signaling blockade.
  • Ketamine rapidly activated the mTOR signaling pathway, leading to an increase in synaptic signaling proteins and a higher number and functional capacity of new spine synapses in the prefrontal cortex.
  • Blockade of mTOR signaling completely prevented ketamine-induced synaptogenesis and abolished antidepressant-like behavioral responses, opposing the synaptic deficits caused by stress.

Abstract

The rapid antidepressant response after ketamine administration in treatment-resistant depressed patients suggests a possible new approach for treating mood disorders compared to the weeks or months required for standard medications. However, the mechanisms underlying this action of ketamine a glutamate N-methyl-D-aspartic acid (NMDA) receptor antagonist have not been identified. We observed that ketamine rapidly activated the mammalian target of rapamycin (mTOR) pathway, leading to increased synaptic signaling proteins and increased number and function of new spine synapses in the prefrontal cortex of rats. Moreover, blockade of mTOR signaling completely blocked ketamine induction of synaptogenesis and behavioral responses in models of depression. Our results demonstrate that these effects of ketamine are opposite to the synaptic deficits that result from exposure to stress and could contribute to the fast antidepressant actions of ketamine.

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Cite This Study

Li et al. (2010) studied this question.

synapsesocial.com/papers/69c476a21f99e988c5086751https://doi.org/10.1126/science.1190287
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