<p>Persistent maladaptive drug-context associations are a key component of relapse vulnerability and pose a major obstacle in treating opioid use disorder. Although the dorsal hippocampus (dHPC) is critical for contextual memory formation, the synaptic mechanisms by which opioids alter hippocampal circuits to sustain these associations remain unclear. We previously found that repeated context-paired morphine exposure impairs dHPC long-term potentiation (LTP) through enhanced activity of small-conductance calcium-activated potassium (SK2) channels. Here, we investigated the role of SK2 channels in morphine-context associative learning and memory by combining in vivo electrophysiology, molecular analyses, and behavioral pharmacology with the morphine-conditioned place preference (MorCPP) paradigm in male mice. Manipulation of SK2 channels with either SK2 blocker Lei-Dab<sup>7</sup> or activator NS309 before MorCPP post-test dose-dependently reduced MorCPP preference, despite no changes observed in SK2 mRNA or protein expression following MorCPP post-test. Interestingly, SK2 blockade during conditioning instead facilitated morphine-context memory formation, suggesting a distinct SK2 role in drug-context memory acquisition versus retrieval. Electrophysiology data suggest that modulation of dHPC neuronal activity by SK2 channels could be a potential mechanism underlying these observations. Our findings demonstrate that dHPC SK2 channels regulate morphine-context memory formation and retrieval, identifying them as a candidate for mitigating context-driven drug behaviors.</p>

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Modulation of dorsal hippocampal SK2 channels regulates morphine-enhanced neuronal oscillations and morphine-induced contextual memory encoding and retrieval

  • Khairunisa Mohamad Ibrahim,
  • Dominika J. Burek,
  • Azra Zec,
  • Olayinka Idowu,
  • Will W. Post,
  • Alice Zheng,
  • Basma Daham,
  • Justin D. Meyer,
  • Sidney Williams,
  • Nicolas Massaly,
  • Jose A. Morón

摘要

Persistent maladaptive drug-context associations are a key component of relapse vulnerability and pose a major obstacle in treating opioid use disorder. Although the dorsal hippocampus (dHPC) is critical for contextual memory formation, the synaptic mechanisms by which opioids alter hippocampal circuits to sustain these associations remain unclear. We previously found that repeated context-paired morphine exposure impairs dHPC long-term potentiation (LTP) through enhanced activity of small-conductance calcium-activated potassium (SK2) channels. Here, we investigated the role of SK2 channels in morphine-context associative learning and memory by combining in vivo electrophysiology, molecular analyses, and behavioral pharmacology with the morphine-conditioned place preference (MorCPP) paradigm in male mice. Manipulation of SK2 channels with either SK2 blocker Lei-Dab7 or activator NS309 before MorCPP post-test dose-dependently reduced MorCPP preference, despite no changes observed in SK2 mRNA or protein expression following MorCPP post-test. Interestingly, SK2 blockade during conditioning instead facilitated morphine-context memory formation, suggesting a distinct SK2 role in drug-context memory acquisition versus retrieval. Electrophysiology data suggest that modulation of dHPC neuronal activity by SK2 channels could be a potential mechanism underlying these observations. Our findings demonstrate that dHPC SK2 channels regulate morphine-context memory formation and retrieval, identifying them as a candidate for mitigating context-driven drug behaviors.