Decoding the Neural Circuit Underlying Context‐Cue Association in Retrieval of Morphine Reward Memory

Context-induced relapse is a major challenge in treating drug use disorders, yet the neural circuits underlying drug memory retrieval remain unclear. A glutamatergic projection from the ventral CA1 (vCA1) to the dorsomedial prefrontal cortex (dmPFC) is identified as a critical pathway for morphine reward memory retrieval. In vivo monitoring and ex vivo electrophysiology show that vCA1 inputs engage distinct dmPFC neuronal populations and differentially regulate local parvalbumin (PV+) and somatostatin (SST+) interneurons, thereby reshaping cortical output during memory retrieval. Pathway-specific inhibition abolishes cue-induced memory retrieval, which is restored by local NMDA administration, whereas blockade of NMDA receptors in the dmPFC impairs retrieval during pathway activation, supporting a critical role for NMDA receptor signaling in memory retrieval driven by vCA1 input. Beyond reward memory, chronic inhibition of the vCA1-dmPFC pathway attenuates somatic withdrawal and the development of analgesic tolerance without affecting the acute analgesic effect of morphine. Together, these findings reveal a cell-type-specific hippocampal-prefrontal mechanism regulating opioid-associated maladaptive behaviors and provide a potential circuit-level strategy to reduce addiction-related consequences while preserving morphine analgesia.

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Publication Details

Journal
Advanced Science
Published
2026-09-16
DOI
https://doi.org/10.1002/advs.77735
Primary Topic
Memory and Neural Mechanisms
Type
article
Field-Weighted Citation Impact
0.00

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article

Decoding the Neural Circuit Underlying Context‐Cue Association in Retrieval of Morphine Reward Memory

Mingmei Wang, John L. Waddington, Xuechu Zhen, Guangying Li et al.
Advanced Science
Memory and Neural Mechanisms
article

Decoding the Neural Circuit Underlying Context‐Cue Association in Retrieval of Morphine Reward Memory

Mingmei Wang, John L. Waddington, Xuechu Zhen, Guangying Li, Fu‐Hai Ji, Zhi-Feng Shi, Rusun Liu, Qian Yang, Linghan Gu
article en

Abstract

Context-induced relapse is a major challenge in treating drug use disorders, yet the neural circuits underlying drug memory retrieval remain unclear. A glutamatergic projection from the ventral CA1 (vCA1) to the dorsomedial prefrontal cortex (dmPFC) is identified as a critical pathway for morphine reward memory retrieval. In vivo monitoring and ex vivo electrophysiology show that vCA1 inputs engage distinct dmPFC neuronal populations and differentially regulate local parvalbumin (PV+) and somatostatin (SST+) interneurons, thereby reshaping cortical output during memory retrieval. Pathway-specific inhibition abolishes cue-induced memory retrieval, which is restored by local NMDA administration, whereas blockade of NMDA receptors in the dmPFC impairs retrieval during pathway activation, supporting a critical role for NMDA receptor signaling in memory retrieval driven by vCA1 input. Beyond reward memory, chronic inhibition of the vCA1-dmPFC pathway attenuates somatic withdrawal and the development of analgesic tolerance without affecting the acute analgesic effect of morphine. Together, these findings reveal a cell-type-specific hippocampal-prefrontal mechanism regulating opioid-associated maladaptive behaviors and provide a potential circuit-level strategy to reduce addiction-related consequences while preserving morphine analgesia.

Advanced Science
Suzhou University of Science and Technology (CN), Soochow University (CN), First Affiliated Hospital of Soochow University (CN)
Priority Academic Program Development of Jiangsu Higher Education Institutions, National Key Research and Development Program of China
Good health and well-being
Openalex Percentile: Top 9%
Memory and Neural Mechanisms
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