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Morphine regulates adult neurogenesis and contextual memory extinction via the PKCε/Prox1 pathway
Wenxiang Fan1, Helei Wang1, Yue Zhang2
1State Key Laboratory of Natural Medicines, School of Basic Medicine and Clinical Pharmacy, China Pharmaceutical University, 24 Tong Jia Xiang, Nanjing, Jiangsu, 210009, People's Republic of China.
Abstract:
We have previously reported that the miR-181a/Prox1/Notch1 pathway mediates the effect of morphine on modulating lineage-specific differentiation of adult neural stem/progenitor cells (NSPCs) via a PKCε-dependent pathway, whereas fentanyl shows no such effect. However, the role of the PKCε/Prox1 pathway in mediating drug-associated contextual memory remains unknown. The current study investigated the effect of PKCε/Prox1 on morphine-induced inhibition of adult neurogenesis and drug-associated contextual memory in mice, while the effect of fentanyl was tested simultaneously. By using BrdU labeling, we were able to examine the lineages of differentiated NSPCs in adult DG. PKCε knockout blocked morphine's effects on inducing in vivo astrocyte-preferential differentiation of NSPCs, but did not alter NSPC lineages upon fentanyl treatment. Inhibited adult neurogenesis further resulted in prolonged extinction and enhanced reinstatement of morphine-induced CPP, as well as prolonged extinction of space reference memory indicated by the Morris water maze paradigm. However, after fentanyl administration, no significant changes were found between wild-type and PKCε knockout mice, during either CPP or water maze tasks. When the lentivirus encoding Nestin-promoter-controlled Prox1 cDNA was injected into hippocampi of wildtype and PKCε knockout adult mice to modulate PKCε/Prox1 activity, similar effects were discovered in adult mice injected with lentivirus encoding Prox1, and more dramatic effects were found in PKCε knockout mice with concurrent Prox1 overexpression. In conclusion, morphine mediates lineage-specific NSPC differentiation, inhibits adult neurogenesis and regulates contextual memory retention via the PKCε/Prox1 pathway, which are implicated in the eventual context-associated relapse.
Insights
Morphine, but not fentanyl, affects neural stem cell differentiation and memory via the PKCε/Prox1 pathway. This pathway influences adult neurogenesis, impacting drug-associated memory and potential relapse.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- The miR-181a/Prox1/Notch1 pathway, dependent on PKCε, mediates morphine's effect on neural stem/progenitor cells (NSPCs).
- Fentanyl does not appear to affect this pathway.
- The role of the PKCε/Prox1 pathway in drug-associated contextual memory is not well understood.
Purpose of the Study:
- To investigate the role of the PKCε/Prox1 pathway in morphine-induced inhibition of adult neurogenesis.
- To examine the effect of the PKCε/Prox1 pathway on drug-associated contextual memory.
- To compare the effects of morphine and fentanyl on these processes.
Main Methods:
- Utilized BrdU labeling to track NSPC differentiation in the DG of adult mice.
- Employed PKCε knockout mice to assess the pathway's necessity.
- Administered morphine and fentanyl to evaluate their effects on neurogenesis and contextual memory (CPP, Morris water maze).
- Used lentivirus to modulate Prox1 expression in wild-type and PKCε knockout mice.
Main Results:
- PKCε knockout blocked morphine's effect on astrocyte-preferential NSPC differentiation but not fentanyl's.
- Inhibited adult neurogenesis prolonged extinction and enhanced reinstatement of morphine-induced CPP and Morris water maze memory.
- Fentanyl administration showed no significant differences between wild-type and PKCε knockout mice in behavioral tasks.
- Overexpression of Prox1, especially in PKCε knockout mice, mimicked and enhanced morphine's effects.
Conclusions:
- Morphine, through the PKCε/Prox1 pathway, influences NSPC differentiation and inhibits adult neurogenesis.
- This pathway is critical for regulating morphine-associated contextual memory retention.
- The PKCε/Prox1 pathway's role in neurogenesis and memory is implicated in context-associated drug relapse.
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