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Morphine enhances microglial migration through modulation of P2X4 receptor signaling
Ryan J Horvath1, Joyce A DeLeo
1Department of Pharmacology, Dartmouth Medical School, Hanover, New Hampshire 03755, USA.
Abstract:
Opioids, although fundamental to the treatment of pain, are limited in efficacy by side effects including tolerance and hyperalgesia. Using an in vitro culture system, we report that morphine increased microglial migration via a novel interaction between mu-opioid and P2X(4) receptors, which is dependent upon PI3K/Akt pathway activation. Morphine at 100 nm enhanced migration of primary microglial cells toward adenosine diphosphate by 257, 247, 301, 394, and 345% following 2, 6, 12, 24, and 48 h of stimulation, respectively. This opioid-dependent migration effect was inhibited by naloxone and confirmed to be mu-opioid receptor-dependent through the use of selective agonists and antagonists. PPADS [pyridoxal phosphate-6-azo(benzene-2,4-disulfonic acid)], a P2X(1-3,5-7) antagonist, had no effect on microglial migration; however, TNP-ATP [2',3'-O-(2,4,6-trinitrophenyl)-ATP], a P2X(1-7) antagonist, inhibited morphine-induced migration, suggesting a P2X(4) receptor-mediated effect. The PI3K inhibitors wortmannin and LY294002 decreased morphine-induced microglial migration. Iba1 protein, a microglial marker, and P2X(4) receptor expression were significantly increased after 6, 12, 24, and 48 h of morphine stimulation. Together, these results provide evidence for two phases of morphine effects on microglia. The initial phase takes place in minutes, involves PI3K/Akt pathway activation and leads to acutely enhanced migration. The longer-term phase occurs on the order of hours and involves increased expression of Iba1 and P2X(4) receptor protein, which imparts a promigratory phenotype and is correlated with even greater migration. These data provide the first necessary step in supporting microglial migration as an attractive target for the prevention or attenuation of morphine-induced side effects including tolerance and hyperalgesia.
Insights
Morphine enhances microglial cell migration through a novel interaction between mu-opioid and P2X(4) receptors, mediated by PI3K/Akt pathway activation. This finding suggests targeting microglial migration may help mitigate opioid-induced side effects like tolerance and hyperalgesia.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Opioids are essential for pain management but cause side effects like tolerance and hyperalgesia.
- Microglia play a crucial role in neuroinflammation and pain signaling.
Purpose of the Study:
- To investigate the mechanism by which morphine affects microglial migration.
- To identify potential therapeutic targets for mitigating opioid-induced side effects.
Main Methods:
- Utilized an in vitro primary microglial cell culture system.
- Administered morphine and assessed cell migration using various agonists, antagonists, and inhibitors.
- Quantified microglial marker (Iba1) and P2X(4) receptor expression via Western blot.
Main Results:
- Morphine significantly enhanced microglial migration in a time-dependent manner.
- The effect was dependent on mu-opioid receptor activation and P2X(4) receptor signaling.
- PI3K/Akt pathway activation was crucial for morphine-induced migration.
- Longer-term morphine exposure increased Iba1 and P2X(4) receptor expression, promoting migration.
Conclusions:
- Morphine induces microglial migration through a dual-phase mechanism involving PI3K/Akt pathway and increased receptor expression.
- Microglial migration is a potential therapeutic target for managing morphine-induced side effects.
- This study provides foundational evidence for novel therapeutic strategies in pain management.
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