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Involvement of intracellular calcium in morphine tolerance in mice

F L Smith1, D S Dombrowski, W L Dewey

  • 1Department of Pharmacology and Toxicology, Medical College of Virginia of Virginia Commonwealth University, Richmond 23298-0613, USA.

Insights

Opioid tolerance involves disrupted calcium (Ca++) balance. Blocking Ca++ influx and release from internal stores can reverse morphine tolerance, highlighting Ca++

Area of Science:

  • Neuropharmacology
  • Molecular Biology
  • Physiology

Background:

  • Opioid analgesic tolerance is a significant clinical challenge.
  • Disruptions in cellular calcium (Ca++) homeostasis are implicated in opioid tolerance.
  • Ca++ influx and intracellular Ca++ mobilization are potential mechanisms maintaining tolerance.

Purpose of the Study:

  • To investigate the roles of Ca++ influx and intracellular Ca++ mobilization in the expression of morphine tolerance.
  • To determine if Ca++ modulating drugs can reverse established morphine tolerance.

Main Methods:

  • Mice were implanted with morphine pellets to induce tolerance.
  • Intracerebroventricular (ICV) injections of Ca++ chelators (EGTA, EGTA-AM) and channel antagonists (nifedipine, omega-conotoxin GVIA, ryanodine) were administered.
  • Effects on morphine potency and tolerance reversal were assessed.

Main Results:

  • The Ca++ chelator EGTA and channel antagonists nifedipine and omega-conotoxin GVIA significantly reversed morphine tolerance.
  • The intracellular Ca++ chelator EGTA-AM reversed tolerance at lower morphine doses, but not higher doses.
  • Ryanodine, which blocks Ca++ release from intracellular pools, showed similar effects to EGTA-AM.

Conclusions:

  • Both Ca++ influx through specific channels and mobilization from intracellular Ca++/caffeine-sensitive pools contribute to morphine tolerance.
  • Targeting Ca++ homeostasis pathways offers potential therapeutic strategies for managing opioid tolerance.

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