Neuroexcitatory effects of morphine-3-glucuronide are dependent on Toll-like receptor 4 signaling

Michael R Due1, Andrew D Piekarz, Natalie Wilson

  • 1Department of Anesthesia, Indiana University School of Medicine, Indianapolis, IN 46202, USA.

Abstract

Insights

Morphine metabolite M3G may cause opioid-induced hyperalgesia (OIH) by activating Toll-like receptor 4 (TLR4). This study shows M3G affects pain signaling in sensory neurons and sodium channel activity, suggesting a novel mechanism for OIH.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Pain Research

Background:

  • Opioid-induced hyperalgesia (OIH) is a significant adverse event associated with morphine use for chronic non-cancer pain.
  • Mechanisms of OIH are distinct from opioid tolerance and may involve the morphine metabolite morphine-3-glucuronide (M3G).
  • M3G lacks analgesic effects and opioid receptor affinity, but may act via the Toll-like receptor 4 (TLR4)/myeloid differentiation protein-2 (MD-2) complex to induce pain.

Purpose of the Study:

  • To investigate the role of M3G in OIH by examining its interaction with the TLR4/MD-2 complex in sensory neurons.
  • To determine if M3G modulates neuronal excitability and sodium channel function.
  • To assess the efficacy of a TLR4/MD-2 inhibitor in mitigating M3G-induced hyperalgesia.

Main Methods:

  • Characterized TLR4 protein expression in dorsal root ganglion (DRG) using immunoblot and immunocytochemistry.
  • Assessed M3G and lipopolysaccharide (LPS)-induced changes in intracellular calcium and neuronal excitation in vitro.
  • Evaluated M3G-induced tactile hyperalgesia in rats and TLR4 knockout mice, and effects of a TLR4/MD-2 inhibitor (Compound 15).
  • Recorded voltage-gated sodium channel (NaV) currents in DRG neurons following M3G treatment.

Main Results:

  • TLR4 was expressed in sensory neurons within the DRG, but not in non-neuronal cells.
  • M3G and LPS increased intracellular calcium and neuronal excitability, effects abolished by Compound 15.
  • M3G induced tactile hyperalgesia in rats, prevented by Compound 15, and was absent in TLR4 knockout mice.
  • M3G increased tetrodotoxin-sensitive and tetrodotoxin-resistant (NaV1.9) sodium channel current densities in DRG neurons.

Conclusions:

  • M3G contributes to OIH through the TLR4/MD-2 complex.
  • M3G alters the biophysical properties of sensory neuron sodium channels, influencing pain signaling.
  • Targeting the TLR4/MD-2 complex may offer a therapeutic strategy for managing M3G-induced hyperalgesia.

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