Selective blockade of the OGF-OGFr pathway by naltrexone accelerates fibroblast proliferation and wound healing

Jessica A Immonen1, Ian S Zagon1, Patricia J McLaughlin2

  • 1Department of Neural & Behavioral Sciences, The Pennsylvania State University College of Medicine, Hershey, PY 17033, USA.

Insights

Naltrexone (NTX) enhances wound healing by blocking the opioid growth factor receptor (OGFr) pathway. This mechanism, distinct from classical opioid receptors, promotes fibroblast proliferation and accelerates cutaneous wound closure in diabetic and nondiabetic subjects.

Area of Science:

  • Pharmacology
  • Wound Healing Research
  • Cell Biology

Background:

  • Naltrexone (NTX), an opioid receptor antagonist, is known to enhance corneal and cutaneous wound healing in animal models.
  • The precise mechanism by which NTX promotes wound healing, particularly the specific receptor pathways involved, remains unclear.
  • Previous studies suggest NTX acts on both classical and non-classical opioid receptors, including the opioid growth factor receptor (OGFr).

Purpose of the Study:

  • To elucidate the mechanism of action for Naltrexone (NTX) in enhancing cutaneous wound healing.
  • To investigate the role of classical opioid receptors versus the opioid growth factor receptor (OGFr) pathway in NTX-mediated wound repair.
  • To determine if NTX's wound healing effects are specifically mediated through the OGFr axis.

Main Methods:

  • In vitro studies using NIH 3T3 fibroblasts and primary rat auricular fibroblasts treated with various opioid receptor antagonists (NTX, CTOP, naltrindole, nalmefene) and peptides.
  • Evaluation of cell proliferation rates following antagonist treatment and OGFr knockdown using siRNA.
  • In vivo topical application of NTX and classical opioid receptor antagonists to cutaneous wounds in type 1 diabetic rats.

Main Results:

  • Selective antagonists for mu, delta, and kappa opioid receptors did not affect fibroblast replication, nor did classical opioid receptor peptides alter cell growth.
  • Naltrexone (NTX) significantly increased NIH 3T3 fibroblast proliferation in vitro, while the OGFr ligand OGF decreased cell growth.
  • Knockdown of OGFr in NIH 3T3 cells abolished the proliferative effect of NTX, and only NTX accelerated wound closure in diabetic rats.

Conclusions:

  • The wound healing enhancement by Naltrexone (NTX) is mediated through the opioid growth factor receptor (OGFr) pathway, not classical opioid receptors.
  • Blockade of the OGFr pathway promotes fibroblast proliferation in vitro and enhances cutaneous wound closure in vivo.
  • These findings identify the specific OGF-OGFr axis as the key mechanistic pathway for NTX's therapeutic effects on wound healing.

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