Trametinib prevents mesothelial-mesenchymal transition and ameliorates abdominal adhesion formation

Edward J Macarak1, Christine E Lotto2, Deepika Koganti2

  • 1The Joan and Joel Rosenbloom Research Center for Fibrotic Diseases, Sidney Kimmel Medical College, Thomas Jefferson University, Philadelphia, Pennsylvania; Department of Dermatology and Cutaneous Biology, Sidney Kimmel Medical College, Thomas Jefferson University, Philadelphia, Pennsylvania.

Abstract

Insights

Trametinib, an FDA-approved drug, effectively prevents intra-abdominal adhesions in a mouse model by inhibiting pro-fibrotic markers. This study offers a potential therapeutic strategy for post-surgical adhesion prevention.

Area of Science:

  • Gastroenterology
  • Surgical Pathology
  • Pharmacology

Background:

  • Intra-abdominal adhesions are a significant cause of surgical morbidity.
  • Current understanding of adhesion pathogenesis is limited, with no effective treatments available.
  • This study explores a novel therapeutic approach for preventing surgical adhesions.

Purpose of the Study:

  • To investigate the pathogenic mechanisms of intra-abdominal adhesion formation.
  • To evaluate the efficacy of trametinib in preventing adhesion formation in a mouse model.
  • To assess the impact of trametinib on wound healing.

Main Methods:

  • A mouse model of intra-abdominal adhesion was established using cecal abrasion.
  • Adhesion formation was analyzed via histology, immunochemistry (αSMA, FNEDA), and trichrome staining for collagen.
  • Quantitative PCR assessed pro-fibrotic gene expression, and trametinib was administered via osmotic pump.

Main Results:

  • Adhesions formed by post-operative day 1, with extensive vascularization by day 5.
  • Fibronectin EDA (FNEDA) expression preceded alpha smooth muscle actin (αSMA) and collagen expression.
  • Trametinib at 3 mg/kg/d prevented adhesion formation, while lower doses limited adhesions.

Conclusions:

  • Cecal abrasion in mice provides a reliable model for studying abdominal adhesions.
  • The MEK1/2 inhibitor trametinib effectively ameliorates adhesions in this model.
  • Trametinib did not impair wound healing at therapeutic doses, suggesting a safe therapeutic potential.

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