A carbon monoxide-releasing molecule (CORM-3) abrogates polymorphonuclear granulocyte-induced activation of

Emanuela Masini1, Alfredo Vannacci, Paola Failli

  • 1Department of Preclinical and Clinical Pharmacology, University of Florence, Viale G. Pieraccini 6, I-50139, Florence, Italy.

Insights

Carbon monoxide-releasing molecule 3 (CORM-3) effectively reduces vascular inflammation by inhibiting key inflammatory mediators like superoxide anion production and histamine release. This study highlights CORM-3

Area of Science:

  • Biochemistry and Molecular Biology
  • Immunology
  • Pharmacology

Background:

  • Vascular inflammation involves polymorphonuclear granulocytes (PMNs), endothelial cells (ECs), and mast cells (MCs).
  • PMNs generate superoxide anion (O(2)(*-)), ECs overexpress adhesion molecules, and MCs release histamine, contributing to inflammation.
  • Carbon monoxide (CO) is investigated for its potential anti-inflammatory effects.

Purpose of the Study:

  • To investigate the anti-inflammatory effects of a CO-releasing molecule, CORM-3, on a vascular inflammation model.
  • To determine CORM-3's impact on PMN activation, EC adhesion molecule expression, and MC degranulation.

Main Methods:

  • Co-incubation of formyl-methionyl peptide (fMLP)-primed human PMNs with rat ECs or MCs.
  • Measurement of O(2)(*-) generation and CD11b expression in PMNs.
  • Assessment of ICAM-1 (CD54) expression in ECs and CD203c expression and histamine release in MCs.

Main Results:

  • CORM-3 significantly reduced fMLP-induced O(2)(*-) production and CD11b expression in PMNs.
  • CORM-3 inhibited fMLP-induced CD54 expression in ECs.
  • CORM-3 suppressed CD203c expression and histamine release from MCs.

Conclusions:

  • CORM-3 demonstrates potent anti-inflammatory activity in experimental vascular inflammation.
  • The mechanism involves down-regulation of PMN oxidative burst, reduced adhesion molecule expression, and suppressed mast cell activation.
  • CORM-3 represents a promising therapeutic agent for vascular inflammatory conditions.

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