Annamaria Molinario, Francesca Caprioglio, Angela A Rilievo, Marco E Bianchi, Rosanna Mezzapelle
Mesothelioma is a rare and aggressive malignancy arising from mesothelial cells. Despite recent advances in systemic therapies, overall survival remains limited, underscoring the need for a deeper mechanistic understanding of disease pathogenesis and novel therapeutic strategies. In mesothelioma, chronic tissue injury induced by asbestos fibers leads to sustained activation of innate immune pathways and chronic inflammation that actively promote tumorigenesis. The release of Damage-Associated Molecular Patterns (DAMPs)-endogenous molecules that signal cellular stress and damage-contributes to establishing a self-sustaining inflammatory circuit within the pleural microenvironment that promotes tumor initiation and progression and immune evasion. Among DAMPs, High-Mobility Group Box 1 (HMGB1) has emerged as a key regulator of mesothelioma pathogenesis. Several studies demonstrated that mesothelial cells actively secrete HMGB1 in response to asbestos exposure, driving macrophage recruitment, cytokine production, and chronic inflammation. Beyond HMGB1, additional DAMPs-including IL-33, extracellular ATP, cell-free nucleic acids, heat shock proteins, and calreticulin-contribute to inflammasome activation, stromal remodeling, and immune dysregulation. Recent evidence suggests that DAMP signaling in mesothelioma is dysregulated, resulting in chronic inflammation coupled with ineffective antitumor immunity. This review provides a comprehensive synthesis of DAMP biology in mesothelioma, highlighting the emerging therapeutic opportunities targeting DAMP-associated pathways.