Pathology-Driven Epithelial Sulfide Loss Reprograms the Redox Proteome and Triggers Barrett's Esophagus.

Korbut, Edyta; Wierdak, Mateusz; Vignane, Thibaut; Bakalarz, Dominik; Magierowska, Katarzyna; Suski, Maciej; Janmaat, Vincent T; Hankus, Jerzy et al. · Gastroenterology · 2026

basic_science · Level V

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Abstract

Barrett's esophagus (BE), a metaplastic transformation driven by gastroesophageal reflux disease (GERD), induces oxidative stress but the underlying redox mechanisms remain poorly understood. Protein persulfidation (PSSH), a redox-sensitive, reversible, and antioxidative post-translational modification regulated by hydrogen sulfide (H<sub>2</sub>S) metabolism, has not been explored in this context. Here, we identify epithelial PSSH as a key regulator of this premalignant process. We applied proteomics and chemoproteomics in 2 patient cohorts to map and validate PSSH and total proteome profiles across healthy (squamous), GERD-exposed, and metaplastic epithelium. Using in vitro and in vivo models of chronic GERD and BE, we modulated H<sub>2</sub>S levels genetically and pharmacologically. Mechanistic and functional effects were assessed using tissue biopsies or recombinant human proteins. GERD-induced oxidative loss of H<sub>2</sub>S and its enhanced catabolism initiated early PSSH proteome remodeling in squamous epithelium, which expanded in BE and affected >1300 proteins in clinical samples, indicating potential biomarkers. This also included altered persulfidation of enzymes regulating accumulation of prostaglandin E<sub>2</sub> (PGE<sub>2</sub>), a well-established driver of BE development and progression. H<sub>2</sub>S depletion accelerated metaplastic transformation, whereas H<sub>2</sub>S donors reversed these effects in experimental models. PSSH of 15-hydroxyprostaglandin dehydrogenase reversibly suppressed its activity, protecting the enzyme and, unlike irreversible oxidation, allowing recovery of PGE<sub>2</sub> degradation. These findings redefine the origin of PGE<sub>2</sub> accumulation in metaplasia and establish sulfide loss and persulfidomic remodeling as central, druggable drivers of epithelial reprogramming and redox imbalance in BE pathogenesis.