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Arylsulfamates inhibit colonic Bacteroidota growth through a sulfatase-independent mechanism

cartmell, A.; Crawford, C. J.; Tomlinson, C. W.; Gunawan, C.; Chen, Z.; Byrne, D. P.; Darby, C.; Conti, M. L.; Larson, T.; Luis, A. S. J.; Elli, S.; Yates, E. A.; Bolam, D. N.; van der Post, S.; Williams, S. J.

2025-05-16 biochemistry
10.1101/2024.04.27.591440 bioRxiv
Show abstract

Excessive degradation of the colonic mucin layer by Bacteroides within the human gut microbiota drives inflammatory bowel disease in mice. Bacterial carbohydrate sulfatases are key enzymes in gut colonization, as they are elevated in human inflammatory bowel disease and correlate with disease severity. Selective inhibitors of carbohydrate sulfatases could function as sulfatase-selective drugs, allowing precise control of sulfatase activity while preserving these otherwise beneficial bacteria. Arylsulfamates are covalent inhibitors that target a catalytic formylglycine residue of steroid sulfatases, a residue that is also conserved in carbohydrate sulfatases. Here, we find that a library of aryl- and carbohydrate sulfamates is ineffective against Bacteroides carbohydrate sulfatases, yet can inhibit human gut microbiota species grown on sulfated glycans. Leveraging thermal proteome profiling, we identify a lipid kinase as the target responsible for these effects. This work highlights the imperative for developing specific inhibitors targeting carbohydrate sulfatases and reveals the adverse effects that arylsulfamates have on Bacteroides species of the human gut microbiota. Significance statementArylsulfamates are currently the only effective class of sulfatase inhibitors available and offer a potential strategy to treat inflammatory bowel disease driven by gut microbiota carbohydrate sulfatases. Although arylsulfamates inhibit the growth of microbiota Bacteroides species on sulfated glycans, this is not mediated through carbohydrate sulfatases but, via a conserved lipid kinase. Carbohydrate sulfatases are resistant to arylsulfamates whilst steroid sulfatases are susceptible despite a conserved active site. Finally, selected complex plant glycans confer a resistant/protective phenotype against the harmful effects of arylsulfamates. These data guide the future development of targeted carbohydrate sulfatase inhibitors and potential drug-prebiotic pairings.

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