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Single-atom substitution redirects KatG reactivity from cofactor biogenesis to stereoselective sulfoxidation
Ran Duan1, Jiasong Li1,2, Wendell P Griffith1
1Department of Chemistry, The University of Texas at San Antonio, San Antonio, TX, 78249, USA.
None:
Protein-derived cofactors rely on precisely positioned heteroatoms to direct redox chemistry, yet isolating their individual contributions remains challenging. The indole N-H of tryptophan plays a central yet elusive role in biogenesis and function of the Met-Tyr-Trp (MYW) cofactor in catalase-peroxidase (KatG). Here, we use genetic code expansion to replace cofactor-forming Trp105 with thiotryptophan (S-Trp), enabling a single-heteroatom (N → S) substitution. Instead of forming the MYW crosslink, KatG bearing S-Trp105 undergoes site-specific monooxygenation to yield a chiral sulfoxide. HPLC-MS, circular dichroism, and FT-IR spectroscopy identify selective oxygen insertion at the sulfur, establishing enantioselective formation of an (S)-configured sulfoxide. A 2.22 Å cryo-EM structure visualizes the oxidized S-Trp105, revealing the S = O moiety orienting toward the iron and confirming the absence of crosslinking. The S-atom oxygenation is heme-dependent and proceeds via a two-electron oxygen-atom transfer, contrasting with the radical-mediated one-electron chemistry of native tryptophan. This redirection suppresses catalase activity by perturbing cofactor formation. These results show that a single-atom substitution reroutes the distal heme site from radical crosslinking to stereoselective sulfoxidation, uncovering a monooxygenase-like capability within KatG. This work highlights using noncanonical amino acids to achieve atomic-level control over reaction pathways and to interrogate cofactor biogenesis with unprecedented precision.
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