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HAN, X.

Publications and source records attributed to HAN, X..

2 recordsLinked to original sources

Tryptophan Chemistry Driven by a Widespread Cytochrome P422 Enzyme Family

Tryptophan serves as a versatile biosynthetic precursor across living organisms. While heme-binding proteins (HBPs) mediate key reactions in tryptophan transformation, the full diversity of HBPs remains largely unexplored. Here, we developed the novel Cofactor-Integrative Structural Inspector (CISSspector) to systematically identify HBPs in the extensive extant microbial genomic sequence database, which revealed several uncharacterized HBP families. We experimentally characterized one of the most prominent families, the cytochrome P422 (formerly DUF6875) family, distributed throughout the prokaryotes and eukaryotes. Strikingly, we discovered that this enzyme family orchestrates four chemically distinct and biochemically unprecedented transformations, with regioselectivity, including N1-, C6-, and C7-hydroxylations and intramolecular C-S bond formations. Notably, the discovery of enzymes capable of Trp N1- and C7-hydroxylation addresses a long-standing gap in the natural enzyme arsenal. Structural analysis of the representative cytochrome P422 enzyme Mc170 revealed a structurally unique HBP fold in which conserved residues form a substrate "clamp" that positions the tryptophan indole ring for selective modification. Our work unveils a hidden enzymatic repertoire of HBPs, expands the known landscape of tryptophan metabolism, and establishes an artificial intelligence-augmented framework for discovering cryptic enzymes with broad implications for synthetic biology and natural product discovery.

biochemistry↗

Nucleotidyltransferase toxin MenT targets and extends the aminoacyl acceptor ends of serine tRNAs in vivo to control Mycobacterium tuberculosis growth

Toxins of toxin-antitoxin systems use diverse mechanisms to control bacterial growth and represent attractive therapeutic targets to fight pathogens. In this study, we characterized the translation inhibitor toxin MenT3 of Mycobacterium tuberculosis, the bacterium responsible for human tuberculosis in humans. We show that MenT3 is a robust cytidine specific tRNA nucleotidyltransferase in vitro, capable of modifying the aminoacyl acceptor ends of most tRNA but with a marked preference for tRNASer, to which long stretches of cytidines were added. Furthermore, transcriptomic-wide analysis of MenT3 targets in M. tuberculosis identified tRNASer as the sole target of MenT3 in vivo and revealed significant detoxification attempts by ribonuclease PH in response to MenT3 overexpression. Finally, under physiological conditions, only in the presence the native menAT3 operon, we found the unexpected presence of an active pool of endogenous MenT3 targeting tRNASer in M. tuberculosis, likely reflecting the importance of MenT3 during infection.

microbiology↗