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WEI, Y.

Publications and source records attributed to WEI, Y..

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↗

Architecture and mechanism of a dual-enzyme retron system in prokaryotic immunity

Retrons are bacterial genetic retroelements encoding a reverse transcriptase (RT) and a non-coding RNA (ncRNA)-multi-copy single-stranded DNA (msDNA) hybrid. Diverse effector proteins or domains are found to associate with retrons, typically forming tripartite toxin-antitoxin systems involved in anti-phage defense. Although retrons have attracted growing interest in genome editing technologies, the mechanisms underlying most retron-mediated immune systems remain poorly understood. Here, we characterized a distinct quaternary retron system, Ec78, harboring a dual-enzymatic effector complex, in which the PtuA ATPase and PtuB nuclease act in concert to mediate phage clearance. The cryo-EM structure of the Ec78 complex adopts a flower-basket-like architecture, with two Ec78 retrons engaging the PtuAB effector complexes through a unique msDNA-insertion assembly mechanism. Interestingly, a sensing loop on the RT protein tightly monitors the length of the msDNA, which is likely responsible for phage detection and the subsequent release of the toxic effector complex. We further determined the cryo-EM structure of the retron-unbound effector complex, revealing an arginine-lysine finger loop on the PtuB nuclease that undergoes an ordered-to-disordered transition for enzymatic activation. Together, our work not only delineates the molecular basis underlying the Ec78 system in antiviral defense but also highlights the mechanistic diversity of retron systems in prokaryotic immunity.

biochemistry↗