Mechanistic Characterization of GedF Reveals a Ser-Tyr Catalytic Core with a Flexible Basic Residue in a Filamentous Fungal Anthraquinone SDR. | AMiner
Mechanistic Characterization of GedF Reveals a Ser-Tyr Catalytic Core with a Flexible Basic Residue in a Filamentous Fungal Anthraquinone SDR.
The cleavage of the C10-C4a bond in anthraquinones is a key step in generating ring-opened quinone derivatives in filamentous fungi. GedF, a short-chain dehydrogenase/reductase (SDR) from Aspergillus terreus, together with the dioxygenase GedK, mediates this transformation, yet the enzymatic mechanism of GedF remains unclear. Here, isotope labeling experiments confirm that reduction of Questin-to-Questin hydroquinone incorporates one proton from NADPH and one from water. Structural modeling, molecular docking, and site-directed mutagenesis reveal that GedF employs a noncanonical catalytic architecture featuring a conserved Ser-Tyr catalytic core instead of the classical Asn-Ser-Tyr-Lys tetrad typical of SDRs. Notably, mutagenesis and comparative analysis indicate that a positively charged residue is required for catalysis but is not strictly position-conserved, consistent with a role in maintaining the catalytic microenvironment and facilitating proton transfer. Phylogenetic and sequence analyses show that GedF belongs to the NAD(P)H-dependent SDR clade, and that variation in the positioning of basic residues occurs among homologues while preserving the conserved Ser-Tyr catalytic core. These findings elucidate the catalytic mechanism of GedF and uncover an alternative SDR catalytic strategy involved in anthraquinone ring-opening biosynthesis in filamentous fungi.