Luhavaya Hanna, Dias Marcio V B, Williams Simon R, Hong Hui, de Oliveira Luciana G, Leadlay Peter F
Department of Biochemistry, University of Cambridge, 80 Tennis Court Road, Cambridge CB2 1GA (UK).
Department of Microbiology, Institute of Biomedical Science, University of São Paulo, Av. Prof. Lineu Prestes, 1374, 05508-000, São Paulo-SP (Brazil).
Angew Chem Int Ed Engl. 2015 Nov 9;54(46):13622-5. doi: 10.1002/anie.201507090. Epub 2015 Sep 17.
Tetrahydropyran rings are a common feature of complex polyketide natural products, but much remains to be learned about the enzymology of their formation. The enzyme SalBIII from the salinomycin biosynthetic pathway resembles other polyether epoxide hydrolases/cyclases of the MonB family, but SalBIII plays no role in the conventional cascade of ring opening/closing. Mutation in the salBIII gene gave a metabolite in which ring A is not formed. Using this metabolite in vitro as a substrate analogue, SalBIII has been shown to form pyran ring A. We have determined the X-ray crystal structure of SalBIII, and structure-guided mutagenesis of putative active-site residues has identified Asp38 and Asp104 as an essential catalytic dyad. The demonstrated pyran synthase activity of SalBIII further extends the impressive catalytic versatility of α+β barrel fold proteins.
四氢吡喃环是复杂聚酮类天然产物的常见特征,但关于其形成的酶学仍有许多有待了解之处。来自盐霉素生物合成途径的SalBIII酶类似于MonB家族的其他聚醚环氧化物水解酶/环化酶,但SalBIII在传统的开环/闭环级联反应中不起作用。salBIII基因的突变产生了一种未形成A环的代谢产物。将这种体外代谢产物用作底物类似物,已证明SalBIII可形成吡喃A环。我们已经确定了SalBIII的X射线晶体结构,对假定活性位点残基进行的结构导向诱变已确定Asp38和Asp104是必需的催化二元组。SalBIII已证明的吡喃合酶活性进一步扩展了α+β桶状折叠蛋白令人印象深刻的催化多功能性。