School of Chemistry and Biochemistry , Georgia Institute of Technology , Atlanta , Georgia 30332 , United States.
School of Chemical and Biomolecular Engineering , Georgia Institute of Technology , Atlanta , Georgia 30332 , United States.
Biochemistry. 2019 Feb 19;58(7):918-929. doi: 10.1021/acs.biochem.8b01177. Epub 2019 Jan 23.
Sequential enzymatic reactions on substrates tethered to carrier proteins (CPs) generate thiotemplated building blocks that are then delivered to nonribosomal peptide synthetases (NRPSs) to generate peptidic natural products. The underlying diversity of these thiotemplated building blocks is the principal driver of the chemical diversity of NRPS-derived natural products. Structural insights into recognition of CPs by tailoring enzymes that generate these building blocks are sparse. Here we present the crystal structure of a flavin-dependent prolyl oxidase that furnishes thiotemplated pyrrole as the product, in complex with its cognate CP in the holo and product-bound states. The thiotemplated pyrrole is an intermediate that is well-represented in natural product biosynthetic pathways. Our results delineate the interactions between the CP and the oxidase while also providing insights into the stereospecificity of the enzymatic oxidation of the prolyl heterocycle to the aromatic pyrrole. Biochemical validation of the interaction between the CP and the oxidase demonstrates that NRPSs recognize and bind to their CPs using interactions quite different from those of fatty acid and polyketide biosynthetic enzymes. Our results posit that structural diversity in natural product biosynthesis can be, and is, derived from subtle modifications of primary metabolic enzymes.
在与载体蛋白 (CP) 相连的底物上进行连续酶反应,生成硫模板构建块,然后将其递送至非核糖体肽合成酶 (NRPS) 以生成肽类天然产物。这些硫模板构建块的基本多样性是 NRPS 衍生天然产物化学多样性的主要驱动因素。关于生成这些构建块的修饰酶识别 CP 的结构见解很少。在这里,我们展示了黄素依赖性脯氨酰氧化酶的晶体结构,该酶提供硫模板化吡咯作为产物,与全酶和产物结合状态下的同源 CP 形成复合物。硫模板化吡咯是天然产物生物合成途径中很好代表的中间产物。我们的结果描绘了 CP 和氧化酶之间的相互作用,同时也提供了对脯氨酸杂环酶促氧化为芳香吡咯的立体特异性的深入了解。CP 和氧化酶之间相互作用的生化验证表明,NRPS 使用与脂肪酸和聚酮化合物生物合成酶截然不同的相互作用来识别和结合它们的 CP。我们的结果表明,天然产物生物合成中的结构多样性可以并且确实源自对初级代谢酶的细微修饰。