Department of Structural Biology, The Jacobs School of Medicine & Biomedical Sciences, State University of New York at Buffalo, 955 Main Street, Buffalo, NY, 14203, USA.
Department of Chemistry, Johns Hopkins University, 3400 North Charles Street, Baltimore, MD, 21218, USA.
Nat Commun. 2019 Aug 27;10(1):3868. doi: 10.1038/s41467-019-11740-6.
Nonribosomal peptide synthetases (NRPSs) underlie the biosynthesis of many natural products that have important medicinal utility. Protection of the NRPS peptide products from proteolysis is critical to these pathways and is often achieved by structural modification, principally the introduction of D-amino acid residues into the elongating peptide. These amino acids are generally formed in situ from their L-stereoisomers by epimerization domains or dual-function condensation/epimerization domains. In singular contrast, the thioesterase domain of nocardicin biosynthesis mediates both the effectively complete L- to D-epimerization of its C-terminal amino acid residue (≥100:1) and hydrolytic product release. We report herein high-resolution crystal structures of the nocardicin thioesterase domain in ligand-free form and reacted with a structurally precise fluorophosphonate substrate mimic that identify the complete peptide binding pocket to accommodate both stereoisomers. These structures combined with additional functional studies provide detailed mechanistic insight into this unique dual-function NRPS domain.
非核糖体肽合成酶(NRPSs)是许多具有重要药用价值的天然产物生物合成的基础。保护 NRPS 肽产物免受蛋白水解至关重要,这通常通过结构修饰来实现,主要是将 D-氨基酸残基引入延长肽中。这些氨基酸通常通过差向异构酶域或双功能缩合/差向异构酶域从其 L-对映异构体原位形成。相比之下,诺卡菌素生物合成的硫酯酶结构域介导其 C 末端氨基酸残基(≥100:1)的有效完全 L 到 D-差向异构化以及水解产物的释放。我们在此报告了诺卡菌素硫酯酶结构域在无配体形式和与结构精确的氟膦酸酯底物类似物反应的高分辨率晶体结构,该结构确定了完整的肽结合口袋以容纳两种立体异构体。这些结构与其他功能研究相结合,为这个独特的双功能 NRPS 结构域提供了详细的机制见解。