Key Laboratory of Marine Drugs, Ministry of Education, School of Medicine and Pharmacy, Ocean University of China, 266003 Qingdao, China.
Laboratory for Marine Drugs and Bioproducts of Qingdao National Laboratory for Marine Science and Technology, 266237 Qingdao, China.
J Am Chem Soc. 2020 Sep 16;142(37):16031-16038. doi: 10.1021/jacs.0c07331. Epub 2020 Sep 1.
Macrolactins (MLNs) are a class of important antimacular degeneration and antitumor agents. Malonylated/succinylated MLNs are even more important due to their efficacy in overcoming multi-drug-resistant bacteria. However, which enzyme catalyzes this reaction remains enigmatic. Herein, we deciphered a β-lactamase homologue BmmI to be responsible for this step. BmmI could specifically attach C3-C5 alkyl acid thioesters onto 7-OH of MLN A and also exhibits substrate promiscuity toward acyl acceptors with different scaffolds. The crystal structure of BmmI covalently linked to the succinyl group and systematic mutagenesis highlighted the role of oxyanion holelike geometry in the recognition of carboxyl-terminated acyl donors. The engineering of this geometry expanded its substrate scope, with the R166A/G/Q variants recognizing up to C12 alkyl acid thioester. The structure of BmmI with acyl acceptor MLN A revealed the importance of Arg292 in the recognition of macrolide substrates. Moreover, the mechanism of the BmmI-catalyzed acyltransfer reaction was established, unmasking the deft role of Lys76 in governing acyl donors as well as catalysis. Our studies uncover the delicate mechanism underlying the substrate selectivity of acyltransferases, which would guide rational enzyme engineering for drug development.
大环内酯类化合物(MLNs)是一类重要的抗黄斑变性和抗肿瘤药物。由于其克服多药耐药菌的功效,丙二酰基/琥珀酰基 MLNs 更为重要。然而,哪种酶催化了这种反应仍然是个谜。在此,我们破译了一种β-内酰胺酶同源物 BmmI,它负责这一步骤。BmmI 可以特异性地将 C3-C5 烷基酸硫酯连接到 MLN A 的 7-OH 上,并且对具有不同支架的酰基受体也表现出底物的混杂性。BmmI 与琥珀酰基共价连接的晶体结构和系统突变凸显了氧阴离子空穴几何形状在识别羧基末端酰基供体中的作用。这种几何形状的工程化扩展了其底物范围,R166A/G/Q 变体可识别多达 C12 烷基酸硫酯。与酰基受体 MLN A 的 BmmI 结构揭示了 Arg292 在识别大环内酯底物中的重要性。此外,建立了 BmmI 催化的酰基转移反应的机制,揭示了 Lys76 在控制酰基供体以及催化中的灵巧作用。我们的研究揭示了酰基转移酶底物选择性的微妙机制,这将为药物开发的合理酶工程提供指导。