Adak Sanjoy, Ye Naike, Calderone Logan A, Schäfer Rebecca J B, Lukowski April L, Pandelia Maria-Eirini, Drennan Catherine L, Moore Bradley S
Center for Marine Biotechnology and Biomedicine, Scripps Institution of Oceanography, University of California San Diego, La Jolla, California 92093, United States.
Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 01239, United States.
bioRxiv. 2023 Aug 3:2023.08.03.551874. doi: 10.1101/2023.08.03.551874.
Nitriles are uncommon in nature and are typically constructed from oximes via the oxidative decarboxylation of amino acid substrates or from the derivatization of carboxylic acids. Here we report a third strategy of nitrile biosynthesis featuring the cyanobacterial nitrile synthase AetD. During the biosynthesis of the 'eagle-killing' neurotoxin, aetokthonotoxin, AetD converts the alanyl side chain of 5,7-dibromo-L-tryptophan to a nitrile. Employing a combination of structural, biochemical, and biophysical techniques, we characterized AetD as a non-heme diiron enzyme that belongs to the emerging Heme Oxygenase-like Diiron Oxidase and Oxygenase (HDO) superfamily. High-resolution crystal structures of AetD together with the identification of catalytically relevant products provide mechanistic insights into how AetD affords this unique transformation that we propose proceeds via an aziridine intermediate. Our work presents a new paradigm for nitrile biogenesis and portrays a substrate binding and metallocofactor assembly mechanism that may be shared among other HDO enzymes.
腈类在自然界中并不常见,通常是通过氨基酸底物的氧化脱羧作用由肟类构建而成,或者由羧酸衍生而来。在此,我们报道了一种以蓝细菌腈合酶AetD为特征的腈生物合成的第三种策略。在“杀鹰”神经毒素——刺尾鱼毒素的生物合成过程中,AetD将5,7-二溴-L-色氨酸的丙氨酰侧链转化为腈。我们运用结构、生化和生物物理技术相结合的方法,将AetD鉴定为一种非血红素二铁酶,它属于新兴的类血红素加氧酶二铁氧化酶和加氧酶(HDO)超家族。AetD的高分辨率晶体结构以及催化相关产物的鉴定,为AetD如何实现这种独特的转化提供了机制上的见解,我们认为这种转化是通过氮杂环丙烷中间体进行的。我们的工作为腈生物合成提出了一种新的模式,并描绘了一种可能为其他HDO酶所共有的底物结合和金属辅因子组装机制。