Yun Wang, Jiangtao Zhang, Dr. Ran Shi, Siyuan Zhou, Prof. Shigui Chen, Dr. Ruofei Li, Dr. Wei Huang, Prof. Hai-Yan He
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引用次数: 0
摘要
n -硝基甘氨酸(NNG)是一种罕见的天然硝胺化合物,是已知的唯一由链霉菌菌株产生的例子。本研究明确了NNG的生物合成来源于甘氨酸和赖氨酸,并阐明了其生物合成基因簇(BGC) NNG。该簇与最近报道的重氮化合物氮杂塞氨酸的BGCs具有高度同源性。体内和体外实验结果表明,NNG生物合成途径涉及肼和腙的生成,非血红素二铁n-加氧酶和细胞色素P450负责形成硝胺结构。此外,尽管NNG在结构中缺少丝氨酸单元,但其生物合成仍然需要通过非核糖体肽合成酶(NRPS)将丝氨酸结合到腙中间体上,类似于氮杂塞氨酸途径,并且推测有两种水解酶分别参与硫酯水解和丝氨酸去除。这项研究,以及与氮杂塞菌素生物合成的比较,不仅为通过基因组挖掘发现新的硝胺和重氮化合物铺平了道路,而且还强调了发现涉及腙氧化的新酶和化学的潜力。
Nitramine Formation via a Cryptic Non-Ribosomal Peptide Synthetase-Dependent Strategy in N-Nitroglycine Biosynthesis
N-nitroglycine (NNG), a rare nitramine natural compound, is the only known example produced by streptomyces strains. In this study, we clarified that NNG biosynthesis originates from glycine and l-lysine and elucidated its biosynthetic gene cluster (BGC) nng. This cluster shares high homology with the recently reported BGCs of diazo compound azaserine. In vivo and in vitro results have indicated NNG biosynthetic pathway involves hydrazine and hydrazone generation, with a non-heme diiron N-oxygenase and a cytochrome P450 responsible for forming the nitramine structure. Furthermore, although NNG lacks a serine unit in the structure, its biosynthesis still requires the incorporation of a serine attached to the hydrazone intermediate by non-ribosomal peptide synthetase (NRPS), similar to the azaserine pathway, and two hydrolases are putatively involved in thioester hydrolysis and serine removal, respectively. This study, along with comparisons to azaserine biosynthesis, not only paves the way for the discovery of new nitramine and diazo compounds by genome mining but also highlights the potential for uncovering novel enzymes and chemistry involved in hydrazone oxidation.