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Genome mining and biosynthesis of kitacinnamycins as a STING activator

机译:基他霉素的基因组挖掘和生物合成作为STING激活剂

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摘要

Cinnamoyl-containing nonribosomal peptides (CCNPs) are a small group of secondary metabolites with potent biological activities produced by actinobacteria. Two remarkable features in the biosynthesis of CCNPs include the nonribosomal peptide synthases (NRPSs) for assembly of the depsipeptide backbone and the type II polyketide synthases (PKSs) for N-terminal cinnamoyl moiety construction. Here, we present a genome mining approach targeting both NRPS and type II PKS for discovery of new CCNPs, which led to the identification of 51 putative CCNP gene clusters from public bacterial genome databases. After strain prioritization, a novel class of CCNP-type glycopeptides named kitacinnamycins, one of which showing potent activation ability towards the stimulator of interferon genes (STING) protein, was identified. Bioinformatic, genetic and biochemical analysis revealed the use of the NRPS assembly line to form the macrocyclic peptide backbone, followed by a P450 monooxygenase to generate terminal oxidized groups. A glycosyltransferase with relatively broad substrate specificity transfers sugars to the newly generated OH/COOH group. The protein crystallographic study further provided structural insights into this glycosylation. Our results not only demonstrated the feasibility of genome mining and strain prioritization for the discovery of new bioactive natural products but also disclosed the biosynthetic pathway for kitacinnamycins.
机译:含肉桂酰基的非核糖体肽(CCNPs)是一小组次生代谢产物,具有由放线菌产生的强大生物活性。 CCNPs生物合成中的两个显着特征包括用于组装短肽主链的非核糖体肽合酶(NRPS)和用于N端肉桂酰基结构的II型聚酮化合物合酶(PKS)。在这里,我们提出了一种针对NRPS和II型PKS的基因组挖掘方法,用于发现新的CCNP,从而从公共细菌基因组数据库中鉴定出51个假定的CCNP基因簇。在确定菌株的优先级后,鉴定出一类新的CCNP型糖肽,称为喜树霉素,其中一种对干扰素基因(STING)蛋白的刺激物显示出强大的激活能力。生物信息学,遗传和生化分析表明,使用NRPS装配线形成大环肽主链,然后使用P450单加氧酶生成末端氧化基团。具有相对较宽的底物特异性的糖基转移酶将糖转移至新产生的OH / COOH基团。蛋白质晶体学研究进一步提供了这种糖基化的结构见解。我们的研究结果不仅证明了发现新生物活性天然产物的基因组挖掘和菌株优先级排序的可行性,而且还揭示了卡他那霉素的生物合成途径。

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