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Predicting the chemical space of fungal polyketides by phylogeny-based bioinformatics analysis of polyketide synthase-nonribosomal peptide synthetase and its modification enzymes

机译:通过聚酮合成酶 - 非纤维素肽合成酶及其改性酶的系统基于系统生物信息分析预测真菌聚酮化学酯的化学空间及其改性酶

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Fungal polyketide synthase (PKS)–nonribosomal peptide synthetase (NRPS) hybrids are key enzymes for synthesizing structurally diverse hybrid natural products (NPs) with characteristic biological activities. Predicting their chemical space is of particular importance in the field of natural product chemistry. However, the unexplored programming rule of the PKS module has prevented prediction of its chemical structure based on amino acid sequences. Here, we conducted a phylogenetic analysis of 884 PKS–NRPS hybrids and a modification enzyme analysis of the corresponding biosynthetic gene cluster, revealing a hidden relationship between its genealogy and core structures. This unexpected result allowed us to predict 18 biosynthetic gene cluster (BGC) groups producing known carbon skeletons (number of BGCs; 489) and 11 uncharacterized BGC groups (171). The limited number of carbon skeletons suggests that fungi tend to select PK skeletons for survival during their evolution. The possible involvement of a horizontal gene transfer event leading to the diverse distribution of PKS–NRPS genes among fungal species is also proposed. This study provides insight into the chemical space of fungal PKs and the distribution of their biosynthetic gene clusters.
机译:真菌聚酮合成酶(PKS) - NONRIBOSOMAL肽合成酶(NRPS)杂种是合成具有特征生物活性的结构各种杂化天然产物(NPS)的关键酶。预测其化学空间在天然产品化学领域特别重要。然而,PKS模块的未开发规划规则已经防止了基于氨基酸序列的化学结构的预测。在这里,我们进行了884 PKS-NRPS杂交体的系统发育分析和相应的生物合成基因簇的修饰酶分析,揭示了其系族和核心结构之间的隐藏关系。这种意外的结果使我们可以预测产生已知碳骨架的18个生物合成基因簇(BGC)基团(BGCS的数量; 489)和11个无特征的BGC组(171)。有限数量的碳骨架表明真菌倾向于在其演变期间选择PK骨架进行生存。还提出了卧式基因转移事件导致真菌物种中PKS-NRPS基因多样化分布的可能涉及。本研究提供了对真菌PKS的化学空间的洞察力以及其生物合成基因簇的分布。

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