Tian Jun, Chen Haiyan, Guo Zhengyan, Liu Ning, Li Jine, Huang Ying, Xiang Wensheng, Chen Yihua
College of Life Science, Northeast Agricultural University, Harbin, Henlongjian Province, 150030, People's Republic of China.
State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing, 100101, People's Republic of China.
Appl Microbiol Biotechnol. 2016 May;100(9):4189-99. doi: 10.1007/s00253-015-7248-z. Epub 2016 Jan 12.
Many novel microbial nature products were discovered from Actinobacteria by genome mining methods. However, only a few number of genome mining works were carried out in rare actinomycetes. An important reason precluding the genome mining efforts in rare actinomycetes is that most of them are recalcitrant to genetic manipulation. Herein, we chose the rare marine actinomycete Streptosporangium sp. CGMCC 4.7309 to explore its secondary metabolite diversity by genome mining. The genetic manipulation method has never been established for Streptosporangium strains. At first, we set up the genetic system of Streptosporangium sp. CGMCC 4.7309 unprecedentedly. The draft genome sequencing of Streptosporangium sp. CGMCC 4.7309 revealed that it contains more than 20 cryptic secondary metabolite biosynthetic clusters. A type II polyketide synthases-containing cluster (the hex cluster) was predicted to encode compounds with a pentangular polyphenol scaffold by in silico analysis. The products of the hex cluster were uncovered by comparing the metabolic profile of Streptosporangium sp. CGMCC 4.7309 with that of the hex30 inactivated mutant, in which a key ketoreductase gene was disrupted. Finally, three pentangular polyphenols were isolated and named as hexaricins A (1), B (2), and C (3). The inconsistency of the stereochemistry of C-15 in hexaricins A, B, and C indicates a branch point in their biosynthesis. Finally, the biosynthetic pathway of the hexaricins was proposed based on bioinformatics analysis.
通过基因组挖掘方法,从放线菌中发现了许多新型微生物天然产物。然而,在稀有放线菌中开展的基因组挖掘工作却很少。阻碍在稀有放线菌中进行基因组挖掘的一个重要原因是,它们中的大多数对基因操作具有抗性。在此,我们选择了稀有海洋放线菌链孢囊菌属菌株CGMCC 4.7309,通过基因组挖掘来探索其次级代谢产物的多样性。链孢囊菌属菌株的基因操作方法从未建立过。首先,我们前所未有的建立了链孢囊菌属菌株CGMCC 4.7309的遗传系统。链孢囊菌属菌株CGMCC 4.7309的基因组草图测序显示,它包含20多个隐秘的次级代谢产物生物合成簇。通过计算机分析预测,一个含有II型聚酮合酶的簇(hex簇)编码具有五角形多酚支架的化合物。通过比较链孢囊菌属菌株CGMCC 4.7309与hex30失活突变体(其中一个关键的酮还原酶基因被破坏)的代谢谱,发现了hex簇的产物。最后,分离出三种五角形多酚,并将其命名为六烯菌素A(1)、B(2)和C(3)。六烯菌素A、B和C中C-15立体化学的不一致表明了它们生物合成中的一个分支点。最后,基于生物信息学分析提出了六烯菌素的生物合成途径。