Matsui Nana, Kawakami Shizuka, Hamamoto Dai, Nohara Sayuri, Sunada Reina, Panbangred Watanalai, Igarashi Yasuhiro, Nihira Takuya, Kitani Shigeru
International Center for Biotechnology, Osaka University.
Department of Biotechnology, Faculty of Science, Mahidol University.
J Gen Appl Microbiol. 2021 Dec 31;67(6):240-247. doi: 10.2323/jgam.2021.04.001. Epub 2021 Sep 11.
Streptomycetes are characterized by their ability to produce structurally diverse compounds as secondary metabolites and by their complex developmental life cycle, which includes aerial mycelium formation and sporulation. The production of secondary metabolites is growth-stage dependent, and generally coincides with morphological development on a solid culture. Streptomyces sp. BB47 produces several types of bioactive compounds and displays a bald phenotype that is devoid of an aerial mycelium and spores. Here, we demonstrated by genome analysis and gene complementation experiments that the bald phenotype arises from the bldA gene, which is predicted to encode the Leu-tRNA molecule. Unlike the wild-type strain producing jomthonic acid A (1) and antarlide A (2), the strain complemented with a functional bldA gene newly produced milbemycin (3). The chemical structure of compound 3 was elucidated on the basis of various spectroscopic analyses, and was identified as milbemycin A, which is an insecticidal/acaricidal antibiotic. These results indicate that genetic manipulation of genes involved in morphological development in streptomycetes is a valuable way to activate cryptic biosynthetic pathways.
链霉菌的特点是能够产生结构多样的次生代谢产物,并且具有复杂的发育生命周期,包括气生菌丝体的形成和孢子形成。次生代谢产物的产生依赖于生长阶段,通常与固体培养上的形态发育同步。链霉菌BB47菌株产生几种类型的生物活性化合物,并表现出一种光秃表型,即没有气生菌丝体和孢子。在这里,我们通过基因组分析和基因互补实验证明,光秃表型源于bldA基因,该基因预计编码亮氨酸转运RNA分子。与产生乔蒙酸A(1)和安塔利德A(2)的野生型菌株不同,用功能性bldA基因互补的菌株新产生了米尔倍霉素(3)。基于各种光谱分析阐明了化合物3的化学结构,并鉴定为米尔倍霉素A,它是一种杀虫/杀螨抗生素。这些结果表明,对链霉菌中参与形态发育的基因进行基因操作是激活隐性生物合成途径的一种有价值的方法。