Wang Kairui, Liu Ning, Shang Fei, Huang Jiao, Yan Bingfa, Liu Minghao, Huang Ying
State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China.
College of Life Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.
Microorganisms. 2021 Oct 20;9(11):2187. doi: 10.3390/microorganisms9112187.
Our previous research has demonstrated a promising capacity of streptomycetes isolated from red soils to produce novel secondary metabolites, most of which, however, remain to be explored. Co-culturing with mycolic acid-containing bacteria (MACB) has been used successfully in activating the secondary metabolism in . Here, we co-cultured 44 strains of red soil-derived streptomycetes with four MACB of different species in a pairwise manner and analyzed the secondary metabolites. The results revealed that each of the MACB strains induced changes in the metabolite profiles of 35-40 streptomycetes tested, of which 12-14 streptomycetes produced "new" metabolites that were not detected in the pure cultures. Moreover, some of the co-cultures showed additional or enhanced antimicrobial activity compared to the pure cultures, indicating that co-culture may activate the production of bioactive compounds. From the co-culture-induced metabolites, we identified 49 putative new compounds. Taking the co-culture of sp. FXJ1.264 and sp. HX09-1 as a case, we further explored the underlying mechanism of co-culture activation and found that it most likely relied on direct physical contact between the two living bacteria. Overall, our results verify co-culture with MACB as an effective approach to discover novel natural products from red soil-derived streptomycetes.
我们之前的研究表明,从红壤中分离出的链霉菌具有产生新型次生代谢产物的潜力,然而,其中大多数仍有待探索。与含分枝菌酸的细菌(MACB)共培养已成功用于激活链霉菌的次生代谢。在此,我们将44株源自红壤的链霉菌与4种不同物种的MACB进行两两共培养,并分析其次生代谢产物。结果显示,每株MACB菌株都能诱导35 - 40株受试链霉菌的代谢产物谱发生变化,其中12 - 14株链霉菌产生了在纯培养物中未检测到的“新”代谢产物。此外,与纯培养物相比,一些共培养物表现出额外的或增强的抗菌活性,这表明共培养可能会激活生物活性化合物的产生。从共培养诱导产生的代谢产物中,我们鉴定出49种假定的新化合物。以链霉菌属FXJ1.264和HX09 - 1的共培养为例,我们进一步探究了共培养激活的潜在机制,发现其很可能依赖于两种活细菌之间的直接物理接触。总体而言,我们的结果证实与MACB共培养是从源自红壤的链霉菌中发现新型天然产物的有效方法。