State Key Laboratory of Developmental Biology of Freshwater Fish, Hunan Provincial Key Laboratory of Microbial Molecular Biology, College of Life Science, Hunan Normal University, Changsha, 410081, People's Republic of China.
Appl Microbiol Biotechnol. 2019 Sep;103(18):7647-7662. doi: 10.1007/s00253-019-10019-6. Epub 2019 Jul 27.
Lipopeptides (such as iturin, fengycin, and surfactin) from Bacillus possess antibacterial, antifungal, and antiviral activities and have important application in agriculture and pharmaceuticals. Although unremitting efforts have been devoted to improve lipopeptide production by designing gene regulatory circuits or optimizing fermentation process, little attention has been paid to utilizing multi-omics for systematically mining core genes and proteins during the bacterial growth cycle. Here, lipopeptide bacillomycin Lb from new Bacillus amyloliquefaciens X030 was isolated and first found to have anticancer activity in various cancer cells (such as SMMC-7721 and MDA-MB-231). A comprehensive genomic and growth proteomic analysis of X030 revealed bacillomycin Lb biosynthetic gene cluster, key enzymes and potential regulatory proteins (PerR, PhoP, CcpA, and CsfB), and novel links between primary metabolism and bacillomycin Lb production in X030. The antitumor activity of the fermentation supernatant supplemented with amino acids (such as glutamic acid) and sucrose was significantly increased, verifying the role of key metabolic switches in the metabolic regulatory network. Quantitative real-time PCR analysis confirmed that 7 differential expressed genes exhibited a positive correlation between changes at transcriptional and translational levels. The study not only will stimulate the deeper and wider antitumor study of lipopeptides but also provide a comprehensive database, which promotes an in-depth analysis of pathways and networks for complex events in lipopeptide biosynthesis and regulation and gives great help in improving the yield of bacillomycin Lb (media optimization, genetic modification, or pathway engineering).
脂肽(如伊枯草菌素、丰原素和表面活性剂)来源于芽孢杆菌,具有抗菌、抗真菌和抗病毒活性,在农业和制药领域有重要应用。尽管人们一直在不懈努力,通过设计基因调控回路或优化发酵工艺来提高脂肽的产量,但很少有人关注利用多组学系统地挖掘细菌生长周期中核心基因和蛋白。在这里,我们从新的解淀粉芽孢杆菌 X030 中分离出脂肽芽孢杆菌素 Lb,并首次发现其在多种癌细胞(如 SMMC-7721 和 MDA-MB-231)中具有抗癌活性。对 X030 的全基因组和生长蛋白质组学分析揭示了芽孢杆菌素 Lb 生物合成基因簇、关键酶和潜在的调节蛋白(PerR、PhoP、CcpA 和 CsfB),以及 X030 中初生代谢物与芽孢杆菌素 Lb 生产之间的新联系。补充了氨基酸(如谷氨酸)和蔗糖的发酵上清液的抗肿瘤活性显著增加,验证了关键代谢开关在代谢调节网络中的作用。定量实时 PCR 分析证实,7 个差异表达基因在转录和翻译水平的变化之间呈正相关。该研究不仅将刺激对脂肽更深更广的抗肿瘤研究,还提供了一个全面的数据库,促进了对脂肽生物合成和调控复杂事件的途径和网络的深入分析,并在提高芽孢杆菌素 Lb 的产量方面提供了很大的帮助(培养基优化、遗传修饰或途径工程)。