Engineering the biosynthesis of natural lipopeptide octapeptins in Paenibacillus elgii 219 to combat multidrug-resistant

生物合成 脂肽 化学 发酵 拟杆菌 突变体 生物化学 多粘菌拟杆菌 产量(工程) 蛋白质工程 抗菌剂 脱水酶 高通量筛选 突变 微生物学 莎梵婷 代谢工程 细菌 定向进化 抗菌肽 合理设计 溶菌酶 串联质谱法 效价 枯草芽孢杆菌 组合化学
作者
Guangxin Yang,Sheng Huang,Xinchan Wang,Xiuliang Ding,Feiyun Yang,Jinxiu Huang,Aihua Deng,Xiangfang Zeng,Shiyan Qiao,Haitao Yu
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:528: 172458-172458
标识
DOI:10.1016/j.cej.2025.172458
摘要

The escalating global antimicrobial resistance crisis underscores the urgent need for novel antibiotics. Here, Paenibacillus elgii 219 is identified as an efficient producer of octapeptins (B2, B3, A1 and B1) by nuclear magnetic resonance and tandem mass spectrometry. These octapeptins exhibited broad-spectrum antibacterial activity, high stability under extreme pH, temperature, and enzymatic conditions, and without cytotoxicity. These promising bioactivity and stability profiles, underscore the need to optimize methods to increase octapeptins yields to unlock their application prospects. Initial fermentation optimization markedly augmented the total octapeptins yield by 32-fold, achieving 1.0 g/L; Atmospheric and room temperature plasma mutagenesis and chromogenic screening picked a superior mutant with a 75 % higher octapeptins titer (1.7 g/L), as confirmed by transcriptomic analysis. Targeted knockout of glycosyltransferases GTp4383 and GTp5312 reduced broth viscosity and increased the total octapeptins titer to 2.3 g/L, and further scaled up to 3.94 g/L in fed-batch fermentation. This integrated approach establishes a scalable platform for high-yield octapeptins production, highlighting its potential as a next-generation anti-resistance agent. • Discovery and Characterization of Novel Octapeptins with Excellent Antimicrobial Properties and Stability. • Systematic Fermentation Optimization Boosts Octapeptin Yield by 32-Fold. • Development of a High-Throughput Screening Method and Isolation of a High-Yield Mutant via ARTP Mutagenesis. • Targeted Genetic Engineering Reduces Broth Viscosity and Further Enhances Production.
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