代谢工程
合成生物学
生物技术
生化工程
大肠杆菌
可持续生产
酶
可再生能源
生物
生物化学
代谢途径
生物催化
生物制药
生物过程
蛋白质工程
工业生物技术
转基因生物
化学
渲染(计算机图形)
基因工程
细菌菌株
生产(经济)
生物反应器
食品科学
计算生物学
定向进化
细菌
异源的
生产成本
作者
Z Li,Rui Lu,Junsong Xiao,J F Zhang,Qi Wang,Dawei Ni,Yingying Zhu,Wanmeng Mu
标识
DOI:10.1021/acssynbio.6c00286
摘要
Indigoidine, a novel blue microbial pigment with excellent dyeing performance, emerges as a sustainable alternative to synthetic dyes. However, prevailing plasmid-based production systems suffer from genetic instability and reliance on antibiotic selection, rendering them incompatible with green industrial manufacturing. In this study, we developed a genetically stable, plasmid-free Escherichia coli biocatalyst to drive the green synthesis of indigoidine utilizing glycerol, a renewable and abundant feedstock. First, CRISPR-based multicopy integration was employed to enhance expression of the key enzymes including indigoidine synthase and its phosphopantetheinyl transferase. Furthermore, to improve precursor supply, functionally analogous enzymes from different microbial sources were screened. Subsequently, to address the challenge of modifying the TCA cycle, a protein degradation tag system was introduced and the strength of specific genomic promoters was attenuated, two strategies that acted synergistically. Engineering of the NADPH regeneration pathway effectively elevated energy precursor pools, while knockout of acetate pathways alleviated metabolic stress. Ultimately, the optimal strain MIG41 achieved indigoidine titers of 6.09 g/L in shake flasks and 35.21 g/L in a 5 L fed-batch fermentation, with a productivity of 0.73 g/L/h. Moreover, the purified indigoidine exhibited excellent dyeing performance. Ultimately, this work provides a robust, scalable microbial cell factory platform for the sustainable, high-yield production of eco-friendly dyes.
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