Engineering low-salt growth Halomonas Bluephagenesis for cost-effective bioproduction combined with adaptive evolution

盐单胞菌属 嗜盐菌 生物生产 羟基烷酸 操纵子 生物化学 聚羟基丁酸酯 代谢工程 重组DNA 生物 基因 四氢嘧啶 化学 细菌 大肠杆菌 渗透调节剂 遗传学 氨基酸 脯氨酸
作者
Lizhan Zhang,Yina Lin,Xueqing Yi,Wuzhe Huang,Qitiao Hu,Zhongnan Zhang,Fuqing Wu,Jianwen Ye,Guo‐Qiang Chen
出处
期刊:Metabolic Engineering [Elsevier BV]
卷期号:79: 146-158 被引量:18
标识
DOI:10.1016/j.ymben.2023.08.001
摘要

Halophilic Halomonas bluephagenesis has been engineered to produce various added-value bio-compounds with reduced costs. However, the salt-stress regulatory mechanism remained unclear. H. bluephagenesis was randomly mutated to obtain low-salt growing mutants via atmospheric and room temperature plasma (ARTP). The resulted H. bluephagenesis TDH4A1B5 was constructed with the chromosomal integration of polyhydroxyalkanoates (PHA) synthesis operon phaCAB and deletion of phaP1 gene encoding PHA synthesis associated protein phasin, forming H. bluephagenesis TDH4A1B5P, which led to increased production of poly(3-hydroxybutyrate) (PHB) and poly(3-hydroxybutyrate-co-4-hydrobutyrate) (P34HB) by over 1.4-fold. H. bluephagenesis TDH4A1B5P also enhanced production of ectoine and threonine by 50% and 77%, respectively. A total 101 genes related to salinity tolerance was identified and verified via comparative genomic analysis among four ARTP mutated H. bluephagenesis strains. Recombinant H. bluephagenesis TDH4A1B5P was further engineered for PHA production utilizing sodium acetate or gluconate as sole carbon source. Over 33% cost reduction of PHA production could be achieved using recombinant H. bluephagenesis TDH4A1B5P. This study successfully developed a low-salt tolerant chassis H. bluephagenesis TDH4A1B5P and revealed salt-stress related genes of halophilic host strains.
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