聚羟基丁酸酯
光遗传学
调节器
代谢工程
抑制因子
生物
细胞生物学
焊剂(冶金)
合成生物学
基因
生物化学
化学
基因表达
遗传学
神经科学
有机化学
细菌
作者
Sumeng Wang,Yue Luo,Wei Jiang,Xiaomeng Li,Qingsheng Qi,Quanfeng Liang
出处
期刊:Molecules
[Multidisciplinary Digital Publishing Institute]
日期:2022-01-18
卷期号:27 (3): 617-617
被引量:4
标识
DOI:10.3390/molecules27030617
摘要
Several strategies, including inducer addition and biosensor use, have been developed for dynamical regulation. However, the toxicity, cost, and inflexibility of existing strategies have created a demand for superior technology. In this study, we designed an optogenetic dual-switch system and applied it to increase polyhydroxybutyrate (PHB) production. First, an optimized chromatic acclimation sensor/regulator (RBS10-CcaS#10-CcaR) system (comprising an optimized ribosomal binding site (RBS), light sensory protein CcaS, and response regulator CcaR) was selected for a wide sensing range of approximately 10-fold between green-light activation and red-light repression. The RBS10-CcaS#10-CcaR system was combined with a blue light-activated YF1-FixJ-PhlF system (containing histidine kinase YF1, response regulator FixJ, and repressor PhlF) engineered with reduced crosstalk. Finally, the optogenetic dual-switch system was used to rewire the metabolic flux for PHB production by regulating the sequences and intervals of the citrate synthase gene (gltA) and PHB synthesis gene (phbCAB) expression. Consequently, the strain RBS34, which has high gltA expression and a time lag of 3 h, achieved the highest PHB content of 16.6 wt%, which was approximately 3-fold that of F34 (expressed at 0 h). The results indicate that the optogenetic dual-switch system was verified as a practical and convenient tool for increasing PHB production.
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