Engineering the growth pattern and cell morphology for enhanced PHB production by Escherichia coli

被引:0
作者
Hong Wu
Jinchun Chen
Guo-Qiang Chen
机构
[1] Tsinghua University,Center for Synthetic and Systems Biology, School of Life Science, Tsinghua
[2] Tsinghua University,Peking Center for Life Sciences
[3] Tsinghua University,Center for Nano and Micro Mechanics
来源
Applied Microbiology and Biotechnology | 2016年 / 100卷
关键词
Polyhydroxyalkanoates; PHB; Cell morphology; Division pattern; Morphology engineering; Synthetic biology;
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中图分类号
学科分类号
摘要
E. coli JM109∆envC∆nlpD deleted with genes envC and nlpD responsible for degrading peptidoglycan (PG) led to long filamentous cell shapes. When cell fission ring location genes minC and minD of Escherichia coli were deleted, E. coli JM109∆minCD changed the cell growth pattern from binary division to multiple fissions. Bacterial morphology can be further engineered by overexpressing sulA gene resulting in inhibition on FtsZ, thus generating very long cellular filaments. By overexpressing sulA in E. coli JM109∆envC∆nlpD and E. coli JM109∆minCD harboring poly(3-hydroxybutyrate) (PHB) synthesis operon phbCAB encoded in plasmid pBHR68, respectively, both engineered cells became long filaments and accumulated more PHB compared with the wild-type. Under same shake flask growth conditions, E. coli JM109∆minCD (pBHR68) overexpressing sulA grown in multiple fission pattern accumulated approximately 70 % PHB in 9 g/L cell dry mass (CDM), which was significantly higher than E. coli JM109∆envC∆nlpD and the wild type, that produced 7.6 g/L and 8 g/L CDM containing 64 % and 51 % PHB, respectively. Results demonstrated that a combination of the new division pattern with elongated shape of E. coli improved PHB production. This provided a new vision on the enhanced production of inclusion bodies.
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页码:9907 / 9916
页数:9
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