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Reversible thermal regulation for bifunctional dynamic control of gene expression in Escherichia coli.


ABSTRACT: Genetically programmed circuits allowing bifunctional dynamic regulation of enzyme expression have far-reaching significances for various bio-manufactural purposes. However, building a bio-switch with a post log-phase response and reversibility during scale-up bioprocesses is still a challenge in metabolic engineering due to the lack of robustness. Here, we report a robust thermosensitive bio-switch that enables stringent bidirectional control of gene expression over time and levels in living cells. Based on the bio-switch, we obtain tree ring-like colonies with spatially distributed patterns and transformer cells shifting among spherical-, rod- and fiber-shapes of the engineered Escherichia coli. Moreover, fed-batch fermentations of recombinant E. coli are conducted to obtain ordered assembly of tailor-made biopolymers polyhydroxyalkanoates including diblock- and random-copolymer, composed of 3-hydroxybutyrate and 4-hydroxybutyrate with controllable monomer molar fraction. This study demonstrates the possibility of well-organized, chemosynthesis-like block polymerization on a molecular scale by reprogrammed microbes, exemplifying the versatility of thermo-response control for various practical uses.

SUBMITTER: Wang X 

PROVIDER: S-EPMC7930084 | biostudies-literature | 2021 Mar

REPOSITORIES: biostudies-literature

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Reversible thermal regulation for bifunctional dynamic control of gene expression in Escherichia coli.

Wang Xuan X   Han Jia-Ning JN   Zhang Xu X   Ma Yue-Yuan YY   Lin Yina Y   Wang Huan H   Li Dian-Jie DJ   Zheng Tao-Ran TR   Wu Fu-Qing FQ   Ye Jian-Wen JW   Chen Guo-Qiang GQ  

Nature communications 20210303 1


Genetically programmed circuits allowing bifunctional dynamic regulation of enzyme expression have far-reaching significances for various bio-manufactural purposes. However, building a bio-switch with a post log-phase response and reversibility during scale-up bioprocesses is still a challenge in metabolic engineering due to the lack of robustness. Here, we report a robust thermosensitive bio-switch that enables stringent bidirectional control of gene expression over time and levels in living ce  ...[more]

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