Center for Synthetic and Systems Biology, School of Life Sciences, Tsinghua University, Beijing, China.
Tsinghua-Peking Center for Life Sciences, Beijing, China.
Nat Commun. 2021 Mar 3;12(1):1411. doi: 10.1038/s41467-021-21654-x.
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.
具有双功能动态调控酶表达能力的基因编程电路对于各种生物制造目的具有深远的意义。然而,由于缺乏鲁棒性,在代谢工程中构建具有对数后期响应和可扩展性的生物开关仍然是一个挑战。在这里,我们报告了一种稳健的热敏生物开关,它可以实现基因表达在时间和水平上的严格双向控制。基于该生物开关,我们得到了具有空间分布模式的树木年轮状菌落和在工程大肠杆菌中球形、杆形和纤维形之间转换的变形细胞。此外,还进行了分批补料发酵重组大肠杆菌,以获得包括 3-羟基丁酸和 4-羟基丁酸的嵌段共聚物和无规共聚物在内的定制生物聚合物聚羟基烷酸酯的有序组装,其单体摩尔分数可控。这项研究展示了通过重新编程微生物在分子水平上进行有组织的、类似化学合成的嵌段聚合的可能性,为各种实际用途的热响应控制的多功能性提供了例证。