4.8 Article

Enhanced regulation of prokaryotic gene expression by a eukaryotic transcriptional activator

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-021-24434-9

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资金

  1. University of Utah startup funds
  2. National Science Foundation CAREER Program [CBET-1554017]
  3. Office of Naval Research Young Investigator Program [N00014-16-1-3012]
  4. National Institute of Health Trailblazer Award [1R21EB025413-01]
  5. National Institutes of Health Director New Innovator Award [1DP2CA250006-01]
  6. University of Utah Flow Cytometry Facility - National Cancer Institute [5P30CA042014-24]
  7. National Center for Research of the National Institutes of Health [1S10RR026802-01]

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Expansion of genetic toolkits for prokaryotic synthetic biology can enhance gene expression dynamics. Integrating the eukaryotic transcription factor QF into E. coli allows for the construction of genetic devices with complex functions.
Expanding the genetic toolbox for prokaryotic synthetic biology is a promising strategy for enhancing the dynamic range of gene expression and enabling new engineered applications for research and biomedicine. Here, we reverse the current trend of moving genetic parts from prokaryotes to eukaryotes and demonstrate that the activating eukaryotic transcription factor QF and its corresponding DNA-binding sequence can be moved to E. coli to introduce transcriptional activation, in addition to tight off states. We further demonstrate that the QF transcription factor can be used in genetic devices that respond to low input levels with robust and sustained output signals. Collectively, we show that eukaryotic gene regulator elements are functional in prokaryotes and establish a versatile and broadly applicable approach for constructing genetic circuits with complex functions. These genetic tools hold the potential to improve biotechnology applications for medical science and research. Expanded toolkits for prokaryotic synthetic biology can enhance the dynamic range of gene expression. Here the authors move the eukaryotic transcription factor QF into E. coli and integrate it into genetic devices.

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