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Multidimensional characterization of inducible promoters and a highly light-sensitive LOV-transcription factor

Author

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  • Vojislav Gligorovski

    (École polytechnique fédérale de Lausanne (EPFL))

  • Ahmad Sadeghi

    (École polytechnique fédérale de Lausanne (EPFL))

  • Sahand Jamal Rahi

    (École polytechnique fédérale de Lausanne (EPFL))

Abstract

The ability to independently control the expression of different genes is important for quantitative biology. Using budding yeast, we characterize GAL1pr, GALL, MET3pr, CUP1pr, PHO5pr, tetOpr, terminator-tetOpr, Z3EV, blue-light inducible optogenetic systems El222-LIP, El222-GLIP, and red-light inducible PhyB-PIF3. We report kinetic parameters, noise scaling, impact on growth, and the fundamental leakiness of each system using an intuitive unit, maxGAL1. We uncover disadvantages of widely used tools, e.g., nonmonotonic activity of MET3pr and GALL, slow off kinetics of the doxycycline- and estradiol-inducible systems tetOpr and Z3EV, and high variability of PHO5pr and red-light activated PhyB-PIF3 system. We introduce two previously uncharacterized systems: strongLOV, a more light-sensitive El222 mutant, and ARG3pr, which is induced in the absence of arginine or presence of methionine. To demonstrate fine control over gene circuits, we experimentally tune the time between cell cycle Start and mitosis, artificially simulating near-wild-type timing. All strains, constructs, code, and data ( https://promoter-benchmark.epfl.ch/ ) are made available.

Suggested Citation

  • Vojislav Gligorovski & Ahmad Sadeghi & Sahand Jamal Rahi, 2023. "Multidimensional characterization of inducible promoters and a highly light-sensitive LOV-transcription factor," Nature Communications, Nature, vol. 14(1), pages 1-18, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-38959-8
    DOI: 10.1038/s41467-023-38959-8
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    References listed on IDEAS

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    1. Nicola Dietler & Matthias Minder & Vojislav Gligorovski & Augoustina Maria Economou & Denis Alain Henri Lucien Joly & Ahmad Sadeghi & Chun Hei Michael Chan & Mateusz Koziński & Martin Weigert & Anne-F, 2020. "A convolutional neural network segments yeast microscopy images with high accuracy," Nature Communications, Nature, vol. 11(1), pages 1-8, December.
    2. Ralph Wäsch & Frederick R. Cross, 2002. "APC-dependent proteolysis of the mitotic cyclin Clb2 is essential for mitotic exit," Nature, Nature, vol. 418(6897), pages 556-562, August.
    3. Evan M. Zhao & Yanfei Zhang & Justin Mehl & Helen Park & Makoto A. Lalwani & Jared E. Toettcher & José L. Avalos, 2018. "Optogenetic regulation of engineered cellular metabolism for microbial chemical production," Nature, Nature, vol. 555(7698), pages 683-687, March.
    4. Dirk Benzinger & Mustafa Khammash, 2018. "Pulsatile inputs achieve tunable attenuation of gene expression variability and graded multi-gene regulation," Nature Communications, Nature, vol. 9(1), pages 1-10, December.
    5. Jan M. Skotheim & Stefano Di Talia & Eric D. Siggia & Frederick R. Cross, 2008. "Positive feedback of G1 cyclins ensures coherent cell cycle entry," Nature, Nature, vol. 454(7202), pages 291-296, July.
    6. Dae-Kyun Ro & Eric M. Paradise & Mario Ouellet & Karl J. Fisher & Karyn L. Newman & John M. Ndungu & Kimberly A. Ho & Rachel A. Eachus & Timothy S. Ham & James Kirby & Michelle C. Y. Chang & Sydnor T., 2006. "Production of the antimalarial drug precursor artemisinic acid in engineered yeast," Nature, Nature, vol. 440(7086), pages 940-943, April.
    7. Michael B. Elowitz & Stanislas Leibler, 2000. "A synthetic oscillatory network of transcriptional regulators," Nature, Nature, vol. 403(6767), pages 335-338, January.
    8. Timothy S. Gardner & Charles R. Cantor & James J. Collins, 2000. "Construction of a genetic toggle switch in Escherichia coli," Nature, Nature, vol. 403(6767), pages 339-342, January.
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