4.7 Article

Optogenetic Amplification Circuits for Light-Induced Metabolic Control

期刊

ACS SYNTHETIC BIOLOGY
卷 10, 期 5, 页码 1143-1154

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssynbio.0c00642

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资金

  1. Maeder Graduate Fellowship in Energy and the Environment
  2. U.S. DOE Office of Biological and Environmental Research, Genomic Science Program [DE-SC0019363]
  3. NSF CAREER Award [CBET-1751840]
  4. The Pew Charitable Trusts
  5. Princeton SEAS Project-X
  6. The Camille Dreyfus Teacher-Scholar Award
  7. NIH [DP2EB024247]
  8. Schmidt Transformative Technology grant

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OptoAMP is a new series of optogenetic circuits that amplify the transcriptional response to blue light up to 23-fold compared to the basal circuit (OptoEXP). These circuits show up to a 41-fold induction between dark and light conditions, efficient activation at light duty cycles as low as similar to 1%, and strong homogeneous light-induction in bioreactors of at least 5 L, with limited illumination at cell densities above 40 OD600.
Dynamic control of microbial metabolism is an effective strategy to improve chemical production in fermentations. While dynamic control is most often implemented using chemical inducers, optogenetics offers an attractive alternative due to the high tunability and reversibility afforded by light. However, a major concern of applying optogenetics in metabolic engineering is the risk of insufficient light penetration at high cell densities, especially in large bioreactors. Here, we present a new series of optogenetic circuits we call OptoAMP, which amplify the transcriptional response to blue light by as much as 23-fold compared to the basal circuit (OptoEXP). These circuits show as much as a 41-fold induction between dark and light conditions, efficient activation at light duty cycles as low as similar to 1%, and strong homogeneous light-induction in bioreactors of at least 5 L, with limited illumination at cell densities above 40 OD600. We demonstrate the ability of OptoAMP circuits to control engineered metabolic pathways in novel three-phase fermentations using different light schedules to control enzyme expression and improve production of lactic acid, isobutanol, and naringenin. These circuits expand the applicability of optogenetics to metabolic engineering.

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