4.7 Article

A Pseudomonas putida efflux pump acts on short-chain alcohols

期刊

BIOTECHNOLOGY FOR BIOFUELS
卷 11, 期 -, 页码 -

出版社

BMC
DOI: 10.1186/s13068-018-1133-9

关键词

Higher alcohols; Short-chain alcohols; Next-generation biofuels; Efflux pumps; TtgABC; Pseudomonas putida; Tolerance; Toxicity

资金

  1. Max Kade Foundation
  2. Max Planck Society
  3. U.S. Department of Energy, Office of Science, Office of Biological and Environmental Research
  4. U.S. Department of Energy, Energy Efficiency and Renewable Energy, Bioenergy Technologies Office [DE-AC02-05CH11231]
  5. Department of Energy
  6. NNF Center for Biosustainability [Synthetic Biology Tools for Yeast] Funding Source: researchfish
  7. Novo Nordisk Fonden [NNF10CC1016517] Funding Source: researchfish

向作者/读者索取更多资源

Background: The microbial production of biofuels is complicated by a tradeoff between yield and toxicity of many fuels. Efflux pumps enable bacteria to tolerate toxic substances by their removal from the cells while bypassing the periplasm. Their use for the microbial production of biofuels can help to improve cell survival, product recovery, and productivity. However, no native efflux pump is known to act on the class of short-chain alcohols, important next-generation biofuels, and it was considered unlikely that such an efflux pump exists. Results: We report that controlled expression of the RND-type efflux pump TtgABC from Pseudomonas putida DOT-T1E strongly improved cell survival in highly toxic levels of the next-generation biofuels n-butanol, isobutanol, isoprenol, and isopentanol. GC-FID measurements indicated active efflux of n-butanol when the pump is expressed. Conversely, pump expression did not lead to faster growth in media supplemented with low concentrations of n-butanol and isopentanol. Conclusions: TtgABC is the first native efflux pump shown to act on multiple short-chain alcohols. Its controlled expression can be used to improve cell survival and increase production of biofuels as an orthogonal approach to metabolic engineering. Together with the increased interest in P. putida for metabolic engineering due to its flexible metabolism, high native tolerance to toxic substances, and various applications of engineering its metabolism, our findings endorse the strain as an excellent biocatalyst for the high-yield production of next-generation biofuels.

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