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Further engineering of R. toruloides for the production of terpenes from lignocellulosic biomass.
Kirby, James; Geiselman, Gina M; Yaegashi, Junko; Kim, Joonhoon; Zhuang, Xun; Tran-Gyamfi, Mary Bao; Prahl, Jan-Philip; Sundstrom, Eric R; Gao, Yuqian; Munoz, Nathalie; Burnum-Johnson, Kristin E; Benites, Veronica T; Baidoo, Edward E K; Fuhrmann, Anna; Seibel, Katharina; Webb-Robertson, Bobbie-Jo M; Zucker, Jeremy; Nicora, Carrie D; Tanjore, Deepti; Magnuson, Jon K; Skerker, Jeffrey M; Gladden, John M.
Affiliation
  • Kirby J; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Geiselman GM; Department of Biomass Science and Conversion Technology, Sandia National Laboratories, Livermore, CA, 94550, USA.
  • Yaegashi J; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Kim J; Department of Biomass Science and Conversion Technology, Sandia National Laboratories, Livermore, CA, 94550, USA.
  • Zhuang X; Joint BioEnergy Institute, Lawrence Berkeley National Laboratory, Emeryville, CA, 94608, USA.
  • Tran-Gyamfi MB; Chemical and Biological Processing Group, Pacific Northwest National Laboratory, Richland, WA, 99354, USA.
  • Prahl JP; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Sundstrom ER; Chemical and Biological Processing Group, Pacific Northwest National Laboratory, Richland, WA, 99354, USA.
  • Gao Y; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Munoz N; Department of Biomass Science and Conversion Technology, Sandia National Laboratories, Livermore, CA, 94550, USA.
  • Burnum-Johnson KE; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Benites VT; Department of Biomass Science and Conversion Technology, Sandia National Laboratories, Livermore, CA, 94550, USA.
  • Baidoo EEK; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Fuhrmann A; Advanced Biofuels and Bioproducts Process Development Unit, Lawrence Berkeley National Laboratory, Emeryville, CA, 94608, USA.
  • Seibel K; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Webb-Robertson BM; Advanced Biofuels and Bioproducts Process Development Unit, Lawrence Berkeley National Laboratory, Emeryville, CA, 94608, USA.
  • Zucker J; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Nicora CD; Biological Sciences Division, Pacific Northwest National Laboratory, Richland, WA, 99354, USA.
  • Tanjore D; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Magnuson JK; The Environmental Molecular Sciences Laboratory, Richland, WA, 99354, USA.
  • Skerker JM; Department of Energy, Agile BioFoundry, Emeryville, CA, 94608, USA.
  • Gladden JM; The Environmental Molecular Sciences Laboratory, Richland, WA, 99354, USA.
Biotechnol Biofuels ; 14(1): 101, 2021 Apr 21.
Article in En | MEDLINE | ID: mdl-33883010
BACKGROUND: Mitigation of climate change requires that new routes for the production of fuels and chemicals be as oil-independent as possible. The microbial conversion of lignocellulosic feedstocks into terpene-based biofuels and bioproducts represents one such route. This work builds upon previous demonstrations that the single-celled carotenogenic basidiomycete, Rhodosporidium toruloides, is a promising host for the production of terpenes from lignocellulosic hydrolysates. RESULTS: This study focuses on the optimization of production of the monoterpene 1,8-cineole and the sesquiterpene α-bisabolene in R. toruloides. The α-bisabolene titer attained in R. toruloides was found to be proportional to the copy number of the bisabolene synthase (BIS) expression cassette, which in turn influenced the expression level of several native mevalonate pathway genes. The addition of more copies of BIS under a stronger promoter resulted in production of α-bisabolene at 2.2 g/L from lignocellulosic hydrolysate in a 2-L fermenter. Production of 1,8-cineole was found to be limited by availability of the precursor geranylgeranyl pyrophosphate (GPP) and expression of an appropriate GPP synthase increased the monoterpene titer fourfold to 143 mg/L at bench scale. Targeted mevalonate pathway metabolite analysis suggested that 3-hydroxy-3-methyl-glutaryl-coenzyme A reductase (HMGR), mevalonate kinase (MK) and phosphomevalonate kinase (PMK) may be pathway bottlenecks are were therefore selected as targets for overexpression. Expression of HMGR, MK, and PMK orthologs and growth in an optimized lignocellulosic hydrolysate medium increased the 1,8-cineole titer an additional tenfold to 1.4 g/L. Expression of the same mevalonate pathway genes did not have as large an impact on α-bisabolene production, although the final titer was higher at 2.6 g/L. Furthermore, mevalonate pathway intermediates accumulated in the mevalonate-engineered strains, suggesting room for further improvement. CONCLUSIONS: This work brings R. toruloides closer to being able to make industrially relevant quantities of terpene from lignocellulosic biomass.
Key words

Full text: 1 Database: MEDLINE Language: En Journal: Biotechnol Biofuels Year: 2021 Type: Article Affiliation country: United States

Full text: 1 Database: MEDLINE Language: En Journal: Biotechnol Biofuels Year: 2021 Type: Article Affiliation country: United States