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Process for Assembly and Transformation into Saccharomyces cerevisiae of a Synthetic Yeast Artificial Chromosome Containing a Multigene Cassette to Express Enzymes That Enhance Xylose Utilization Designed for an Automated Platform.
Hughes, Stephen R; Cox, Elby J; Bang, Sookie S; Pinkelman, Rebecca J; López-Núñez, Juan Carlos; Saha, Badal C; Qureshi, Nasib; Gibbons, William R; Fry, Michelle R; Moser, Bryan R; Bischoff, Kenneth M; Liu, Siqing; Sterner, David E; Butt, Tauseef R; Riedmuller, Steven B; Jones, Marjorie A; Riaño-Herrera, Néstor M.
Afiliação
  • Hughes SR; United States Department of Agriculture (USDA), Agricultural Research Service (ARS), National Center for Agricultural Utilization Research (NCAUR), Renewable Product Technology Research Unit, Peoria, IL, USA stephen.hughes@ars.usda.gov.
  • Cox EJ; United States Department of Agriculture (USDA), Agricultural Research Service (ARS), National Center for Agricultural Utilization Research (NCAUR), Renewable Product Technology Research Unit, Peoria, IL, USA Department of Chemistry and Biochemistry, Bradley University, Peoria, IL, USA.
  • Bang SS; South Dakota School of Mines & Technology, Chemical and Biological Engineering, Rapid City, SD, USA.
  • Pinkelman RJ; South Dakota School of Mines & Technology, Chemical and Biological Engineering, Rapid City, SD, USA.
  • López-Núñez JC; National Coffee Research Centre (Cenicafe), National Federation of Coffee Growers of Colombia (FNC), Manizales, Caldas, Colombia.
  • Saha BC; USDA, ARS, NCAUR, Bioenergy Research Unit, Peoria, IL, USA.
  • Qureshi N; USDA, ARS, NCAUR, Bioenergy Research Unit, Peoria, IL, USA.
  • Gibbons WR; Department of Biology and Microbiology, South Dakota State University, Brookings, SD, USA.
  • Fry MR; Department of Chemistry and Biochemistry, Bradley University, Peoria, IL, USA.
  • Moser BR; USDA, ARS, NCAUR, Bio-Oils Research Unit, Peoria, IL, USA.
  • Bischoff KM; United States Department of Agriculture (USDA), Agricultural Research Service (ARS), National Center for Agricultural Utilization Research (NCAUR), Renewable Product Technology Research Unit, Peoria, IL, USA.
  • Liu S; United States Department of Agriculture (USDA), Agricultural Research Service (ARS), National Center for Agricultural Utilization Research (NCAUR), Renewable Product Technology Research Unit, Peoria, IL, USA.
  • Sterner DE; Progenra, Inc., Malvern, PA, USA.
  • Butt TR; LifeSensors, Inc., Malvern, PA, USA.
  • Riedmuller SB; Hudson Control Group, Inc., Springfield, NJ, USA.
  • Jones MA; Department of Chemistry, Illinois State University, Normal, IL, USA.
  • Riaño-Herrera NM; National Coffee Research Centre (Cenicafe), National Federation of Coffee Growers of Colombia (FNC), Manizales, Caldas, Colombia.
J Lab Autom ; 20(6): 621-35, 2015 Dec.
Article em En | MEDLINE | ID: mdl-25720598
ABSTRACT
A yeast artificial chromosome (YAC) containing a multigene cassette for expression of enzymes that enhance xylose utilization (xylose isomerase [XI] and xylulokinase [XKS]) was constructed and transformed into Saccharomyces cerevisiae to demonstrate feasibility as a stable protein expression system in yeast and to design an assembly process suitable for an automated platform. Expression of XI and XKS from the YAC was confirmed by Western blot and PCR analyses. The recombinant and wild-type strains showed similar growth on plates containing hexose sugars, but only recombinant grew on D-xylose and L-arabinose plates. In glucose fermentation, doubling time (4.6 h) and ethanol yield (0.44 g ethanol/g glucose) of recombinant were comparable to wild type (4.9 h and 0.44 g/g). In whole-corn hydrolysate, ethanol yield (0.55 g ethanol/g [glucose + xylose]) and xylose utilization (38%) for recombinant were higher than for wild type (0.47 g/g and 12%). In hydrolysate from spent coffee grounds, yield was 0.46 g ethanol/g (glucose + xylose), and xylose utilization was 93% for recombinant. These results indicate introducing a YAC expressing XI and XKS enhanced xylose utilization without affecting integrity of the host strain, and the process provides a potential platform for automated synthesis of a YAC for expression of multiple optimized genes to improve yeast strains.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Saccharomyces cerevisiae / Transformação Genética / Xilose / Cromossomos Artificiais de Levedura / Enzimas / Redes e Vias Metabólicas / Engenharia Metabólica Idioma: En Ano de publicação: 2015 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Saccharomyces cerevisiae / Transformação Genética / Xilose / Cromossomos Artificiais de Levedura / Enzimas / Redes e Vias Metabólicas / Engenharia Metabólica Idioma: En Ano de publicação: 2015 Tipo de documento: Article