TY - JOUR
T1 - Simultaneous saccharification and fermentation by engineered Saccharomyces cerevisiae without supplementing extracellular β-glucosidase
AU - Lee, Won Heong
AU - Nan, Hong
AU - Kim, Hyo Jin
AU - Jin, Yong Su
N1 - Funding Information:
This research was supported by funding from the Energy Biosciences Institute .
PY - 2013
Y1 - 2013
N2 - Simultaneous saccharification and fermentation (SSF) has been considered a promising and economical process for cellulosic ethanol production. Further cost savings could be gained by reducing enzyme loading and engineering host strain for ethanol production. In this study, we demonstrate efficient ethanol production by SSF without supplementation of β-glucosidase using an engineered Saccharomyces cerevisiae strain expressing a cellodextrin transporter and an intracellular β-glucosidase from Neurospora crassa. Ethanol production profiles by the engineered yeast without supplementation of β-glucosidase and by a parental strain with supplementation of β-glucosidase were examined under various fermentation conditions. When initial cell mass concentrations were low, the traditional SSF with supplementation of β-glucosidase showed better ethanol production than SSF with the engineered strain without supplementing β-glucosidase. However, the engineered strain without supplementation of β-glucosidase showed almost the same or even better ethanol productivity than the parental strain with supplementation of β-glucosidase when initial cell mass concentrations were elevated. Our results suggest that efficient ethanol production by SSF could be achieved by engineered yeast capable of fermenting cellobiose without addition of extracellular β-glucosidase, leading to economic production of cellulosic ethanol.
AB - Simultaneous saccharification and fermentation (SSF) has been considered a promising and economical process for cellulosic ethanol production. Further cost savings could be gained by reducing enzyme loading and engineering host strain for ethanol production. In this study, we demonstrate efficient ethanol production by SSF without supplementation of β-glucosidase using an engineered Saccharomyces cerevisiae strain expressing a cellodextrin transporter and an intracellular β-glucosidase from Neurospora crassa. Ethanol production profiles by the engineered yeast without supplementation of β-glucosidase and by a parental strain with supplementation of β-glucosidase were examined under various fermentation conditions. When initial cell mass concentrations were low, the traditional SSF with supplementation of β-glucosidase showed better ethanol production than SSF with the engineered strain without supplementing β-glucosidase. However, the engineered strain without supplementation of β-glucosidase showed almost the same or even better ethanol productivity than the parental strain with supplementation of β-glucosidase when initial cell mass concentrations were elevated. Our results suggest that efficient ethanol production by SSF could be achieved by engineered yeast capable of fermenting cellobiose without addition of extracellular β-glucosidase, leading to economic production of cellulosic ethanol.
KW - Cellodextrin transporter
KW - Cellulosic ethanol
KW - Engineered Saccharomyces cerevisiae
KW - Intracellular β-glucosidase
KW - Simultaneous saccharification and fermentation
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U2 - 10.1016/j.jbiotec.2013.06.016
DO - 10.1016/j.jbiotec.2013.06.016
M3 - Article
C2 - 23835155
AN - SCOPUS:84881500880
SN - 0168-1656
VL - 167
SP - 316
EP - 322
JO - Journal of Biotechnology
JF - Journal of Biotechnology
IS - 3
ER -