4.6 Article

Evaluation of Nanoparticle-Immobilized Cellulase for Improved Ethanol Yield in Simultaneous Saccharification and Fermentation Reactions

Journal

BIOTECHNOLOGY AND BIOENGINEERING
Volume 108, Issue 12, Pages 2835-2843

Publisher

WILEY
DOI: 10.1002/bit.23246

Keywords

enzyme immobilization; biofuels; enzymatic hydrolysis; cellulase; cellulose; simultaneous saccharification and fermentation

Funding

  1. Department of Energy-Basic Energy Sciences [DE-AC02-07CH11358]

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Ethanol yields were 2.1 (P = 0.06) to 2.3 (P = 0.01) times higher in simultaneous saccharification and fermentation (SSF) reactions of microcrystalline cellulose when cellulase was physisorbed on silica nanoparticles compared to enzyme in solution. In SSF reactions, cellulose is hydrolyzed to glucose by cellulase while yeast simultaneously ferments glucose to ethanol. The 35 degrees C temperature and the presence of ethanol in SSF reactions are not optimal conditions for cellulase. Immobilization onto solid supports can stabilize the enzyme and promote activity at non-optimum reaction conditions. Mock SSF reactions that did not contain yeast were used to measure saccharification products and identify the mechanism for the improved ethanol yield using immobilized cellulase. Cellulase adsorbed to 40 nm silica nanoparticles produced 1.6 times (P = 0.01) more glucose than cellulase in solution in 96 h at pH 4.8 and 35 degrees C. There was no significant accumulation (<250 mu g) of soluble cellooligomers in either the solution or immobilized enzyme reactions. This suggests that the mechanism for the immobilized enzyme's improved glucose yield compared to solution enzyme is the increased conversion of insoluble cellulose hydrolysis products to soluble cellooligomers at 35 degrees C and in the presence of ethanol. The results show that silica-immobilized cellulase can be used to produce increased ethanol yields in the conversion of lignocellulosic materials by SSF. Biotechnol. Bioeng. 2011; 108: 2835-2843. (C) 2011 Wiley Periodicals, Inc.

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