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Techniques for the Evolution of Robust Pentose-fermenting Yeast for Bioconversion of Lignocellulose to Ethanol
Published on: October 24, 2016
Comparative fermentability of a glucose/xylose enriched enzymatic slurry using different yeast strains
Lina M Durán1, Miguel A D Flores-Alarcón1, Adriane M F Milagres1
1Department of Biotechnology, Engineering College of Lorena, University of São Paulo (USP), Estrada Municipal do Campinho, N° 100, Campinho, Lorena, SP, 12602-810, Brazil.
None:
Lignocellulosic biomass represents a sustainable energy source as ethanol fuel demand increases; process integration and efficient C6/C5 sugars utilization are essential for achieving techno-economically viable production. Here, alkaline-sulfite pretreatment combined with disc refining was applied to sugarcane bagasse for conserving most of cellulose and hemicellulose fractions. Then, β-glucosidase supplementation of cellulase at rational enzyme dosage (18 FPU/g biomass) was established for the enzymatic hydrolysis of the pretreated solids, achieving approximately 75% conversion yield for both cellulose and xylan. The resulting enzymatic slurry was directly fermented without solid-liquid separation and used to evaluate the effects of temperature and nutrient supplementation on ethanol fermentation by three yeast strains. Under optimal conditions (30 °C with nutrients), Kluyveromyces marxianus Y-6860 exhibited higher ethanol productivity ([Formula: see text] = 3.25 g L- 1 h- 1) than Saccharomyces cerevisiae PE-2 ([Formula: see text] = 2.17 g L- 1 h- 1). Notably, Scheffersomyces stipitis Y-7124 was the only strain capable of significantly consuming xylose, resulting in 46% higher ethanol production than the other strains. To simulate industrially relevant conditions, the slurry was supplemented with anhydrous glucose up to 100.0 g L- 1. Under these conditions, K. marxianus Y-6860 and S. cerevisiae PE-2 maintained robust fermentation performance, while S. stipitis Y-7124 exhibited limited xylose uptake during the evaluated period. The results demonstrate the potential of direct slurry fermentation for integrated 2G ethanol production, with K. marxianus Y-6860 showing strong potential for industrial-scale glucose fermentation and S. stipitis Y-7124 being a prospective candidate for improving xylose conversion.
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