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A mutated xylose reductase increases bioethanol production more than a glucose/xylose facilitator in simultaneous fermentation and co-fermentation of wheat straw

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논문

A mutated xylose reductase increases bioethanol production more than a glucose/xylose facilitator in simultaneous fermentation and co-fermentation of wheat straw

학술지

AMB Express

저자명

Olofsson, Kim; Runquist, David; Hahn-Hä gerdal, Bä rbel; Lidé n, Gunnar

초록

<P>Genetically engineered <I>Saccharomyces cerevisiae </I>strains are able to ferment xylose present in lignocellulosic biomass. However, better xylose fermenting strains are required to reach complete xylose uptake in simultaneous saccharification and co-fermentation (SSCF) of lignocellulosic hydrolyzates. In the current study, haploid <I>Saccharomyces cerevisiae </I>strains expressing a heterologous xylose pathway including either the native xylose reductase (XR) from <I>P. stipiti</I>s, a mutated variant of XR (mXR) with altered co-factor preference, a glucose/xylose facilitator (Gxf1) from <I>Candida intermedia </I>or both mXR and Gxf1 were assessed in SSCF of acid-pretreated non-detoxified wheat straw. The xylose conversion in SSCF was doubled with the <I>S. cerevisiae </I>strain expressing mXR compared to the isogenic strain expressing the native XR, converting 76% and 38%, respectively. The xylitol yield was less than half using mXR in comparison with the native variant. As a result of this, the ethanol yield increased from 0.33 to 0.39 g g<SUP>-1 </SUP>when the native XR was replaced by mXR. In contrast, the expression of Gxf1 only slightly increased the xylose uptake, and did not increase the ethanol production. The results suggest that ethanolic xylose fermentation under SSCF conditions is controlled primarily by the XR activity and to a much lesser extent by xylose transport.</P>

발행연도

2011

발행기관

Springer

라이선스

cc-by

ISSN

2191-0855

1

1

페이지

pp.4-4

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논문; 2011-03-28

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