Xylan catabolism is improved by blending bioprospecting and metabolic pathway engineering in Saccharomyces cerevisiae

Authors
Lee, Sun-MiJellison, TaylorAlper, Hal S.
Issue Date
2015-04
Publisher
WILEY-V C H VERLAG GMBH
Citation
BIOTECHNOLOGY JOURNAL, v.10, no.4, pp.575 - U283
Abstract
Complete utilization of all available carbon sources in lignocellulosic biomass still remains a challenge in engineering Saccharomyces cerevisiae. Even with efficient heterologous xylose catabolic pathways, S. cerevisiae is unable to utilize xylose in lignocellulosic biomass unless xylan is depolymerized to xylose. Here we demonstrate that a blended bioprospecting approach along with pathway engineering and evolutionary engineering can be used to improve xylan catabolism in S. cerevisiae. Specifically, we perform whole genome sequencing-based bioprospecting of a strain with remarkable pentose catabolic potential that we isolated and named Ustilago bevomyces. The heterologous expression of xylan catabolic genes enabled S. cerevisiae to grow on xylan as a single carbon source in minimal medium. A combination of bioprospecting and metabolic pathway evolution demonstrated that the xylan catabolic pathway could be further improved. Ultimately, engineering efforts were able to achieve xylan conversion into ethanol of up to 0.22 g/L on minimal medium compositions with xylan. This pathway provides a novel starting point for improving lignocellulosic conversion by yeast.
Keywords
18S RIBOSOMAL-RNA; XYLITOL DEHYDROGENASE; XYLOSE ISOMERASE; PICHIA-STIPITIS; YEAST-STRAIN; GENOME; GENE; EXPRESSION; ETHANOL; REDUCTASE; 18S RIBOSOMAL-RNA; XYLITOL DEHYDROGENASE; XYLOSE ISOMERASE; PICHIA-STIPITIS; YEAST-STRAIN; GENOME; GENE; EXPRESSION; ETHANOL; REDUCTASE; Bioprospecting; Saccharomyces cerevisiae; Xylan; Xylanase; Xylosidase
ISSN
1860-6768
URI
https://pubs.kist.re.kr/handle/201004/125608
DOI
10.1002/biot.201400622
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KIST Article > 2015
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