Engineering of sugar transporters for improvement of xylose utilization during high-temperature alcoholic fermentation in Ogataea polymorpha yeast.


Journal

Microbial cell factories
ISSN: 1475-2859
Titre abrégé: Microb Cell Fact
Pays: England
ID NLM: 101139812

Informations de publication

Date de publication:
25 Apr 2020
Historique:
received: 04 02 2020
accepted: 18 04 2020
entrez: 27 4 2020
pubmed: 27 4 2020
medline: 31 12 2020
Statut: epublish

Résumé

Xylose transport is one of the bottlenecks in the conversion of lignocellulosic biomass to ethanol. Xylose consumption by the wild-type strains of xylose-utilizing yeasts occurs once glucose is depleted resulting in a long fermentation process and overall slow and incomplete conversion of sugars liberated from lignocellulosic hydrolysates. Therefore, the engineering of endogenous transporters for the facilitation of glucose-xylose co-consumption is an important prerequisite for efficient ethanol production from lignocellulosic hydrolysates. In this study, several engineering approaches formerly used for the low-affinity glucose transporters in Saccharomyces cerevisiae, were successfully applied for earlier identified transporter Hxt1 in Ogataea polymorpha to improve xylose consumption (engineering involved asparagine substitution to alanine at position 358 and replacement of N-terminal lysine residues predicted to be the target of ubiquitination for arginine residues). Moreover, the modified versions of S. cerevisiae Hxt7 and Gal2 transporters also led to improved xylose fermentation when expressed in O. polymorpha. The O. polymorpha strains with modified Hxt1 were characterized by simultaneous utilization of both glucose and xylose, in contrast to the wild-type and parental strain with elevated ethanol production from xylose. When the engineered Hxt1 transporter was introduced into constructed earlier advanced ethanol producer form xylose, the resulting strain showed further increase in ethanol accumulation during xylose fermentation. The overexpression of heterologous S. cerevisiae Gal2 had a less profound positive effects on sugars uptake rate, while overexpression of Hxt7 revealed the least impact on sugars consumption.

Sections du résumé

BACKGROUND BACKGROUND
Xylose transport is one of the bottlenecks in the conversion of lignocellulosic biomass to ethanol. Xylose consumption by the wild-type strains of xylose-utilizing yeasts occurs once glucose is depleted resulting in a long fermentation process and overall slow and incomplete conversion of sugars liberated from lignocellulosic hydrolysates. Therefore, the engineering of endogenous transporters for the facilitation of glucose-xylose co-consumption is an important prerequisite for efficient ethanol production from lignocellulosic hydrolysates.
RESULTS RESULTS
In this study, several engineering approaches formerly used for the low-affinity glucose transporters in Saccharomyces cerevisiae, were successfully applied for earlier identified transporter Hxt1 in Ogataea polymorpha to improve xylose consumption (engineering involved asparagine substitution to alanine at position 358 and replacement of N-terminal lysine residues predicted to be the target of ubiquitination for arginine residues). Moreover, the modified versions of S. cerevisiae Hxt7 and Gal2 transporters also led to improved xylose fermentation when expressed in O. polymorpha.
CONCLUSIONS CONCLUSIONS
The O. polymorpha strains with modified Hxt1 were characterized by simultaneous utilization of both glucose and xylose, in contrast to the wild-type and parental strain with elevated ethanol production from xylose. When the engineered Hxt1 transporter was introduced into constructed earlier advanced ethanol producer form xylose, the resulting strain showed further increase in ethanol accumulation during xylose fermentation. The overexpression of heterologous S. cerevisiae Gal2 had a less profound positive effects on sugars uptake rate, while overexpression of Hxt7 revealed the least impact on sugars consumption.

Identifiants

pubmed: 32334587
doi: 10.1186/s12934-020-01354-9
pii: 10.1186/s12934-020-01354-9
pmc: PMC7183630
doi:

Substances chimiques

Alcohols 0
Fungal Proteins 0
Xylose A1TA934AKO

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

96

Subventions

Organisme : Lietuvos Mokslo Taryba (LT)
ID : No S-LU-18-9
Organisme : Narodowym Centrum Nauki
ID : Opus 2016/21/B/NZ1/00280

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Auteurs

Roksolana Vasylyshyn (R)

Department of Molecular Genetics and Biotechnology, Institute of Cell Biology, NAS of Ukraine, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.

Olena Kurylenko (O)

Department of Molecular Genetics and Biotechnology, Institute of Cell Biology, NAS of Ukraine, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.

Justyna Ruchala (J)

Department of Molecular Genetics and Biotechnology, Institute of Cell Biology, NAS of Ukraine, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.
Department of Microbiology and Biotechnology, University of Rzeszow, Zelwerowicza 4, Rzeszow, 35-601, Poland.

Nadiya Shevchuk (N)

Department of Molecular Genetics and Biotechnology, Institute of Cell Biology, NAS of Ukraine, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.

Neringa Kuliesiene (N)

Department of Biochemistry, Faculty of Natural Sciences, Vytautas Magnus University, Vileikos 8, 44404, Kaunas, Lithuania.

Galina Khroustalyova (G)

Laboratory of Cell Biology, Institute of Microbiology and Biotechnology, University of Latvia, Jelgavas Str., 1-537, Riga, 1004, Latvia.
Latvian - Ukrainian Joint International Laboratory of Microbial Cell Biology, Jelgavas Str., 1, Riga LV-1004, Latvia, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.

Alexander Rapoport (A)

Laboratory of Cell Biology, Institute of Microbiology and Biotechnology, University of Latvia, Jelgavas Str., 1-537, Riga, 1004, Latvia.
Latvian - Ukrainian Joint International Laboratory of Microbial Cell Biology, Jelgavas Str., 1, Riga LV-1004, Latvia, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.

Rimantas Daugelavicius (R)

Department of Biochemistry, Faculty of Natural Sciences, Vytautas Magnus University, Vileikos 8, 44404, Kaunas, Lithuania.

Kostyantyn Dmytruk (K)

Department of Molecular Genetics and Biotechnology, Institute of Cell Biology, NAS of Ukraine, Drahomanov Street, 14/16, Lviv, 79005, Ukraine.

Andriy Sibirny (A)

Department of Molecular Genetics and Biotechnology, Institute of Cell Biology, NAS of Ukraine, Drahomanov Street, 14/16, Lviv, 79005, Ukraine. sibirny@cellbiol.lviv.ua.
Department of Microbiology and Biotechnology, University of Rzeszow, Zelwerowicza 4, Rzeszow, 35-601, Poland. sibirny@cellbiol.lviv.ua.
Laboratory of Cell Biology, Institute of Microbiology and Biotechnology, University of Latvia, Jelgavas Str., 1-537, Riga, 1004, Latvia. sibirny@cellbiol.lviv.ua.
Latvian - Ukrainian Joint International Laboratory of Microbial Cell Biology, Jelgavas Str., 1, Riga LV-1004, Latvia, Drahomanov Street, 14/16, Lviv, 79005, Ukraine. sibirny@cellbiol.lviv.ua.

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Classifications MeSH