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Enhancement of Gluconobacter oxydans Resistance to Lignocellulosic-Derived Inhibitors in Xylonic Acid Production by Overexpressing Thioredoxin
- Source :
- Applied biochemistry and biotechnology. 191(3)
- Publication Year :
- 2019
-
Abstract
- Efficient utilization of lignocellulose is an economically relevant practice for improving the financial prospects of biorefineries. Lignocellulose contains significant levels of xylose that can be converted into valuable xylonic acid. However, some inhibitors of bioconversion processes are produced after pretreatment. Xylonic acid production in bacteria, such as Gluconobacter oxydans, is hindered by poor bacterial tolerance to contaminants. Therefore, in order to enhance bacterial resistance to inhibitors, a recombinant strain of G. oxydans was created by the introduction of the thioredoxin gene. Thioredoxin is a key protein responsible for maintaining cellular redox potential and is critical to the conversion of xylose to xylonate. Overexpression of thioredoxin was confirmed at the enzymatic level, while the recombinant strain showed increased catalytic activity when inhibitors, such as formic acid or p-hydroxybenzaldehyde (PHBA), were added to the synthetic xylose medium (17% and 7% improvement in xylonic acid yield, respectively). To probe the molecular mechanism behind the recombinant strain response to inhibitors, the expression levels of various genes were analyzed by qRT-PCR, which revealed five differentially expressed genes (DEGs) upon exposure to formic acid or PHBA.
- Subjects :
- 0106 biological sciences
Gluconobacter oxydans
Formates
Bioconversion
Formic acid
Bioengineering
Xylose
01 natural sciences
Applied Microbiology and Biotechnology
Biochemistry
Lignin
chemistry.chemical_compound
Industrial Microbiology
Thioredoxins
010608 biotechnology
Escherichia coli
Cloning, Molecular
Molecular Biology
chemistry.chemical_classification
biology
010405 organic chemistry
General Medicine
Xylonic acid
biology.organism_classification
Recombinant Proteins
0104 chemical sciences
Oxygen
Enzyme
chemistry
Benzaldehydes
Fermentation
Thioredoxin
Oxidation-Reduction
Bacteria
Biotechnology
Plasmids
Subjects
Details
- ISSN :
- 15590291
- Volume :
- 191
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- Applied biochemistry and biotechnology
- Accession number :
- edsair.doi.dedup.....911f70d8ee1759c4c9811ece6496e317