<div class="csl-bib-body">
<div class="csl-entry">Besleaga, M., Zimmermann, C., Ebner, K., Mach, R., Mach-Aigner, A., Geier, M., Glieder, A., Spadiut, O., & Kopp, J. (2024). Bi-directionalized promoter systems allow methanol-free production of hard-to-express peroxygenases with Komagataella Phaffii. <i>Microbial Cell Factories</i>, <i>23</i>, Article 177. https://doi.org/10.1186/s12934-024-02451-9</div>
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dc.identifier.issn
1475-2859
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/199103
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dc.description.abstract
Background
Heme-incorporating peroxygenases are responsible for electron transport in a multitude of organisms. Yet their application in biocatalysis is hindered due to their challenging recombinant production. Previous studies suggest Komagataella phaffi to be a suitable production host for heme-containing enzymes. In addition, co-expression of helper proteins has been shown to aid protein folding in yeast. In order to facilitate recombinant protein expression for an unspecific peroxygenase (AnoUPO), we aimed to apply a bi-directionalized expression strategy with Komagataella phaffii.
Results
In initial screenings, co-expression of protein disulfide isomerase was found to aid the correct folding of the expressed unspecific peroxygenase in K. phaffi. A multitude of different bi-directionalized promoter combinations was screened. The clone with the most promising promoter combination was scaled up to bioreactor cultivations and compared to a mono-directional construct (expressing only the peroxygenase). The strains were screened for the target enzyme productivity in a dynamic matter, investigating both derepression and mixed feeding (methanol-glycerol) for induction. Set-points from bioreactor screenings, resulting in the highest peroxygenase productivity, for derepressed and methanol-based induction were chosen to conduct dedicated peroxygenase production runs and were analyzed with RT-qPCR. Results demonstrated that methanol-free cultivation is superior over mixed feeding in regard to cell-specific enzyme productivity. RT-qPCR analysis confirmed that mixed feeding resulted in high stress for the host cells, impeding high productivity. Moreover, the bi-directionalized construct resulted in a much higher specific enzymatic activity over the mono-directional expression system.
Conclusions
In this study, we demonstrate a methanol-free bioreactor production strategy for an unspecific peroxygenase, yet not shown in literature. Hence, bi-directionalized assisted protein expression in K. phaffii, cultivated under derepressed conditions, is indicated to be an effective production strategy for heme-containing oxidoreductases. This very production strategy might be opening up further opportunities for biocatalysis.
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dc.description.sponsorship
FFG - Österr. Forschungsförderungs- gesellschaft mbH
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dc.description.sponsorship
FWF - Österr. Wissenschaftsfonds
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dc.language.iso
en
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dc.publisher
BMC
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dc.relation.ispartof
Microbial Cell Factories
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dc.subject
Methanol
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dc.subject
Komagataella phaffii
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dc.subject
Bi-directionalized promoter
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dc.subject
Derepressed feeding
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dc.subject
ERAD
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dc.subject
Methanol-free
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dc.subject
Recombinant protein production
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dc.subject
UPR
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dc.subject
Unspecific peroxygenase
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dc.subject
Promoter Regions
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dc.subject
Saccharomycetales
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dc.subject
Bioreactors
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dc.subject
Recombinant Proteins
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dc.subject
Mixed Function Oxygenases
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dc.title
Bi-directionalized promoter systems allow methanol-free production of hard-to-express peroxygenases with Komagataella Phaffii