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Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst

BACKGROUND: Trigonopsis variabilis D-amino acid oxidase (TvDAO) is a well characterized enzyme used for cephalosporin C conversion on industrial scale. However, the demands on the enzyme with respect to activity, operational stability and costs also vary with the field of application. Processes that...

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Autores principales: Abad, Sandra, Nahalka, Jozef, Bergler, Gabriele, Arnold, S Alison, Speight, Robert, Fotheringham, Ian, Nidetzky, Bernd, Glieder, Anton
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2873405/
https://www.ncbi.nlm.nih.gov/pubmed/20420682
http://dx.doi.org/10.1186/1475-2859-9-24
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author Abad, Sandra
Nahalka, Jozef
Bergler, Gabriele
Arnold, S Alison
Speight, Robert
Fotheringham, Ian
Nidetzky, Bernd
Glieder, Anton
author_facet Abad, Sandra
Nahalka, Jozef
Bergler, Gabriele
Arnold, S Alison
Speight, Robert
Fotheringham, Ian
Nidetzky, Bernd
Glieder, Anton
author_sort Abad, Sandra
collection PubMed
description BACKGROUND: Trigonopsis variabilis D-amino acid oxidase (TvDAO) is a well characterized enzyme used for cephalosporin C conversion on industrial scale. However, the demands on the enzyme with respect to activity, operational stability and costs also vary with the field of application. Processes that use the soluble enzyme suffer from fast inactivation of TvDAO while immobilized oxidase preparations raise issues related to expensive carriers and catalyst efficiency. Therefore, oxidase preparations that are more robust and active than those currently available would enable a much broader range of economically viable applications of this enzyme in fine chemical syntheses. A multi-step engineering approach was chosen here to develop a robust and highly active Pichia pastoris TvDAO whole-cell biocatalyst. RESULTS: As compared to the native T. variabilis host, a more than seven-fold enhancement of the intracellular level of oxidase activity was achieved in P. pastoris through expression optimization by codon redesign as well as efficient subcellular targeting of the enzyme to peroxisomes. Multi copy integration further doubled expression and the specific activity of the whole cell catalyst. From a multicopy production strain, about 1.3 × 10(3 )U/g wet cell weight (wcw) were derived by standard induction conditions feeding pure methanol. A fed-batch cultivation protocol using a mixture of methanol and glycerol in the induction phase attenuated the apparent toxicity of the recombinant oxidase to yield final biomass concentrations in the bioreactor of ≥ 200 g/L compared to only 117 g/L using the standard methanol feed. Permeabilization of P. pastoris using 10% isopropanol yielded a whole-cell enzyme preparation that showed 49% of the total available intracellular oxidase activity and was notably stabilized (by three times compared to a widely used TvDAO expressing Escherichia coli strain) under conditions of D-methionine conversion using vigorous aeration. CONCLUSIONS: Stepwise optimization using a multi-level engineering approach has delivered a new P. pastoris whole cell TvDAO biocatalyst showing substantially enhanced specific activity and stability under operational conditions as compared to previously reported preparations of the enzyme. The production of the oxidase through fed-batch bioreactor culture and subsequent cell permeabilization is high-yielding and efficient. Therefore this P. pastoris catalyst has been evaluated for industrial purposes.
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spelling pubmed-28734052010-05-20 Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst Abad, Sandra Nahalka, Jozef Bergler, Gabriele Arnold, S Alison Speight, Robert Fotheringham, Ian Nidetzky, Bernd Glieder, Anton Microb Cell Fact Research BACKGROUND: Trigonopsis variabilis D-amino acid oxidase (TvDAO) is a well characterized enzyme used for cephalosporin C conversion on industrial scale. However, the demands on the enzyme with respect to activity, operational stability and costs also vary with the field of application. Processes that use the soluble enzyme suffer from fast inactivation of TvDAO while immobilized oxidase preparations raise issues related to expensive carriers and catalyst efficiency. Therefore, oxidase preparations that are more robust and active than those currently available would enable a much broader range of economically viable applications of this enzyme in fine chemical syntheses. A multi-step engineering approach was chosen here to develop a robust and highly active Pichia pastoris TvDAO whole-cell biocatalyst. RESULTS: As compared to the native T. variabilis host, a more than seven-fold enhancement of the intracellular level of oxidase activity was achieved in P. pastoris through expression optimization by codon redesign as well as efficient subcellular targeting of the enzyme to peroxisomes. Multi copy integration further doubled expression and the specific activity of the whole cell catalyst. From a multicopy production strain, about 1.3 × 10(3 )U/g wet cell weight (wcw) were derived by standard induction conditions feeding pure methanol. A fed-batch cultivation protocol using a mixture of methanol and glycerol in the induction phase attenuated the apparent toxicity of the recombinant oxidase to yield final biomass concentrations in the bioreactor of ≥ 200 g/L compared to only 117 g/L using the standard methanol feed. Permeabilization of P. pastoris using 10% isopropanol yielded a whole-cell enzyme preparation that showed 49% of the total available intracellular oxidase activity and was notably stabilized (by three times compared to a widely used TvDAO expressing Escherichia coli strain) under conditions of D-methionine conversion using vigorous aeration. CONCLUSIONS: Stepwise optimization using a multi-level engineering approach has delivered a new P. pastoris whole cell TvDAO biocatalyst showing substantially enhanced specific activity and stability under operational conditions as compared to previously reported preparations of the enzyme. The production of the oxidase through fed-batch bioreactor culture and subsequent cell permeabilization is high-yielding and efficient. Therefore this P. pastoris catalyst has been evaluated for industrial purposes. BioMed Central 2010-04-26 /pmc/articles/PMC2873405/ /pubmed/20420682 http://dx.doi.org/10.1186/1475-2859-9-24 Text en Copyright ©2010 Abad et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Abad, Sandra
Nahalka, Jozef
Bergler, Gabriele
Arnold, S Alison
Speight, Robert
Fotheringham, Ian
Nidetzky, Bernd
Glieder, Anton
Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst
title Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst
title_full Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst
title_fullStr Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst
title_full_unstemmed Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst
title_short Stepwise engineering of a Pichia pastoris D-amino acid oxidase whole cell catalyst
title_sort stepwise engineering of a pichia pastoris d-amino acid oxidase whole cell catalyst
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2873405/
https://www.ncbi.nlm.nih.gov/pubmed/20420682
http://dx.doi.org/10.1186/1475-2859-9-24
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