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Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1

In this paper, we report the metabolic engineering of the respiratory yeast Kluyveromyces lactis by construction and characterization of a null mutant (Δklndi1) in the single gene encoding a mitochondrial alternative internal dehydrogenase. Isolated mitochondria of the Δklndi1 mutant show unaffected...

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Autores principales: González-Siso, María Isabel, Touriño, Alba, Vizoso, Ángel, Pereira-Rodríguez, Ángel, Rodríguez-Belmonte, Esther, Becerra, Manuel, Cerdán, María Esperanza
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4353345/
https://www.ncbi.nlm.nih.gov/pubmed/25186243
http://dx.doi.org/10.1111/1751-7915.12160
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author González-Siso, María Isabel
Touriño, Alba
Vizoso, Ángel
Pereira-Rodríguez, Ángel
Rodríguez-Belmonte, Esther
Becerra, Manuel
Cerdán, María Esperanza
author_facet González-Siso, María Isabel
Touriño, Alba
Vizoso, Ángel
Pereira-Rodríguez, Ángel
Rodríguez-Belmonte, Esther
Becerra, Manuel
Cerdán, María Esperanza
author_sort González-Siso, María Isabel
collection PubMed
description In this paper, we report the metabolic engineering of the respiratory yeast Kluyveromyces lactis by construction and characterization of a null mutant (Δklndi1) in the single gene encoding a mitochondrial alternative internal dehydrogenase. Isolated mitochondria of the Δklndi1 mutant show unaffected rate of oxidation of exogenous NADH, but no oxidation of matrix NADH; this confirms that KlNdi1p is the only internal NADH dehydrogenase in K. lactis mitochondria. Permeabilized cells of the Δklndi1 mutant do not show oxidation of matrix NADH, which suggests that shuttle systems to transfer the NADH from mitochondrial matrix to cytosol, for being oxidized by external dehydrogenases, are not functional. The Δklndi1 mutation decreases the chronological life span in absence of nutrients. The expression of KlNDI1 is increased by glutathione reductase depletion. The Δklndi1 mutation shifts the K. lactis metabolism from respiratory to fermentative: the Δklndi1 strain shows reduced respiration rate and increased ethanol production from glucose, while it does not grow in non-fermentable carbon sources such as lactate. The biotechnological benefit of the Δklndi1 mutant for bioethanol production from waste cheese whey lactose was proved.
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spelling pubmed-43533452015-03-12 Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1 González-Siso, María Isabel Touriño, Alba Vizoso, Ángel Pereira-Rodríguez, Ángel Rodríguez-Belmonte, Esther Becerra, Manuel Cerdán, María Esperanza Microb Biotechnol Research Articles In this paper, we report the metabolic engineering of the respiratory yeast Kluyveromyces lactis by construction and characterization of a null mutant (Δklndi1) in the single gene encoding a mitochondrial alternative internal dehydrogenase. Isolated mitochondria of the Δklndi1 mutant show unaffected rate of oxidation of exogenous NADH, but no oxidation of matrix NADH; this confirms that KlNdi1p is the only internal NADH dehydrogenase in K. lactis mitochondria. Permeabilized cells of the Δklndi1 mutant do not show oxidation of matrix NADH, which suggests that shuttle systems to transfer the NADH from mitochondrial matrix to cytosol, for being oxidized by external dehydrogenases, are not functional. The Δklndi1 mutation decreases the chronological life span in absence of nutrients. The expression of KlNDI1 is increased by glutathione reductase depletion. The Δklndi1 mutation shifts the K. lactis metabolism from respiratory to fermentative: the Δklndi1 strain shows reduced respiration rate and increased ethanol production from glucose, while it does not grow in non-fermentable carbon sources such as lactate. The biotechnological benefit of the Δklndi1 mutant for bioethanol production from waste cheese whey lactose was proved. BlackWell Publishing Ltd 2015-03 2014-09-03 /pmc/articles/PMC4353345/ /pubmed/25186243 http://dx.doi.org/10.1111/1751-7915.12160 Text en Journal compilation © 2015 John Wiley & Sons Ltd and Society for Applied Microbiology http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
González-Siso, María Isabel
Touriño, Alba
Vizoso, Ángel
Pereira-Rodríguez, Ángel
Rodríguez-Belmonte, Esther
Becerra, Manuel
Cerdán, María Esperanza
Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1
title Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1
title_full Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1
title_fullStr Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1
title_full_unstemmed Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1
title_short Improved bioethanol production in an engineered Kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of NDI1
title_sort improved bioethanol production in an engineered kluyveromyces lactis strain shifted from respiratory to fermentative metabolism by deletion of ndi1
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4353345/
https://www.ncbi.nlm.nih.gov/pubmed/25186243
http://dx.doi.org/10.1111/1751-7915.12160
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