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Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum

The mutant Penicillium chrysogenum strain dogR5, derived from strain AS-P-78, does not respond to glucose regulation of penicillin biosynthesis and β-galactosidase, and is partially deficient in D-glucose phosphorilating activity. We have transformed strain dogR5 with the (hexokinase) hxk2 gene from...

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Autores principales: Pérez, Edmundo A., Fernández, Francisco J., Fierro, Francisco, Mejía, Armando, Marcos, Ana T., Martín, Juan F., Barrios-González, Javier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Sociedade Brasileira de Microbiologia 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4204972/
https://www.ncbi.nlm.nih.gov/pubmed/25477921
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author Pérez, Edmundo A.
Fernández, Francisco J.
Fierro, Francisco
Mejía, Armando
Marcos, Ana T.
Martín, Juan F.
Barrios-González, Javier
author_facet Pérez, Edmundo A.
Fernández, Francisco J.
Fierro, Francisco
Mejía, Armando
Marcos, Ana T.
Martín, Juan F.
Barrios-González, Javier
author_sort Pérez, Edmundo A.
collection PubMed
description The mutant Penicillium chrysogenum strain dogR5, derived from strain AS-P-78, does not respond to glucose regulation of penicillin biosynthesis and β-galactosidase, and is partially deficient in D-glucose phosphorilating activity. We have transformed strain dogR5 with the (hexokinase) hxk2 gene from Saccharomyces cerevisiae. Transformants recovered glucose control of penicillin biosynthesis in different degrees, and acquired a hexokinase (fructose phosphorylating) activity absent in strains AS- P-78 and dogR5. Interestingly, they also recovered glucose regulation of β-galactosidase. On the other hand, glucokinase activity was affected in different ways in the transformants; one of which showed a lower activity than the parental dogR5, but normal glucose regulation of penicillin biosynthesis. Our results show that Penicillium chrysogenum AS-P-78 and dogR5 strains lack hexokinase, and suggest that an enzyme with glucokinase activity is involved in glucose regulation of penicillin biosynthesis and β-galactosidase, thus signaling glucose in both primary and secondary metabolism; however, catalytic and signaling activities seem to be independent.
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spelling pubmed-42049722014-12-04 Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum Pérez, Edmundo A. Fernández, Francisco J. Fierro, Francisco Mejía, Armando Marcos, Ana T. Martín, Juan F. Barrios-González, Javier Braz J Microbiol Research Paper The mutant Penicillium chrysogenum strain dogR5, derived from strain AS-P-78, does not respond to glucose regulation of penicillin biosynthesis and β-galactosidase, and is partially deficient in D-glucose phosphorilating activity. We have transformed strain dogR5 with the (hexokinase) hxk2 gene from Saccharomyces cerevisiae. Transformants recovered glucose control of penicillin biosynthesis in different degrees, and acquired a hexokinase (fructose phosphorylating) activity absent in strains AS- P-78 and dogR5. Interestingly, they also recovered glucose regulation of β-galactosidase. On the other hand, glucokinase activity was affected in different ways in the transformants; one of which showed a lower activity than the parental dogR5, but normal glucose regulation of penicillin biosynthesis. Our results show that Penicillium chrysogenum AS-P-78 and dogR5 strains lack hexokinase, and suggest that an enzyme with glucokinase activity is involved in glucose regulation of penicillin biosynthesis and β-galactosidase, thus signaling glucose in both primary and secondary metabolism; however, catalytic and signaling activities seem to be independent. Sociedade Brasileira de Microbiologia 2014-10-09 /pmc/articles/PMC4204972/ /pubmed/25477921 Text en Copyright © 2014, Sociedade Brasileira de Microbiologia All the content of the journal, except where otherwise noted, is licensed under a Creative Commons License CC BY-NC.
spellingShingle Research Paper
Pérez, Edmundo A.
Fernández, Francisco J.
Fierro, Francisco
Mejía, Armando
Marcos, Ana T.
Martín, Juan F.
Barrios-González, Javier
Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum
title Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum
title_full Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum
title_fullStr Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum
title_full_unstemmed Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum
title_short Yeast HXK2 gene reverts glucose regulation mutation of penicillin biosynthesis in P. chrysogenum
title_sort yeast hxk2 gene reverts glucose regulation mutation of penicillin biosynthesis in p. chrysogenum
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4204972/
https://www.ncbi.nlm.nih.gov/pubmed/25477921
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