Analysis of metabolic networks of Streptomyces leeuwenhoekii C34 by means of a genome scale model: Prediction of modifications that enhance the production of specialized metabolites
Author
dc.contributor.author
Razmilic Neira, Valeria
Author
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Castro Figueroa, Jean
Author
dc.contributor.author
Andrews Farrow, Barbara
Author
dc.contributor.author
Asenjo De Leuze De Lancizolle, Juan Alfonso
Admission date
dc.date.accessioned
2018-08-27T15:55:39Z
Available date
dc.date.available
2018-08-27T15:55:39Z
Publication date
dc.date.issued
2018
Cita de ítem
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Biotechnology and Bioengineering. 2018;115:1815–1828.
es_ES
Identifier
dc.identifier.issn
0006-3592
Identifier
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10.1002/bit.26598
Identifier
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https://repositorio.uchile.cl/handle/2250/151276
Abstract
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The first genome scale model (GSM) for Streptomyces leeuwenhoekii C34 was developed to study the biosynthesis pathways of specialized metabolites and to find metabolic engineering targets for enhancing their production. The model, iVR1007, consists of 1,722 reactions, 1,463 metabolites, and 1,007 genes, it includes the biosynthesis pathways of chaxamycins, chaxalactins, desferrioxamines, ectoine, and other specialized metabolites. iVR1007 was validated using experimental information of growth on 166 different sources of carbon, nitrogen and phosphorous, showing an 83.7% accuracy. The model was used to predict metabolic engineering targets for enhancing the biosynthesis of chaxamycins and chaxalactins. Gene knockouts, such as sle03600 (L-homoserine O-acetyltransferase), and sle39090 (trehalose-phosphate synthase), that enhance the production of the specialized metabolites by increasing the pool of precursors were identified. Using the algorithm of flux scanning based on enforced objective flux (FSEOF) implemented in python, 35 and 25 over-expression targets for increasing the production of chaxamycin A and chaxalactin A, respectively, that were not directly associated with their biosynthesis routes were identified. Nineteen over-expression targets that were common to the two specialized metabolites studied, like the over-expression of the acetyl carboxylase complex (sle47660 (accA) and any of the following genes: sle44630 (accA_1) or sle39830 (accA_2) or sle27560 (bccA) or sle59710) were identified. The predicted knockouts and over-expression targets will be used to perform metabolic engineering of S. leeuwenhoekii C34 and obtain overproducer strains
es_ES
Patrocinador
dc.description.sponsorship
Comision Nacional de Investigacion Cientifica y Tecnologica
FB0001
UK Newton Project for UK-Chile collaboration
JIC CA 586
Basal Programme of CONICYT (Chile)
Analysis of metabolic networks of Streptomyces leeuwenhoekii C34 by means of a genome scale model: Prediction of modifications that enhance the production of specialized metabolites