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Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis

BACKGROUND: Purine nucleotides are essential metabolites for living organisms because they are involved in many important processes, such as nucleic acid synthesis, energy supply, and biosynthesis of several amino acids and riboflavin. Owing to the pivotal roles of purines in cell physiology, the po...

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Autores principales: Shi, Ting, Wang, Yongcheng, Wang, Zhiwen, Wang, Guanglu, Liu, Dingyu, Fu, Jing, Chen, Tao, Zhao, Xueming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4223553/
https://www.ncbi.nlm.nih.gov/pubmed/25023436
http://dx.doi.org/10.1186/s12934-014-0101-8
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author Shi, Ting
Wang, Yongcheng
Wang, Zhiwen
Wang, Guanglu
Liu, Dingyu
Fu, Jing
Chen, Tao
Zhao, Xueming
author_facet Shi, Ting
Wang, Yongcheng
Wang, Zhiwen
Wang, Guanglu
Liu, Dingyu
Fu, Jing
Chen, Tao
Zhao, Xueming
author_sort Shi, Ting
collection PubMed
description BACKGROUND: Purine nucleotides are essential metabolites for living organisms because they are involved in many important processes, such as nucleic acid synthesis, energy supply, and biosynthesis of several amino acids and riboflavin. Owing to the pivotal roles of purines in cell physiology, the pool of intracellular purine nucleotides must be maintained under strict control, and hence the de novo purine biosynthetic pathway is tightly regulated by transcription repression and inhibition mechanism. Deregulation of purine pathway is essential for this pathway engineering in Bacillus subtilis. RESULTS: Deregulation of purine pathway was attempted to improve purine nucleotides supply, based on a riboflavin producer B. subtilis strain with modification of its rib operon. To eliminate transcription repression, the pur operon repressor PurR and the 5’-UTR of pur operon containing a guanine-sensing riboswitch were disrupted. Quantitative RT-PCR analysis revealed that the relative transcription levels of purine genes were up-regulated about 380 times. Furthermore, site-directed mutagenesis was successfully introduced into PRPP amidotransferase (encoded by purF) to remove feedback inhibition by homologous alignment and analysis. Overexpression of the novel mutant PurF (D293V, K316Q and S400W) significantly increased PRPP amidotransferase activity and triggered a strong refractory effect on purine nucleotides mediated inhibition. Intracellular metabolite target analysis indicated that the purine nucleotides supply in engineered strains was facilitated by a stepwise gene-targeted deregulation. With these genetic manipulations, we managed to enhance the metabolic flow through purine pathway and consequently increased riboflavin production 3-fold (826.52 mg/L) in the purF-VQW mutant strain. CONCLUSIONS: A sequential optimization strategy was applied to deregulate the rib operon and purine pathway of B. subtilis to create genetic diversities and to improve riboflavin production. Based on the deregulation of purine pathway at transcription and metabolic levels, an extended application is recommended for the yield of products, like inosine, guanosine, adenosine and folate which are directly stemming from purine pathway in B. subtilis.
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spelling pubmed-42235532014-11-08 Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis Shi, Ting Wang, Yongcheng Wang, Zhiwen Wang, Guanglu Liu, Dingyu Fu, Jing Chen, Tao Zhao, Xueming Microb Cell Fact Research BACKGROUND: Purine nucleotides are essential metabolites for living organisms because they are involved in many important processes, such as nucleic acid synthesis, energy supply, and biosynthesis of several amino acids and riboflavin. Owing to the pivotal roles of purines in cell physiology, the pool of intracellular purine nucleotides must be maintained under strict control, and hence the de novo purine biosynthetic pathway is tightly regulated by transcription repression and inhibition mechanism. Deregulation of purine pathway is essential for this pathway engineering in Bacillus subtilis. RESULTS: Deregulation of purine pathway was attempted to improve purine nucleotides supply, based on a riboflavin producer B. subtilis strain with modification of its rib operon. To eliminate transcription repression, the pur operon repressor PurR and the 5’-UTR of pur operon containing a guanine-sensing riboswitch were disrupted. Quantitative RT-PCR analysis revealed that the relative transcription levels of purine genes were up-regulated about 380 times. Furthermore, site-directed mutagenesis was successfully introduced into PRPP amidotransferase (encoded by purF) to remove feedback inhibition by homologous alignment and analysis. Overexpression of the novel mutant PurF (D293V, K316Q and S400W) significantly increased PRPP amidotransferase activity and triggered a strong refractory effect on purine nucleotides mediated inhibition. Intracellular metabolite target analysis indicated that the purine nucleotides supply in engineered strains was facilitated by a stepwise gene-targeted deregulation. With these genetic manipulations, we managed to enhance the metabolic flow through purine pathway and consequently increased riboflavin production 3-fold (826.52 mg/L) in the purF-VQW mutant strain. CONCLUSIONS: A sequential optimization strategy was applied to deregulate the rib operon and purine pathway of B. subtilis to create genetic diversities and to improve riboflavin production. Based on the deregulation of purine pathway at transcription and metabolic levels, an extended application is recommended for the yield of products, like inosine, guanosine, adenosine and folate which are directly stemming from purine pathway in B. subtilis. BioMed Central 2014-07-15 /pmc/articles/PMC4223553/ /pubmed/25023436 http://dx.doi.org/10.1186/s12934-014-0101-8 Text en Copyright © 2014 Shi et al.; licensee BioMed Central http://creativecommons.org/licenses/by/4.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Shi, Ting
Wang, Yongcheng
Wang, Zhiwen
Wang, Guanglu
Liu, Dingyu
Fu, Jing
Chen, Tao
Zhao, Xueming
Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis
title Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis
title_full Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis
title_fullStr Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis
title_full_unstemmed Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis
title_short Deregulation of purine pathway in Bacillus subtilis and its use in riboflavin biosynthesis
title_sort deregulation of purine pathway in bacillus subtilis and its use in riboflavin biosynthesis
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4223553/
https://www.ncbi.nlm.nih.gov/pubmed/25023436
http://dx.doi.org/10.1186/s12934-014-0101-8
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