Literature DB >> 29349569

xylA and xylB overexpression as a successful strategy for improving xylose utilization and poly-3-hydroxybutyrate production in Burkholderia sacchari.

Linda P Guamán1,2, Edmar R Oliveira-Filho1, Carlos Barba-Ostria1,3, José G C Gomez1, Marilda K Taciro1, Luiziana Ferreira da Silva4.   

Abstract

Despite the versatility and many advantages of polyhydroxyalkanoates as petroleum-based plastic substitutes, their higher production cost compared to petroleum-based polymers has historically limited their large-scale production. One appealing approach to reducing production costs is to employ less expensive, renewable feedstocks. Xylose, for example is an abundant and inexpensive carbon source derived from hemicellulosic residues abundant in agro-industrial waste (sugarcane bagasse hemicellulosic hydrolysates). In this work, the production of poly-3-hydroxybutyrate P(3HB) from xylose was studied to develop technologies for conversion of agro-industrial waste into high-value chemicals and biopolymers. Specifically, this work elucidates the organization of the xylose assimilation operon of Burkholderia sacchari, a non-model bacterium with high capacity for P(3HB) accumulation. Overexpression of endogenous xylose isomerase and xylulokinase genes was successfully assessed, improving both specific growth rate and P(3HB) production. Compared to control strain (harboring pBBR1MCS-2), xylose utilization in the engineered strain was substantially improved with 25% increase in specific growth rate, 34% increase in P(3HB) production, and the highest P(3HB) yield from xylose reported to date for B. sacchari (YP3HB/Xil = 0.35 g/g). This study highlights that xylA and xylB overexpression is an effective strategy to improve xylose utilization and P(3HB) production in B. sacchari.

Entities:  

Keywords:  Burkholderia sacchari; Polyhydroxybutyrate; Xylose; Xylose isomerase; Xylulokinase

Mesh:

Substances:

Year:  2018        PMID: 29349569     DOI: 10.1007/s10295-018-2007-7

Source DB:  PubMed          Journal:  J Ind Microbiol Biotechnol        ISSN: 1367-5435            Impact factor:   3.346


  42 in total

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Authors:  Arnaud Despalins; Souhir Marsit; Jacques Oberto
Journal:  Bioinformatics       Date:  2011-08-11       Impact factor: 6.937

2.  Polyhydroxyalkanoate-accumulating bacterium isolated from soil of a sugar-cane plantation in Brazil.

Authors:  C O Brämer; P Vandamme; L F da Silva; J G Gomez; A Steinbüchel
Journal:  Int J Syst Evol Microbiol       Date:  2001-09       Impact factor: 2.747

3.  Investigation of limiting metabolic steps in the utilization of xylose by recombinant Saccharomyces cerevisiae using metabolic engineering.

Authors:  Kaisa Karhumaa; Bärbel Hahn-Hägerdal; Marie-F Gorwa-Grauslund
Journal:  Yeast       Date:  2005-04-15       Impact factor: 3.239

Review 4.  Polyhydroxyalkanoate copolymers from forest biomass.

Authors:  Thomas M Keenan; James P Nakas; Stuart W Tanenbaum
Journal:  J Ind Microbiol Biotechnol       Date:  2006-04-27       Impact factor: 3.346

5.  Engineering Escherichia coli for poly-(3-hydroxybutyrate) production guided by genome-scale metabolic network analysis.

Authors:  Yangyang Zheng; Qianqian Yuan; Xiaoyan Yang; Hongwu Ma
Journal:  Enzyme Microb Technol       Date:  2017-07-10       Impact factor: 3.493

6.  Xylose isomerase overexpression along with engineering of the pentose phosphate pathway and evolutionary engineering enable rapid xylose utilization and ethanol production by Saccharomyces cerevisiae.

Authors:  Hang Zhou; Jing-Sheng Cheng; Benjamin L Wang; Gerald R Fink; Gregory Stephanopoulos
Journal:  Metab Eng       Date:  2012-08-16       Impact factor: 9.783

7.  Considerations on the structure and biochemistry of bacterial polyhydroxyalkanoic acid inclusions.

Authors:  A Steinbuchel; K Aerts; W Babel; C Follner; M Liebergesell; M H Madkour; F Mayer; U Pieper-Furst; A Pries; H E Valentin
Journal:  Can J Microbiol       Date:  1995       Impact factor: 2.419

8.  Enhanced xylose fermentation and ethanol production by engineered Saccharomyces cerevisiae strain.

Authors:  Leonardo de Figueiredo Vilela; Verônica Parente Gomes de Araujo; Raquel de Sousa Paredes; Elba Pinto da Silva Bon; Fernando Araripe Gonçalves Torres; Bianca Cruz Neves; Elis Cristina Araújo Eleutherio
Journal:  AMB Express       Date:  2015-02-26       Impact factor: 3.298

9.  The Burkholderia Genome Database: facilitating flexible queries and comparative analyses.

Authors:  Geoffrey L Winsor; Bhavjinder Khaira; Thea Van Rossum; Raymond Lo; Matthew D Whiteside; Fiona S L Brinkman
Journal:  Bioinformatics       Date:  2008-10-07       Impact factor: 6.937

10.  Recombinant Ralstonia eutropha engineered to utilize xylose and its use for the production of poly(3-hydroxybutyrate) from sunflower stalk hydrolysate solution.

Authors:  Hee Su Kim; Young Hoon Oh; Young-Ah Jang; Kyoung Hee Kang; Yokimiko David; Ju Hyun Yu; Bong Keun Song; Jong-il Choi; Yong Keun Chang; Jeong Chan Joo; Si Jae Park
Journal:  Microb Cell Fact       Date:  2016-06-03       Impact factor: 5.328

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  3 in total

1.  Long non-coding RNAs in Sus scrofa ileum under starvation stress.

Authors:  Shu Wang; Yi Jia Ma; Yong Shi Li; Xu Sheng Ge; Chang Lu; Chun Bo Cai; Yang Yang; Yan Zhao; Guo Ming Liang; Xiao Hong Guo; Guo Qing Cao; Bu Gao Li; Peng Fei Gao
Journal:  Anim Biosci       Date:  2022-03-02

2.  Engineering xylose metabolism for production of polyhydroxybutyrate in the non-model bacterium Burkholderia sacchari.

Authors:  Linda P Guamán; Carlos Barba-Ostria; Fuzhong Zhang; Edmar R Oliveira-Filho; José Gregório C Gomez; Luiziana F Silva
Journal:  Microb Cell Fact       Date:  2018-05-15       Impact factor: 5.328

3.  Investigating Nutrient Limitation Role on Improvement of Growth and Poly(3-Hydroxybutyrate) Accumulation by Burkholderia sacchari LMG 19450 From Xylose as the Sole Carbon Source.

Authors:  Edmar R Oliveira-Filho; Jefferson G P Silva; Matheus Arjona de Macedo; Marilda K Taciro; José Gregório C Gomez; Luiziana F Silva
Journal:  Front Bioeng Biotechnol       Date:  2020-01-08
  3 in total

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