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

Author:

Guamán Linda P12,Oliveira-Filho Edmar R1,Barba-Ostria Carlos13,Gomez José G C1,Taciro Marilda K1,da Silva Luiziana Ferreira1

Affiliation:

1. 0000 0004 1937 0722 grid.11899.38 Department of Microbiology, Institute of Biomedical Sciences University of São Paulo Av Prof Lineu Prestes 1374 Lab 148, Cidade Universitária 05508-000 São Paulo SP Brazil

2. grid.442092.9 Faculty of Science and Food Engineering Technical University of Ambato Ambato Ecuador

3. grid.442092.9 School of Health Sciences Technical University of Ambato Ambato Ecuador

Abstract

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 (Y  P3HB/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.

Funder

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Fundação de Amparo à Pesquisa do Estado de São Paulo

Secretaría de Educación Superior, Ciencia, Tecnología e Innovación

Universidad Técnica de Ambato, Ecuador - Department of Research and Development

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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