Improved cell growth and biosynthesis of glycolic acid by overexpression of membrane-bound pyridine nucleotide transhydrogenase

Author:

Cabulong Rhudith B1,Valdehuesa Kris Niño G1,Bañares Angelo B1,Ramos Kristine Rose M1,Nisola Grace M1,Lee Won-Keun2,Chung Wook-Jin1

Affiliation:

1. 0000 0001 2339 0388 grid.410898.c Department of Energy Science and Technology (DEST), Energy and Environment Fusion Technology Center (E2FTC) Myongji University Myongji-ro 116, Cheoin-gu 170-58 Yongin Gyeonggi-do South Korea

2. 0000 0001 2339 0388 grid.410898.c Division of Bioscience and Bioinformatics Myongji University Myongji-ro 116, Cheoin-gu 170-58 Yongin Gyeonggi-do South Korea

Abstract

Abstract The non-conventional d-xylose metabolism called the Dahms pathway which only requires the expression of at least three enzymes to produce pyruvate and glycolaldehyde has been previously engineered in Escherichia coli. Strains that rely on this pathway exhibit lower growth rates which were initially attributed to the perturbed redox homeostasis as evidenced by the lower intracellular NADPH concentrations during exponential growth phase. NADPH-regenerating systems were then tested to restore the redox homeostasis. The membrane-bound pyridine nucleotide transhydrogenase, PntAB, was overexpressed and resulted to a significant increase in biomass and glycolic acid titer and yield. Furthermore, expression of PntAB in an optimized glycolic acid-producing strain improved the growth and product titer significantly. This work demonstrated that compensating for the NADPH demand can be achieved by overexpression of PntAB in E. coli strains assimilating d-xylose through the Dahms pathway. Consequently, increase in biomass accumulation and product concentration was also observed.

Funder

Ministry of Science, ICT and Future Planning

Ministry of Education

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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