Literature DB >> 29548982

Metabolic engineering of Pseudomonas taiwanensis VLB120 with minimal genomic modifications for high-yield phenol production.

Benedikt Wynands1, Christoph Lenzen1, Maike Otto1, Falk Koch1, Lars M Blank1, Nick Wierckx2.   

Abstract

Aromatic chemicals are important building blocks for the production of a multitude of everyday commodities. Currently, aromatics production relies almost exclusively on petrochemical processes. To achieve sustainability, alternative synthesis methods need to be developed. Here, we strived for an efficient production of phenol, a model aromatic compound of industrial relevance, from renewable carbon sources using the solvent-tolerant biocatalyst Pseudomonas taiwanensis VLB120. First, multiple catabolic routes for the degradation of aromatics and related compounds were inactivated, thereby obtaining the chassis strain P. taiwanensis VLB120Δ5 incapable of growing on 4-hydroxybenzoate (ΔpobA), tyrosine (Δhpd), and quinate (ΔquiC, ΔquiC1, ΔquiC2). In this context, a novel gene contributing to the quinate catabolism was identified (quiC2). Second, we employed a combination of reverse- and forward engineering to increase metabolic flux towards the product, using leads obtained from the analysis of aromatics producing Pseudomonas putida strains previously generated by mutagenesis. Phenol production was enabled by the heterologous expression of a codon-optimized and chromosomally integrated tyrosine phenol-lyase encoding gene from Pantoea agglomerans AJ2985 (PaTPL2). The genomic modification of endogenous genes encoding TrpEP290S, AroF-1P148L, and PheAT310I, and the deletion of pykA improved phenol production 17-fold, while also minimizing the burden caused by plasmids and auxotrophies. The additional overexpression of known bottleneck enzymes (AroGfbr, TyrAfbr) derived from Escherichia coli further enhanced phenol titers. The best producing strain P. taiwanensis VLB120Δ5-TPL36 reached yields of 15.8% and 18.5% (Cmol/Cmol) phenol from glucose and glycerol, respectively, in a mineral medium without addition of complex nutrients. This is the highest yield ever reported for microbially produced phenol.
Copyright © 2018 International Metabolic Engineering Society. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Aromatics; Metabolic engineering; Phenol; Pseudomonas; Quinate; Reverse engineering

Mesh:

Substances:

Year:  2018        PMID: 29548982     DOI: 10.1016/j.ymben.2018.03.011

Source DB:  PubMed          Journal:  Metab Eng        ISSN: 1096-7176            Impact factor:   9.783


  12 in total

1.  Systems Analysis of NADH Dehydrogenase Mutants Reveals Flexibility and Limits of Pseudomonas taiwanensis VLB120's Metabolism.

Authors:  Salome C Nies; Robert Dinger; Yan Chen; Gossa G Wordofa; Mette Kristensen; Konstantin Schneider; Jochen Büchs; Christopher J Petzold; Jay D Keasling; Lars M Blank; Birgitta E Ebert
Journal:  Appl Environ Microbiol       Date:  2020-05-19       Impact factor: 4.792

2.  Characterization of Context-Dependent Effects on Synthetic Promoters.

Authors:  Sebastian Köbbing; Lars M Blank; Nick Wierckx
Journal:  Front Bioeng Biotechnol       Date:  2020-06-12

3.  Novel Toxin-Antitoxin Module SlvT-SlvA Regulates Megaplasmid Stability and Incites Solvent Tolerance in Pseudomonas putida S12.

Authors:  Hadiastri Kusumawardhani; David van Dijk; Rohola Hosseini; Johannes H de Winde
Journal:  Appl Environ Microbiol       Date:  2020-06-17       Impact factor: 4.792

Review 4.  Chasing bacterial chassis for metabolic engineering: a perspective review from classical to non-traditional microorganisms.

Authors:  Patricia Calero; Pablo I Nikel
Journal:  Microb Biotechnol       Date:  2018-06-21       Impact factor: 5.813

5.  Accelerated genome engineering of Pseudomonas putida by I-SceI-mediated recombination and CRISPR-Cas9 counterselection.

Authors:  Nicolas T Wirth; Ekaterina Kozaeva; Pablo I Nikel
Journal:  Microb Biotechnol       Date:  2019-03-12       Impact factor: 5.813

Review 6.  Biochemistry, genetics and biotechnology of glycerol utilization in Pseudomonas species.

Authors:  Ignacio Poblete-Castro; Christoph Wittmann; Pablo I Nikel
Journal:  Microb Biotechnol       Date:  2019-03-18       Impact factor: 5.813

7.  Pseudomonas mRNA 2.0: Boosting Gene Expression Through Enhanced mRNA Stability and Translational Efficiency.

Authors:  Dário Neves; Stefan Vos; Lars M Blank; Birgitta E Ebert
Journal:  Front Bioeng Biotechnol       Date:  2020-01-24

8.  Metabolic engineering of Pseudomonas putida for production of the natural sweetener 5-ketofructose from fructose or sucrose by periplasmic oxidation with a heterologous fructose dehydrogenase.

Authors:  Karen Wohlers; Astrid Wirtz; Alexander Reiter; Marco Oldiges; Meike Baumgart; Michael Bott
Journal:  Microb Biotechnol       Date:  2021-08-26       Impact factor: 5.813

9.  Comparison of Three Xylose Pathways in Pseudomonas putida KT2440 for the Synthesis of Valuable Products.

Authors:  Isabel Bator; Andreas Wittgens; Frank Rosenau; Till Tiso; Lars M Blank
Journal:  Front Bioeng Biotechnol       Date:  2020-01-17

10.  Genetic Cell-Surface Modification for Optimized Foam Fractionation.

Authors:  Christian C Blesken; Isabel Bator; Christian Eberlein; Hermann J Heipieper; Till Tiso; Lars M Blank
Journal:  Front Bioeng Biotechnol       Date:  2020-10-29
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