Back to Search Start Over

Debottlenecking 4-hydroxybenzoate hydroxylation in Pseudomonas putida KT2440 improves muconate productivity from p-coumarate

Authors :
Eugene Kuatsjah
Christopher W. Johnson
Davinia SalvachĂșa
Allison Z. Werner
Michael Zahn
Caralyn J. Szostkiewicz
Christine A. Singer
Graham Dominick
Ikenna Okekeogbu
Stefan J. Haugen
Sean P. Woodworth
Kelsey J. Ramirez
Richard J. Giannone
Robert L. Hettich
John E. McGeehan
Gregg T. Beckham
Source :
Metabolic engineering. 70
Publication Year :
2021

Abstract

The transformation of 4-hydroxybenzoate (4-HBA) to protocatechuate (PCA) is catalyzed by flavoprotein oxygenases known as para-hydroxybenzoate-3-hydroxylases (PHBHs). In Pseudomonas putida KT2440 (P. putida) strains engineered to convert lignin-related aromatic compounds to muconic acid (MA), PHBH activity is rate-limiting, as indicated by the accumulation of 4-HBA, which ultimately limits MA productivity. Here, we hypothesized that replacement of PobA, the native P. putida PHBH, with PraI, a PHBH from Paenibacillus sp. JJ-1b with a broader nicotinamide cofactor preference, could alleviate this bottleneck. Biochemical assays confirmed the strict preference of NADPH for PobA, while PraI can utilize either NADH or NADPH. Kinetic assays demonstrated that both PobA and PraI can utilize NADPH with comparable catalytic efficiency and that PraI also efficiently utilizes NADH at roughly half the catalytic efficiency. The X-ray crystal structure of PraI was solved and revealed absolute conservation of the active site architecture to other PHBH structures despite their differing cofactor preferences. To understand the effect in vivo, we compared three P. putida strains engineered to produce MA from p-coumarate (pCA), showing that expression of praI leads to lower 4-HBA accumulation and decreased NADP

Details

ISSN :
10967184
Volume :
70
Database :
OpenAIRE
Journal :
Metabolic engineering
Accession number :
edsair.doi.dedup.....71f895fe6335b947aabbc5e269fe7dc7