Metabolic engineering of Escherichia coli to produce succinate from woody hydrolysate under anaerobic conditions

F Zhu, C Wang, KY San… - Journal of Industrial …, 2020 - academic.oup.com
It is of great economic interest to produce succinate from low-grade carbon sources, eg,
lignocellulosic biomass hydrolysate, which mainly contains glucose and xylose. Inactivation …

Engineering the Pichia stipitis Genome for Fermentation of Hemicellulose Hydrolysates

TW Jeffries - Bioenergy, 2008 - Wiley Online Library
Pichia stipitis is a source of genes for engineering xylose metabolism in Saccharomyces
cerevisiaea task undertaken in numerous laboratories around the world. Increasing the …

Micro‐aerobic production of isobutanol with engineered Pseudomonas putida

A Ankenbauer, R Nitschel, A Teleki… - Engineering in Life …, 2021 - Wiley Online Library
Pseudomonas putida KT2440 is emerging as a promising microbial host for
biotechnological industry due to its broad range of substrate affinity and resilience to …

[HTML][HTML] Generation of an E. coli platform strain for improved sucrose utilization using adaptive laboratory evolution

ET Mohamed, H Mundhada, J Landberg, I Cann… - Microbial cell …, 2019 - Springer
Background Sucrose is an attractive industrial carbon source due to its abundance and the
fact that it can be cheaply generated from sources such as sugarcane. However, only a few …

Catabolism of D-glucose by Pseudomonas putida U occurs via extracellular transformation into D-gluconic acid and induction of a specific gluconate transport …

C Schleissner, A Reglero, JM Luengo - Microbiology, 1997 - microbiologyresearch.org
Pseudomonas putida U does not degrade D-glucose through the glycolytic pathway but
requires (i) its oxidation to d-gluconic acid by a peripherally located constitutive glucose …

Physiological states and energetic adaptation during growth of Pseudomonas putida mt-2 on glucose

L Latrach Tlemçani, D Corroler, D Barillier… - Archives of …, 2008 - Springer
Kinetic study of growth of Pseudomonas putida mt-2 was investigated in batch culture under
aerobic conditions, on glucose as initial carbon and energy source. Cell growth was …

Redundancy in putrescine catabolism in solvent tolerant Pseudomonas putida S12

L Bandounas, H Ballerstedt, JH de Winde… - Journal of …, 2011 - Elsevier
Pseudomonas putida S12 is a promising platform organism for the biological production of
substituted aromatic compounds due to its extreme tolerance towards toxic chemicals …

Engineering Pseudomonas putida KT2440 for the production of isobutanol

R Nitschel, A Ankenbauer, I Welsch… - Engineering in Life …, 2020 - Wiley Online Library
We engineered P. putida for the production of isobutanol from glucose by preventing product
and precursor degradation, inactivation of the soluble transhydrogenase SthA …

Recruiting alternative glucose utilization pathways for improving succinate production

J Tang, X Zhu, J Lu, P Liu, H Xu, Z Tan… - Applied microbiology and …, 2013 - Springer
The phosphoenolpyruvate (PEP): carbohydrate phosphotransferase system (PTS) of
Escherichia coli was usually inactivated to increase PEP supply for succinate production …

Succinate production from sucrose by metabolic engineered escherichia coli strains under aerobic conditions

J Wang, J Zhu, GN Bennett, KY San - Biotechnology progress, 2011 - Wiley Online Library
Two metabolically engineered E. coli strains HL2765k and HL27659k, while capable of
producing succinate from glucose with high yields, are not able to grow and produce …