Engineering and systems-level analysis of Saccharomyces cerevisiae for production of 3-hydroxypropionic acid via malonyl-CoA reductase-dependent pathway
Journal article, 2016
reveals
increases
yeast
escherichia-coli
Saccharomyces cerevisiae
chemicals
mutations
Metabolic engineering
deletion
growth
3-Hydroxypropionic acid
Redox metabolism
flux analysis
genes
Author
K. R. Kildegaard
Danmarks Tekniske Universitet
N. B. Jensen
Evolva Biotech A/S
Danmarks Tekniske Universitet
K. Schneider
Danmarks Tekniske Universitet
E. Czarnotta
Rheinisch-Westfalische Technische Hochschule Aachen
E. Ozdemir
Danmarks Tekniske Universitet
T. Klein
Danmarks Tekniske Universitet
J. Maury
Danmarks Tekniske Universitet
B. E. Ebert
Rheinisch-Westfalische Technische Hochschule Aachen
H. B. Christensen
Danmarks Tekniske Universitet
Yun Chen
Chalmers, Biology and Biological Engineering, Systems and Synthetic Biology
Il-Kwon Kim
Chalmers, Biology and Biological Engineering, Systems and Synthetic Biology
M. J. Herrgard
Danmarks Tekniske Universitet
L. M. Blank
Rheinisch-Westfalische Technische Hochschule Aachen
J. Forster
Danmarks Tekniske Universitet
Jens B Nielsen
Chalmers, Biology and Biological Engineering, Systems and Synthetic Biology
I. Borodina
Danmarks Tekniske Universitet
Microbial Cell Factories
1475-2859 (ISSN)
Vol. 15 53 53Subject Categories (SSIF 2011)
Biological Sciences
Areas of Advance
Energy
Life Science Engineering (2010-2018)
DOI
10.1186/s12934-016-0451-5