TY - JOUR
T1 - A Yeast-Based Biosensor for Screening of Short- and Medium-Chain Fatty Acid Production
AU - Baumann, Leonie
AU - Rajkumar, Arun S.
AU - Morrissey, John P.
AU - Boles, Eckhard
AU - Oreb, Mislav
N1 - Publisher Copyright:
© 2018 American Chemical Society.
PY - 2018/11/16
Y1 - 2018/11/16
N2 - Short- and medium-chain fatty acids (SMCFA) are important platform chemicals currently produced from nonsustainable resources. The engineering of microbial cells to produce SMCFA, however, lacks high-throughput methods to screen for best performing cells. Here, we present the development of a whole-cell biosensor for easy and rapid detection of SMCFA. The biosensor is based on a multicopy yeast plasmid containing the SMCFA-responsive PDR12 promoter coupled to GFP as the reporter gene. The sensor detected hexanoic, heptanoic and octanoic acid over a linear range up to 2, 1.5, and 0.75 mM, respectively, but did not show a linear response to decanoic and dodecanoic acid. We validated the functionality of the biosensor with culture supernatants of a previously engineered Saccharomyces cerevisiae octanoic acid producer strain and derivatives thereof. The biosensor signal correlated strongly with the octanoic acid concentrations as determined by gas chromatography. Thus, this biosensor enables the high-throughput screening of SMCFA producers and has the potential to drastically speed up the engineering of diverse SMCFA producing cell factories.
AB - Short- and medium-chain fatty acids (SMCFA) are important platform chemicals currently produced from nonsustainable resources. The engineering of microbial cells to produce SMCFA, however, lacks high-throughput methods to screen for best performing cells. Here, we present the development of a whole-cell biosensor for easy and rapid detection of SMCFA. The biosensor is based on a multicopy yeast plasmid containing the SMCFA-responsive PDR12 promoter coupled to GFP as the reporter gene. The sensor detected hexanoic, heptanoic and octanoic acid over a linear range up to 2, 1.5, and 0.75 mM, respectively, but did not show a linear response to decanoic and dodecanoic acid. We validated the functionality of the biosensor with culture supernatants of a previously engineered Saccharomyces cerevisiae octanoic acid producer strain and derivatives thereof. The biosensor signal correlated strongly with the octanoic acid concentrations as determined by gas chromatography. Thus, this biosensor enables the high-throughput screening of SMCFA producers and has the potential to drastically speed up the engineering of diverse SMCFA producing cell factories.
KW - biosensor
KW - high-throughput screening
KW - medium-chain fatty acids
KW - octanoic acid
KW - PDR12
KW - short-chain fatty acids
UR - https://www.scopus.com/pages/publications/85055509298
U2 - 10.1021/acssynbio.8b00309
DO - 10.1021/acssynbio.8b00309
M3 - Article
C2 - 30338986
AN - SCOPUS:85055509298
SN - 2161-5063
VL - 7
SP - 2640
EP - 2646
JO - ACS Synthetic Biology
JF - ACS Synthetic Biology
IS - 11
ER -