Dragosits M, Mattanovich D (2013) Adaptive laboratory evolution–principles and applications for
biotechnology. Microb Cell Factories 12(1):64
Edye LA, Johns MR, Ewings KN (1989) Fructose production by Zymomonas mobilis in fed-batch
culture with minimal sorbitol formation. Appl Microbiol Biotechnol 31:129–133
Fein JE, Lawford HG, Lawford GR, Zawadzki BC, Charley RC (1983) High productivity continuous ethanol fermentation with a flocculating mutant strain of Zymomonas mobilis. Biotechnol
Lett 5:19–24
Franden MA, Pienkos PT, Zhang M (2009) Development of a high-throughput method to evaluate
the impact of inhibitory compounds from lignocellulosic hydrolysates on the growth of
Zymomonas mobilis. J Biotechnol 144:259–267
Franden MA, Pilath HM, Mohagheghi A, Pienkos PT, Zhang M (2013) Inhibition of growth of
Zymomonas mobilis by model compounds found in lignocellulosic hydrolysates. Biotechnol
Biofuels 6(1):1–15
Fuchino K, Chan H, Hwang LC, Bruheim P (2020) Cell biological studies of ethanologenic
bacterium Zymomonas mobilis. bioRxiv
Funke M, Buchenauer A, Mokwa W, Kluge S, Hein L, Muller C et al (2010) Bioprocess control in
microscale: scalable fermentations in disposable and user-friendly microfluidic systems. Microb
Cell Factories 9:86
Gombert AK, van Maris AJ (2015) Improving conversion yield of fermentable sugars into fuel
ethanol in 1st generation yeast-based production processes. Curr Opin Biotechnol 33:81–86
Gupta A, Verma JP (2015) Sustainable bio-ethanol production from agro-residues: a review. Renew
Sust Energ Rev 41:550–567
Harmsen P, Huijgen W, Bermudez L, Bakker R (2010) Literature review of physical and chemical
pretreatment processes for lignocellulosic. Report number: ECNE—10-013. Energy Research
Centre of The Netherlands, Petten
Hayashi T, Furuta Y, Furukawa K (2011) Respiration-deficient mutants of Zymomonas mobilis
show improved growth and ethanol fermentation under aerobic and high temperature conditions. J Biosci Bioeng 111(4):414–419
Hayashi T, Kato T, Watakabe S, Song W, Aikawa S, Furukawa K (2015) The respiratory chain
provides salt stress tolerance by maintaining a low NADH/NAD+ ratio in Zymomonas mobilis.
Microbiology 161(12):2384–2394
He M, Feng H, Bai F, Li Y, Liu X, Zhang Y (2009) Direct production of ethanol from raw sweet
potato starch using genetically engineered Zymomonas mobilis. Afr J Microbiol Res 3
(11):721–726
He M-X, Wu B, Shui Z-X, Hu Q-C, Wang W-G, Tan F-R et al (2012) Transcriptome profiling of
Zymomonas mobilis under ethanol stress. Biotechnol Biofuels 5(1):75
He M, Li Q, Liu X, Hu Q, Hu G, Pan K et al (2013) Bio-ethanol production from bamboo residues
with lignocellulose fractionation technology (LFT) and separate hydrolysis fermentation (SHF)
by Zymomonas mobilis. Am J Biomass Bioenergy 1:1–10
He MX, Wu B, Qin H, Ruan ZY, Tan FR, Wang JL et al (2014) Zymomonas mobilis: a novel
platform for future biorefineries. Biotechnol Biofuels 7(1):101
Ishikawa H, Nobayashi H, Tanaka H (1990) Mechanism of fermentation performance of
Zymomonas mobilis under oxygen supply in batch culture. J Ferment Bioeng 70:34–40
Jackson TD, Kaplan GG, Arena G, Page JH, Rogers SO (2007) Laparoscopic versus open resection
for colorectal cancer: a metaanalysis of oncologic outcomes. In: Database of Abstracts of
Reviews of Effects (DARE): quality-assessed reviews [Internet]: Centre for Reviews and
Dissemination
Jain WK, Toran-Diaz I, Baratti J (1985) Continuous production of ethanol from fructose by
immobilized growing cells of Zymomonas mobilis. Biotechnol Bioeng 27:613–620
Jeon YJ, Svenson CJ, Joachimsthal EL, Rogers PL (2002) Kinetic analysis of ethanol production by
an acetate-resistant strain of recombinant Zymomonas mobilis. Biotechnol Lett 24(10):819–824
178
M. Khalid et al.
biotechnology. Microb Cell Factories 12(1):64
Edye LA, Johns MR, Ewings KN (1989) Fructose production by Zymomonas mobilis in fed-batch
culture with minimal sorbitol formation. Appl Microbiol Biotechnol 31:129–133
Fein JE, Lawford HG, Lawford GR, Zawadzki BC, Charley RC (1983) High productivity continuous ethanol fermentation with a flocculating mutant strain of Zymomonas mobilis. Biotechnol
Lett 5:19–24
Franden MA, Pienkos PT, Zhang M (2009) Development of a high-throughput method to evaluate
the impact of inhibitory compounds from lignocellulosic hydrolysates on the growth of
Zymomonas mobilis. J Biotechnol 144:259–267
Franden MA, Pilath HM, Mohagheghi A, Pienkos PT, Zhang M (2013) Inhibition of growth of
Zymomonas mobilis by model compounds found in lignocellulosic hydrolysates. Biotechnol
Biofuels 6(1):1–15
Fuchino K, Chan H, Hwang LC, Bruheim P (2020) Cell biological studies of ethanologenic
bacterium Zymomonas mobilis. bioRxiv
Funke M, Buchenauer A, Mokwa W, Kluge S, Hein L, Muller C et al (2010) Bioprocess control in
microscale: scalable fermentations in disposable and user-friendly microfluidic systems. Microb
Cell Factories 9:86
Gombert AK, van Maris AJ (2015) Improving conversion yield of fermentable sugars into fuel
ethanol in 1st generation yeast-based production processes. Curr Opin Biotechnol 33:81–86
Gupta A, Verma JP (2015) Sustainable bio-ethanol production from agro-residues: a review. Renew
Sust Energ Rev 41:550–567
Harmsen P, Huijgen W, Bermudez L, Bakker R (2010) Literature review of physical and chemical
pretreatment processes for lignocellulosic. Report number: ECNE—10-013. Energy Research
Centre of The Netherlands, Petten
Hayashi T, Furuta Y, Furukawa K (2011) Respiration-deficient mutants of Zymomonas mobilis
show improved growth and ethanol fermentation under aerobic and high temperature conditions. J Biosci Bioeng 111(4):414–419
Hayashi T, Kato T, Watakabe S, Song W, Aikawa S, Furukawa K (2015) The respiratory chain
provides salt stress tolerance by maintaining a low NADH/NAD+ ratio in Zymomonas mobilis.
Microbiology 161(12):2384–2394
He M, Feng H, Bai F, Li Y, Liu X, Zhang Y (2009) Direct production of ethanol from raw sweet
potato starch using genetically engineered Zymomonas mobilis. Afr J Microbiol Res 3
(11):721–726
He M-X, Wu B, Shui Z-X, Hu Q-C, Wang W-G, Tan F-R et al (2012) Transcriptome profiling of
Zymomonas mobilis under ethanol stress. Biotechnol Biofuels 5(1):75
He M, Li Q, Liu X, Hu Q, Hu G, Pan K et al (2013) Bio-ethanol production from bamboo residues
with lignocellulose fractionation technology (LFT) and separate hydrolysis fermentation (SHF)
by Zymomonas mobilis. Am J Biomass Bioenergy 1:1–10
He MX, Wu B, Qin H, Ruan ZY, Tan FR, Wang JL et al (2014) Zymomonas mobilis: a novel
platform for future biorefineries. Biotechnol Biofuels 7(1):101
Ishikawa H, Nobayashi H, Tanaka H (1990) Mechanism of fermentation performance of
Zymomonas mobilis under oxygen supply in batch culture. J Ferment Bioeng 70:34–40
Jackson TD, Kaplan GG, Arena G, Page JH, Rogers SO (2007) Laparoscopic versus open resection
for colorectal cancer: a metaanalysis of oncologic outcomes. In: Database of Abstracts of
Reviews of Effects (DARE): quality-assessed reviews [Internet]: Centre for Reviews and
Dissemination
Jain WK, Toran-Diaz I, Baratti J (1985) Continuous production of ethanol from fructose by
immobilized growing cells of Zymomonas mobilis. Biotechnol Bioeng 27:613–620
Jeon YJ, Svenson CJ, Joachimsthal EL, Rogers PL (2002) Kinetic analysis of ethanol production by
an acetate-resistant strain of recombinant Zymomonas mobilis. Biotechnol Lett 24(10):819–824
178
M. Khalid et al.
