Sukwong P, Sunwoo IY, Lee MJ, Ra CH, Jeong G-T, Kim S-K (2019) Application of the severity
factor and HMF removal of red macroalgae Gracilaria verrucosa to production of bioethanol by
Pichia stipitis and Kluyveromyces marxianus with adaptive evolution. Appl Biochem
Biotechnol 187(4):1312–1327
Sun Y, Cheng J (2002) Hydrolysis of lignocellulosic materials for ethanol production: a review.
Bioresour Technol 83(1):1–11
Sun S-N, Cao X-F, Zhang X-M, Xu F, Sun R-C, Jones GL (2014a) Characteristics and enzymatic
hydrolysis of cellulose-rich fractions from steam exploded and sequentially alkali delignified
bamboo (Phyllostachys pubescens). Bioresour Technol 163:377–380
Sun S, Cao X, Sun S, Xu F, Song X, Sun R-C, Jones GL (2014b) Improving the enzymatic
hydrolysis of thermo-mechanical fiber from Eucalyptus urophylla by a combination of hydrothermal pretreatment and alkali fractionation. Biotechnol Biofuels 7(1):116
Sun S, Sun S, Cao X, Sun R (2016) The role of pretreatment in improving the enzymatic hydrolysis
of lignocellulosic materials. Bioresour Technol 199:49–58
Taherzadeh MJ, Gustafsson L, Niklasson C, Lidén G (1999) Conversion of furfural in aerobic and
anaerobic batch fermentation of glucose by Saccharomyces cerevisiae. J Biosci Bioeng 87
(2):169–174
Timung R, Mohan M, Chilukoti B, Sasmal S, Banerjee T, Goud VV (2015) Optimization of dilute
acid and hot water pretreatment of different lignocellulosic biomass: a comparative study.
Biomass Bioenergy 81:9–18
Tran TTA, Le TKP, Mai TP, Nguyen DQ (2019) Bioethanol production from lignocellulosic
biomass. In: Alcohol fuels-current technologies and future prospect. IntechOpen, Rijeka
Tu W-C, Hallett JP (2019) Recent advances in the pretreatment of lignocellulosic biomass. Curr
Opin Green Sustain Chem 20:11–17
Uppugundla N, da Costa SL, Chundawat SP, Yu X, Simmons B, Singh S, Gao X, Kumar R,
Wyman CE, Dale BE (2014) A comparative study of ethanol production using dilute acid, ionic
liquid and AFEX™ pretreated corn stover. Biotechnol Biofuels 7(1):72
van der Pol EC, Bakker RR, Baets P, Eggink G (2014) By-products resulting from lignocellulose
pretreatment and their inhibitory effect on fermentations for (bio) chemicals and fuels. Appl
Microbiol Biotechnol 98(23):9579–9593
Varga E, Réczey K, Zacchi G (2004) Proceedings of the twenty-fifth symposium on biotechnology
for fuels and chemicals, Breckenridge, CO
Vohra M, Manwar J, Manmode R, Padgilwar S, Patil S (2014) Bioethanol production: feedstock
and current technologies. J Environ Chem Eng 2(1):573–584
Wang X, Yomano LP, Lee JY, York SW, Zheng H, Mullinnix MT, Shanmugam K, Ingram LO
(2013) Engineering furfural tolerance in Escherichia coli improves the fermentation of lignocellulosic sugars into renewable chemicals. Proc Natl Acad Sci 110(10):4021–4026
Wang S, Sun X, Yuan Q (2018) Strategies for enhancing microbial tolerance to inhibitors for
biofuel production: a review. Bioresour Technol 258:302–309
Wang W-t, Dai L-c WB, B-f Q, T-f H, Hu G-q, He M-x (2020) Biochar-mediated enhanced ethanol
fermentation (BMEEF) in Zymomonas mobilis under furfural and acetic acid stress. Biotechnol
Biofuels 13(1):1–10
Watanabe K, Tachibana S, Konishi M (2019) Modeling growth and fermentation inhibition during
bioethanol production using component profiles obtained by performing comprehensive
targeted and non-targeted analyses. Bioresour Technol 281:260–268
Weil JR, Dien B, Bothast R, Hendrickson R, Mosier NS, Ladisch MR (2002) Removal of
fermentation inhibitors formed during pretreatment of biomass by polymeric adsorbents. Industr
Eng Chem Res 41(24):6132–6138
Wikandari R, Sanjaya AP, Millati R, Karimi K, Taherzadeh MJ (2019) Fermentation inhibitors in
ethanol and biogas processes and strategies to counteract their effects. In: Biofuels: alternative
feedstocks and conversion processes for the production of liquid and gaseous biofuels. Elsevier,
Amsterdam, pp 461–499
5 Challenges in Bioethanol Production: Effect of Inhibitory Compounds
153
factor and HMF removal of red macroalgae Gracilaria verrucosa to production of bioethanol by
Pichia stipitis and Kluyveromyces marxianus with adaptive evolution. Appl Biochem
Biotechnol 187(4):1312–1327
Sun Y, Cheng J (2002) Hydrolysis of lignocellulosic materials for ethanol production: a review.
Bioresour Technol 83(1):1–11
Sun S-N, Cao X-F, Zhang X-M, Xu F, Sun R-C, Jones GL (2014a) Characteristics and enzymatic
hydrolysis of cellulose-rich fractions from steam exploded and sequentially alkali delignified
bamboo (Phyllostachys pubescens). Bioresour Technol 163:377–380
Sun S, Cao X, Sun S, Xu F, Song X, Sun R-C, Jones GL (2014b) Improving the enzymatic
hydrolysis of thermo-mechanical fiber from Eucalyptus urophylla by a combination of hydrothermal pretreatment and alkali fractionation. Biotechnol Biofuels 7(1):116
Sun S, Sun S, Cao X, Sun R (2016) The role of pretreatment in improving the enzymatic hydrolysis
of lignocellulosic materials. Bioresour Technol 199:49–58
Taherzadeh MJ, Gustafsson L, Niklasson C, Lidén G (1999) Conversion of furfural in aerobic and
anaerobic batch fermentation of glucose by Saccharomyces cerevisiae. J Biosci Bioeng 87
(2):169–174
Timung R, Mohan M, Chilukoti B, Sasmal S, Banerjee T, Goud VV (2015) Optimization of dilute
acid and hot water pretreatment of different lignocellulosic biomass: a comparative study.
Biomass Bioenergy 81:9–18
Tran TTA, Le TKP, Mai TP, Nguyen DQ (2019) Bioethanol production from lignocellulosic
biomass. In: Alcohol fuels-current technologies and future prospect. IntechOpen, Rijeka
Tu W-C, Hallett JP (2019) Recent advances in the pretreatment of lignocellulosic biomass. Curr
Opin Green Sustain Chem 20:11–17
Uppugundla N, da Costa SL, Chundawat SP, Yu X, Simmons B, Singh S, Gao X, Kumar R,
Wyman CE, Dale BE (2014) A comparative study of ethanol production using dilute acid, ionic
liquid and AFEX™ pretreated corn stover. Biotechnol Biofuels 7(1):72
van der Pol EC, Bakker RR, Baets P, Eggink G (2014) By-products resulting from lignocellulose
pretreatment and their inhibitory effect on fermentations for (bio) chemicals and fuels. Appl
Microbiol Biotechnol 98(23):9579–9593
Varga E, Réczey K, Zacchi G (2004) Proceedings of the twenty-fifth symposium on biotechnology
for fuels and chemicals, Breckenridge, CO
Vohra M, Manwar J, Manmode R, Padgilwar S, Patil S (2014) Bioethanol production: feedstock
and current technologies. J Environ Chem Eng 2(1):573–584
Wang X, Yomano LP, Lee JY, York SW, Zheng H, Mullinnix MT, Shanmugam K, Ingram LO
(2013) Engineering furfural tolerance in Escherichia coli improves the fermentation of lignocellulosic sugars into renewable chemicals. Proc Natl Acad Sci 110(10):4021–4026
Wang S, Sun X, Yuan Q (2018) Strategies for enhancing microbial tolerance to inhibitors for
biofuel production: a review. Bioresour Technol 258:302–309
Wang W-t, Dai L-c WB, B-f Q, T-f H, Hu G-q, He M-x (2020) Biochar-mediated enhanced ethanol
fermentation (BMEEF) in Zymomonas mobilis under furfural and acetic acid stress. Biotechnol
Biofuels 13(1):1–10
Watanabe K, Tachibana S, Konishi M (2019) Modeling growth and fermentation inhibition during
bioethanol production using component profiles obtained by performing comprehensive
targeted and non-targeted analyses. Bioresour Technol 281:260–268
Weil JR, Dien B, Bothast R, Hendrickson R, Mosier NS, Ladisch MR (2002) Removal of
fermentation inhibitors formed during pretreatment of biomass by polymeric adsorbents. Industr
Eng Chem Res 41(24):6132–6138
Wikandari R, Sanjaya AP, Millati R, Karimi K, Taherzadeh MJ (2019) Fermentation inhibitors in
ethanol and biogas processes and strategies to counteract their effects. In: Biofuels: alternative
feedstocks and conversion processes for the production of liquid and gaseous biofuels. Elsevier,
Amsterdam, pp 461–499
5 Challenges in Bioethanol Production: Effect of Inhibitory Compounds
153
