Vaishnav N, Singh A, Adsul M, Dixit P, Sandhu SK, Mathur A, Puri SK, Singhania RR (2018)
Penicillium: the next emerging champion for cellulase production. Bioresour Technol Rep
2:131–140
Valášková V, Baldrian P (2006) Estimation of bound and free fractions of lignocellulose-degrading
enzymes of wood-rotting fungi Pleurotus ostreatus, Trametes versicolor and Piptoporus
betulinus. Res Microbiol 157(2):119–124
Vanegas C, Hernon A, Bartlett J (2015) Enzymatic and organic acid pretreatment of seaweed: effect
on reducing sugars production and on biogas inhibition. Int J Ambient Energy 36(1):2–7
Verhaart MR, Bielen AA, Oost Jvd, Stams AJ, Kengen SW (2010) Hydrogen production by
hyperthermophilic and extremely thermophilic bacteria and archaea: mechanisms for reductant
disposal. Environ Technol 31(8–9):993–1003
Visser EM, Leal TF, de Almeida MN, Guimarães VM (2015) Increased enzymatic hydrolysis of
sugarcane bagasse from enzyme recycling. Biotechnol Biofuels 8(1):5
Wan C, Li Y (2012) Fungal pretreatment of lignocellulosic biomass. Biotechnol Adv 30
(6):1447–1457
Wei W, Wu S, Liu L (2012) Enzymatic saccharification of dilute acid pretreated eucalyptus chips
for fermentable sugar production. Bioresour Technol 110:302–307
Wood IP, Cook NM, Wilson DR, Ryden P, Robertson JA, Waldron KW (2016) Ethanol from a
biorefinery waste stream: saccharification of amylase, protease and xylanase treated wheat bran.
Food Chem 198:125–131
Xin F, He J (2013) Characterization of a thermostable xylanase from a newly isolated Kluyvera
species and its application for biobutanol production. Bioresour Technol 135:309–315
Xue D, Zeng X, Lin D, Yao S (2019) Thermostable ethanol tolerant xylanase from a cold-adapted
marine species Acinetobacter johnsonii. Chin J Chem Eng 27(5):1166–1170
Yang M, Zhang J, Kuittinen S, Vepsäläinen J, Soininen P, Keinänen M, Pappinen A (2015)
Enhanced sugar production from pretreated barley straw by additive xylanase and surfactants
in enzymatic hydrolysis for acetone–butanol–ethanol fermentation. Bioresour Technol
189:131–137
Yang Y, Yang J, Liu J, Wang R, Liu L, Wang F, Yuan H (2018) The composition of accessory
enzymes of Penicillium chrysogenum P33 revealed by secretome and synergistic effects with
commercial cellulase on lignocellulose hydrolysis. Bioresour Technol 257:54–61
Zanuso E, Lara-Flores AA, Aguilar DL, Velazquez-Lucio J, Aguilar CN, Rodríguez-Jasso RM,
Ruiz HA (2017) Kinetic modeling, operational conditions, and biorefinery products from
hemicellulose: depolymerization and solubilization during hydrothermal processing. In: Hydrothermal processing in biorefineries. Springer, Cham, pp 141–160
Zeldes BM, Keller MW, Loder AJ, Straub CT, Adams MW, Kelly RM (2015) Extremely thermophilic microorganisms as metabolic engineering platforms for production of fuels and industrial
chemicals./ Front Microbiol 6:1209
Zhang J, Tang M, Viikari L (2012) Xylans inhibit enzymatic hydrolysis of lignocellulosic materials
by cellulases. Bioresour Technol 121:8–12
180
N. Bhardwaj and P. Verma
Penicillium: the next emerging champion for cellulase production. Bioresour Technol Rep
2:131–140
Valášková V, Baldrian P (2006) Estimation of bound and free fractions of lignocellulose-degrading
enzymes of wood-rotting fungi Pleurotus ostreatus, Trametes versicolor and Piptoporus
betulinus. Res Microbiol 157(2):119–124
Vanegas C, Hernon A, Bartlett J (2015) Enzymatic and organic acid pretreatment of seaweed: effect
on reducing sugars production and on biogas inhibition. Int J Ambient Energy 36(1):2–7
Verhaart MR, Bielen AA, Oost Jvd, Stams AJ, Kengen SW (2010) Hydrogen production by
hyperthermophilic and extremely thermophilic bacteria and archaea: mechanisms for reductant
disposal. Environ Technol 31(8–9):993–1003
Visser EM, Leal TF, de Almeida MN, Guimarães VM (2015) Increased enzymatic hydrolysis of
sugarcane bagasse from enzyme recycling. Biotechnol Biofuels 8(1):5
Wan C, Li Y (2012) Fungal pretreatment of lignocellulosic biomass. Biotechnol Adv 30
(6):1447–1457
Wei W, Wu S, Liu L (2012) Enzymatic saccharification of dilute acid pretreated eucalyptus chips
for fermentable sugar production. Bioresour Technol 110:302–307
Wood IP, Cook NM, Wilson DR, Ryden P, Robertson JA, Waldron KW (2016) Ethanol from a
biorefinery waste stream: saccharification of amylase, protease and xylanase treated wheat bran.
Food Chem 198:125–131
Xin F, He J (2013) Characterization of a thermostable xylanase from a newly isolated Kluyvera
species and its application for biobutanol production. Bioresour Technol 135:309–315
Xue D, Zeng X, Lin D, Yao S (2019) Thermostable ethanol tolerant xylanase from a cold-adapted
marine species Acinetobacter johnsonii. Chin J Chem Eng 27(5):1166–1170
Yang M, Zhang J, Kuittinen S, Vepsäläinen J, Soininen P, Keinänen M, Pappinen A (2015)
Enhanced sugar production from pretreated barley straw by additive xylanase and surfactants
in enzymatic hydrolysis for acetone–butanol–ethanol fermentation. Bioresour Technol
189:131–137
Yang Y, Yang J, Liu J, Wang R, Liu L, Wang F, Yuan H (2018) The composition of accessory
enzymes of Penicillium chrysogenum P33 revealed by secretome and synergistic effects with
commercial cellulase on lignocellulose hydrolysis. Bioresour Technol 257:54–61
Zanuso E, Lara-Flores AA, Aguilar DL, Velazquez-Lucio J, Aguilar CN, Rodríguez-Jasso RM,
Ruiz HA (2017) Kinetic modeling, operational conditions, and biorefinery products from
hemicellulose: depolymerization and solubilization during hydrothermal processing. In: Hydrothermal processing in biorefineries. Springer, Cham, pp 141–160
Zeldes BM, Keller MW, Loder AJ, Straub CT, Adams MW, Kelly RM (2015) Extremely thermophilic microorganisms as metabolic engineering platforms for production of fuels and industrial
chemicals./ Front Microbiol 6:1209
Zhang J, Tang M, Viikari L (2012) Xylans inhibit enzymatic hydrolysis of lignocellulosic materials
by cellulases. Bioresour Technol 121:8–12
180
N. Bhardwaj and P. Verma
