43
Tu M, Chandra RP, Saddler JN (2007a) Recycling cellulases during the hydrolysis of steam
exploded and ethanol pretreated lodgepole pine. Biotechnol Prog 23:1130–1137
Tu MB, Chandra RP, Saddler JN (2007b) Evaluating the distribution of cellulases and the recycling of free cellulases during the hydrolysis of lignocellulosic substrates. Biotechnol Prog
23:398–406
Vaaje-Kolstad G, Westereng B, Horn SJ, Liu Z, Zhai H, Sorlie M, Eijsink VGH (2010) An oxidative enzyme boosting the enzymatic conversion of recalcitrant polysaccharides. Science
330(6001):219–222
Vaheri M, Leisola M, Kauppinen V (1979) Transglycosylation products of cellulase system of
Trichoderma reesei. Biotechnol Lett 1:41–46
Vazana Y, Morais S, Barak Y, Lamd R, Bayer EA (2010) Interplay between Clostridium thermocellum family 48 and family 9 cellulases in cellulosomal versus noncellulosomal states. Appl
Environ Microbiol 76(10):3236–3243
Viniegra-González G, Favela-Torres F, Aguilar CN, Rómero-Gomez SDJ, Diaz-Godinez G, Augur
C (2003) Advantages of fungal enzyme production in solid state over liquid fermentation systems. Biochem Eng J 13:57–167
Visser EM, Leal TF, de Almeida MN, Guimarães VM (2015) Increased enzymatic hydrolysis of
sugarcane bagasse from enzyme recycling. Biotechnol Biofuels 8:5
Wang F, Xie H, Chen W, Wang E, Du F, Song A (2013) Biological pretreatment of corn stover with
ligninolytic enzyme for high efficient enzymatic hydrolysis. Bioresour Technol 144:572–578
Wang HC, Chen YC, Hseu RS (2014) Purification and characterization of a cellulolytic multienzyme complex produced by Neocallimastix patriciarum J11. Biochem Biophys Res Commun
451(2):190–195
Weiss N, Börjesson J, Pedersen LS, Meyer AS (2013) Enzymatic lignocellulose hydrolysis:
improved cellulase productivity by insoluble solids recycling. Biotechnol Biofuels 6:5
Wen Z, Liao W, Chen S (2005) Production of cellulase by Trichoderma reesei from dairy manure.
Bioresour Technol 96(4):491–499
Wilson DB (2009) Evidence for a novel mechanism of microbial cellulose degradation. Cellulose
16(4):723–727
Yeoman CJ, Han Y, Dodd D, Schroeder CM, Mackie RI, Cann IKO (2010) Thermostable enzymes
as biocatalysts in the biofuel industry. Adv Appl Microbiol 70:1–55
Yoon LW, Ang TN, Ngoh GC, Chua ASM (2014) Fungal solid-state fermentation and various
methods of enhancement in cellulase production. Biomass Bioenergy 67:319–338
Young J, Chung D, Bomble YJ, Himmel ME, Westpheling J (2014) Deletion of Caldicellulosiruptor
bescii CelA reveals its crucial role in the deconstruction of lignocellulosic biomass. Biotechnol
Biofuels 7(1):142
Zeilinger S, Mach RL, Kubicek CP (1998) Two adjacent protein binding motifs in the cbh2 (cellobiohydrolase II-encoding) promoter of the fungus Hypocrea jecorina (Trichoderma reesei)
cooperate in the induction by cellulose. J Biol Chem 273(51):34463–34471
Zeilinger S, Schmoll M, Pail M, Mach RL, Kubicek CP (2003) Nucleosome transactions on the
Hypocrea jecorina (Trichoderma reesei) cellulase promoter cbh2 associated with cellulase
induction. Mol Gen Genomics 270(1):46–55
Zhang XZ, Zhang YHP (2013) Cellulases: characteristics, sources production, and applications.
In: Yang ST, El-Enshasy HA, Thongchul N (eds) Bioprocessing technologies in biorefinery for sustainable production of fuels, chemicals, and polymers, 1st edn. Wiley, New York,
pp 131–146
Zhao X, Zhang L, Liu D (2012) Biomass recalcitrance Part I: the chemical compositions and physical structures affecting the enzymatic hydrolysis of lignocellulose. Biofuels Bioprod Biorefin
6:465–482
Zheng Y, Pan Z, Zhang R, Wang D, Jenkins B (2008) Non-ionic surfactants and non-catalytic
protein treatment on enzymatic hydrolysis of pretreated creeping wild ryegrass. Appl Biochem
Biotechnol 146:231–248
Zhuang J, Marchant M, Nokes S, Strobel H (2007) Economic analysis of cellulase production
methods for bio-ethanol. Appl Eng Agric 23:679–687
1 Enzymes for Bioenergy
Tu M, Chandra RP, Saddler JN (2007a) Recycling cellulases during the hydrolysis of steam
exploded and ethanol pretreated lodgepole pine. Biotechnol Prog 23:1130–1137
Tu MB, Chandra RP, Saddler JN (2007b) Evaluating the distribution of cellulases and the recycling of free cellulases during the hydrolysis of lignocellulosic substrates. Biotechnol Prog
23:398–406
Vaaje-Kolstad G, Westereng B, Horn SJ, Liu Z, Zhai H, Sorlie M, Eijsink VGH (2010) An oxidative enzyme boosting the enzymatic conversion of recalcitrant polysaccharides. Science
330(6001):219–222
Vaheri M, Leisola M, Kauppinen V (1979) Transglycosylation products of cellulase system of
Trichoderma reesei. Biotechnol Lett 1:41–46
Vazana Y, Morais S, Barak Y, Lamd R, Bayer EA (2010) Interplay between Clostridium thermocellum family 48 and family 9 cellulases in cellulosomal versus noncellulosomal states. Appl
Environ Microbiol 76(10):3236–3243
Viniegra-González G, Favela-Torres F, Aguilar CN, Rómero-Gomez SDJ, Diaz-Godinez G, Augur
C (2003) Advantages of fungal enzyme production in solid state over liquid fermentation systems. Biochem Eng J 13:57–167
Visser EM, Leal TF, de Almeida MN, Guimarães VM (2015) Increased enzymatic hydrolysis of
sugarcane bagasse from enzyme recycling. Biotechnol Biofuels 8:5
Wang F, Xie H, Chen W, Wang E, Du F, Song A (2013) Biological pretreatment of corn stover with
ligninolytic enzyme for high efficient enzymatic hydrolysis. Bioresour Technol 144:572–578
Wang HC, Chen YC, Hseu RS (2014) Purification and characterization of a cellulolytic multienzyme complex produced by Neocallimastix patriciarum J11. Biochem Biophys Res Commun
451(2):190–195
Weiss N, Börjesson J, Pedersen LS, Meyer AS (2013) Enzymatic lignocellulose hydrolysis:
improved cellulase productivity by insoluble solids recycling. Biotechnol Biofuels 6:5
Wen Z, Liao W, Chen S (2005) Production of cellulase by Trichoderma reesei from dairy manure.
Bioresour Technol 96(4):491–499
Wilson DB (2009) Evidence for a novel mechanism of microbial cellulose degradation. Cellulose
16(4):723–727
Yeoman CJ, Han Y, Dodd D, Schroeder CM, Mackie RI, Cann IKO (2010) Thermostable enzymes
as biocatalysts in the biofuel industry. Adv Appl Microbiol 70:1–55
Yoon LW, Ang TN, Ngoh GC, Chua ASM (2014) Fungal solid-state fermentation and various
methods of enhancement in cellulase production. Biomass Bioenergy 67:319–338
Young J, Chung D, Bomble YJ, Himmel ME, Westpheling J (2014) Deletion of Caldicellulosiruptor
bescii CelA reveals its crucial role in the deconstruction of lignocellulosic biomass. Biotechnol
Biofuels 7(1):142
Zeilinger S, Mach RL, Kubicek CP (1998) Two adjacent protein binding motifs in the cbh2 (cellobiohydrolase II-encoding) promoter of the fungus Hypocrea jecorina (Trichoderma reesei)
cooperate in the induction by cellulose. J Biol Chem 273(51):34463–34471
Zeilinger S, Schmoll M, Pail M, Mach RL, Kubicek CP (2003) Nucleosome transactions on the
Hypocrea jecorina (Trichoderma reesei) cellulase promoter cbh2 associated with cellulase
induction. Mol Gen Genomics 270(1):46–55
Zhang XZ, Zhang YHP (2013) Cellulases: characteristics, sources production, and applications.
In: Yang ST, El-Enshasy HA, Thongchul N (eds) Bioprocessing technologies in biorefinery for sustainable production of fuels, chemicals, and polymers, 1st edn. Wiley, New York,
pp 131–146
Zhao X, Zhang L, Liu D (2012) Biomass recalcitrance Part I: the chemical compositions and physical structures affecting the enzymatic hydrolysis of lignocellulose. Biofuels Bioprod Biorefin
6:465–482
Zheng Y, Pan Z, Zhang R, Wang D, Jenkins B (2008) Non-ionic surfactants and non-catalytic
protein treatment on enzymatic hydrolysis of pretreated creeping wild ryegrass. Appl Biochem
Biotechnol 146:231–248
Zhuang J, Marchant M, Nokes S, Strobel H (2007) Economic analysis of cellulase production
methods for bio-ethanol. Appl Eng Agric 23:679–687
1 Enzymes for Bioenergy
