36
Allen UAL, Mortensen RE (1981) Production of cellulase from Trichoderma reesei in fed-batch
fermentation from soluble carbon sources. Biotechnol Bioeng 23:2641–2645
Amore A, Giacobbe S, Faraco V (2013) Regulation of cellulase and hemicellulase gene expression
in fungi. Curr Genom 14(4):230–249
Andberg M, Penttilä M, Saloheimo M (2015) Swollenin from Trichoderma reesei exhibits hydrolytic activity against cellulosic substrates with features of both endoglucanases and cellobiohydrolase. Bioresour Technol 181:105–113
Arantes V, Saddler JN (2010) Access to cellulose limits the efficiency of enzymatic hydrolysis: the
role of amorphogenesis. Biotechnol Biofuels 3:4
Aro N, Saloheimo A, Ilmén M, Penttilä M (2001) ACEII, a novel transcriptional activator
involved in regulation of cellulase and xylanase genes of Trichoderma reesei. J Biol Chem
276(26):24309–24314
Aro N, Pakula T, Penttilä M (2005) Transcriptional regulation of plant cell wall degradation by
filamentous fungi. FEMS Microbiol Rev 29:719–739
Aro N, Ilmén M, Saloheimo A, Penttilä M (2006) ACEI of Trichoderma reesei is a repressor of
cellulase and xylanase expression. Appl Environ Microbiol 69(1):56–65
Banerjee G, Car S, Scott-Craig JS, Borrusch MS, Walton JD (2010) Rapid optimization of
enzyme mixtures for deconstruction of diverse pre-treatment/biomass feedstock combinations.
Biotechnol Biofuels 3:22
Beckham GT, Bomble YJ, Bayer EA, Himme LME, Crowley MF (2011) Applications of computational science for understanding enzymatic deconstruction of cellulose. Curr Opin Biotechnol
22(2):231–238
Behera SS, Ray RC (2016) Solid-state fermentation for production of microbial cellulases: recent
advances and improvement strategies. Int J Biol Macromol 86:656–669
Berger E, Zhang D, Zverlov VV, Schwarz WH (2007) Two non-cellulosomal cellulases of
Clostridium thermocellum, Cel9I and Cel48Y, hydrolyze crystalline cellulose synergistically.
FEMS Microbiol Lett 268:194–201
Bischof RH, Ramoni J, Seiboth B (2016) Cellulases and beyond: the first 70 years of the enzyme
producer Trichoderma reesei. Microb Cell Factories 15:106
Bohlin C, Praestgaard E, Baumann MJ, Borch K, Praestgaard J, Monrad RN, Westh P (2013)
A comparative study of hydrolysis and transglycosylation activities of fungal β-glucosidases.
Appl Microbiol Biotechnol 97:159–169
Brunecky R, Alahuhta M, Xu Q, Donohoe BS, Crowley MF, Kataeva IA, Yang SJ, Resch MG, Adams
MWW, Lunin VV, Himmel ME, Bomble YJ (2013) Revealing nature’s cellulase diversity: the
digestion mechanism of Caldicellulosiruptor bescii CelA. Science 342(6165):1513–1516
Burnet MC, Dohnalkova AC, Neumann AP, Lipton MS, Smith RD, Suen G, Callister SJ (2015)
Evaluating models of cellulose degradation by Fibrobacter succinogenes S85. PLoS One
10(12):e0143809
Cantarel BL, Coutinho PM, Rancurel C, Bernard T, Lombard V, Henrissat B (2009) The
carbohydrate- active enZymes database (CAZy): an expert resource for glycogenomics. Nucleic
Acids Res 37(Suppl. 1):D233–D238
Cao LC, Wang ZJ, Ren GH, Kong W, Li L, Liu YH (2015) Engineering a novel glucose tolerant
beta glucosidase as supplementation to enhance the hydrolysis of sugar cane bagasse at high
glucose concentration. Biotechnol Biofuels 8:202
Carle-Urioste JC, Escobar-Vera J, El-Gogary S, Henrique-Silva F, Torigoi E, Crivellaro O, HerreraEstrella A, El-Dorry H (1997) Cellulase induction in Trichoderma reesei by cellulose requires
its own basal expression. J Biol Chem 272:10169–10174
Carro J, Ferreira P, Rodríguez L, Prieto A, Serrano A, Balcells B, Ardá A, Jiménez-Barbero J,
Gutiérrez A, Ullrich R, Hofrichter M, Martínez AT (2015) 5-hydroxymethylfurfural conversion by fungal aryl-alcohol oxidase and unspecific peroxygenase. FEBS J 282(16):3218–3229
R.K. Sukumaran et al.
Allen UAL, Mortensen RE (1981) Production of cellulase from Trichoderma reesei in fed-batch
fermentation from soluble carbon sources. Biotechnol Bioeng 23:2641–2645
Amore A, Giacobbe S, Faraco V (2013) Regulation of cellulase and hemicellulase gene expression
in fungi. Curr Genom 14(4):230–249
Andberg M, Penttilä M, Saloheimo M (2015) Swollenin from Trichoderma reesei exhibits hydrolytic activity against cellulosic substrates with features of both endoglucanases and cellobiohydrolase. Bioresour Technol 181:105–113
Arantes V, Saddler JN (2010) Access to cellulose limits the efficiency of enzymatic hydrolysis: the
role of amorphogenesis. Biotechnol Biofuels 3:4
Aro N, Saloheimo A, Ilmén M, Penttilä M (2001) ACEII, a novel transcriptional activator
involved in regulation of cellulase and xylanase genes of Trichoderma reesei. J Biol Chem
276(26):24309–24314
Aro N, Pakula T, Penttilä M (2005) Transcriptional regulation of plant cell wall degradation by
filamentous fungi. FEMS Microbiol Rev 29:719–739
Aro N, Ilmén M, Saloheimo A, Penttilä M (2006) ACEI of Trichoderma reesei is a repressor of
cellulase and xylanase expression. Appl Environ Microbiol 69(1):56–65
Banerjee G, Car S, Scott-Craig JS, Borrusch MS, Walton JD (2010) Rapid optimization of
enzyme mixtures for deconstruction of diverse pre-treatment/biomass feedstock combinations.
Biotechnol Biofuels 3:22
Beckham GT, Bomble YJ, Bayer EA, Himme LME, Crowley MF (2011) Applications of computational science for understanding enzymatic deconstruction of cellulose. Curr Opin Biotechnol
22(2):231–238
Behera SS, Ray RC (2016) Solid-state fermentation for production of microbial cellulases: recent
advances and improvement strategies. Int J Biol Macromol 86:656–669
Berger E, Zhang D, Zverlov VV, Schwarz WH (2007) Two non-cellulosomal cellulases of
Clostridium thermocellum, Cel9I and Cel48Y, hydrolyze crystalline cellulose synergistically.
FEMS Microbiol Lett 268:194–201
Bischof RH, Ramoni J, Seiboth B (2016) Cellulases and beyond: the first 70 years of the enzyme
producer Trichoderma reesei. Microb Cell Factories 15:106
Bohlin C, Praestgaard E, Baumann MJ, Borch K, Praestgaard J, Monrad RN, Westh P (2013)
A comparative study of hydrolysis and transglycosylation activities of fungal β-glucosidases.
Appl Microbiol Biotechnol 97:159–169
Brunecky R, Alahuhta M, Xu Q, Donohoe BS, Crowley MF, Kataeva IA, Yang SJ, Resch MG, Adams
MWW, Lunin VV, Himmel ME, Bomble YJ (2013) Revealing nature’s cellulase diversity: the
digestion mechanism of Caldicellulosiruptor bescii CelA. Science 342(6165):1513–1516
Burnet MC, Dohnalkova AC, Neumann AP, Lipton MS, Smith RD, Suen G, Callister SJ (2015)
Evaluating models of cellulose degradation by Fibrobacter succinogenes S85. PLoS One
10(12):e0143809
Cantarel BL, Coutinho PM, Rancurel C, Bernard T, Lombard V, Henrissat B (2009) The
carbohydrate- active enZymes database (CAZy): an expert resource for glycogenomics. Nucleic
Acids Res 37(Suppl. 1):D233–D238
Cao LC, Wang ZJ, Ren GH, Kong W, Li L, Liu YH (2015) Engineering a novel glucose tolerant
beta glucosidase as supplementation to enhance the hydrolysis of sugar cane bagasse at high
glucose concentration. Biotechnol Biofuels 8:202
Carle-Urioste JC, Escobar-Vera J, El-Gogary S, Henrique-Silva F, Torigoi E, Crivellaro O, HerreraEstrella A, El-Dorry H (1997) Cellulase induction in Trichoderma reesei by cellulose requires
its own basal expression. J Biol Chem 272:10169–10174
Carro J, Ferreira P, Rodríguez L, Prieto A, Serrano A, Balcells B, Ardá A, Jiménez-Barbero J,
Gutiérrez A, Ullrich R, Hofrichter M, Martínez AT (2015) 5-hydroxymethylfurfural conversion by fungal aryl-alcohol oxidase and unspecific peroxygenase. FEBS J 282(16):3218–3229
R.K. Sukumaran et al.
