40
Liu G, Zhang J, Bao J (2016) Cost evaluation of cellulase for industrial –scale cellulosic ethanol
production based on rigorous Aspen Plus modeling. Bioprocess Biosyst Eng 39(1):133–140
Mach-Aigner AR, Pucher ME, Steiger MG, Bauer GE, Preis SJ, Mach RL (2008) Transcriptional
regulation of xyr1, encoding the main regulator of the xylanolytic and cellulolytic enzyme
system in Hypocrea jecorina. Appl Environ Microbiol 74(21):6554–6562
Maeda RN, Barcelos CA, Santa Anna LMM, Pereira N Jr (2013) Cellulase production by
Penicillium funiculosum and its application in the hydrolysis of sugar cane bagasse for second
generation ethanol production by fed batch operation. J Biotechnol 163(1):38–44
Mandels M, Weber J (1969) The production of cellulases. In: Hajny GJ, Reese ET (eds) Cellulases
and their applications. American Chemical Society, Washington, DC, pp 391–414
Marcuschamer DK, Olekowicz Popiel P, Simmons BA, Blanch HW (2012) The challenge of
enzyme cost in the production of lignocellulosic biofuels. Biotechnol Bioeng 109(4):1083–1087
Martinez D, Berka RM, Henrissat B, Saloheimo M, Arvas M, Baker SE, Chapman J, Kubicek CP,
Han CS, Ho I, Larrondo LF, de Leon AL, Magnuson JK, Merino S, Misra M, Nelson B, Putnam
N, Robbertse B, Salamov AA, Schmoll M, Terry A, Thayer N, Westerholm-Parvinen A,
Schoch CL, Yao J, Barabote R, Nelson MA, Detter C, Bruce D, Kuske CR, Xie G, Richardson
P, Rokhsar DS, Lucas SM, Rubin EM, Dunn-Coleman N, Ward M, Brettin TS (2008) Genome
sequencing and analysis of the biomass-degrading fungus Trichoderma reesei (syn, Hypocrea
jecorina). Nat Biotechnol 26:553–560
Mathew GM, Sukumaran RK, Singhania RR, Pandey A (2008) Progress in research on fungal cellulases for lignocellulose degradation. J Sci Ind Res 67:898–907
Morrison JM, Elshahed MS, Youssef NH (2016). Defined enzyme cocktail from the anaerobic
fungus Orpinomyces sp. strain C1A effectively releases sugars from pretreated corn stover and
switch grass. Sci. Rep. 6, 29217
Nagy T, Tunnicliffe RB, Higgins LD, Walters C, Gilbert HJ, Williamson MP (2007) Characterization
of a double dockerin from the cellulosome of the anaerobic fungus Piromyces equi. J Mol Biol
373:612–622
Nakkeeran E, Gowthaman MK, Umesh-Kumar S, Subramanian R (2012) Techno-economic analysis of processes for Aspergillus carbonarius polygalacturonase production. J Biosci Bioeng
113:634–640
Nigam P, Singh D (1996) Processing of agricultural wastes in solid-state fermentation for cellulolytic enzyme production. J Sci Ind Res 55:457–467
Nitta M, Furukawa T, Shida Y, Mori K, Kuhara S, Morikawa Y, Ogasawara W (2012) A new Zn
(II)2Cys6-type transcription factor BglR regulates β-glucosidase expression in Trichoderma
reesei. Fungal Genet Biol 49(5):388–397
Ooijkaas LP, Weber FJ, Buitelaar RM, Tramper J, Rinzema A (2000) Defined media and inert
supports: their potential as solid-state fermentation production systems. TIBTECH 18:356–360
Pandey A (2003) Solid-state fermentation. Biochem Eng J 13:81–84
Payne CM, Knott BC, Mayes HB, Hansson H, Himmel ME, Sandgren M, Ståhlberg J, Beckham
GT (2015) Fungal cellulases. Chem Rev 115(3):1308–1448
Pereira BMP, Alvarez TM, da Silva Delabona P, Dillon AJP, Squina FM, da Cruz P (2013)
Cellulase on-site production from sugar cane bagasse using Penicillium echinulatum. Bioenerg
Res 6:1052
Pirota RDPB, Delabona PS, Farinas CS (2014) Enzymatic hydrolysis of sugarcane bagasse using
enzyme extract and whole solid-state fermentation medium of two newly isolated strains of
Aspergillus oryzae. Chem Eng Trans 38:259–264
Placido J, Capareda S (2015) Ligninolytic enzymes: a biotechnological alterative for bioethanol
production. Bioresour Bioproc 2:23
Praestgaard E, Elmerdahl J, Murphy L, Nymand S, McFarland KC, Borch K, Westh P (2011) A
kinetic model for the burst phase of processive cellulases. FEBS J 278(9):1547–1560
Pu Y, Hu F, Huang F, Davison BH, Ragauskas AJ (2013) Assessing the molecular structure basis
for biomass recalcitrance during dilute acid and hydrothermal pretreatments. Biotechnol
Biofuels 6:15
R.K. Sukumaran et al.
Liu G, Zhang J, Bao J (2016) Cost evaluation of cellulase for industrial –scale cellulosic ethanol
production based on rigorous Aspen Plus modeling. Bioprocess Biosyst Eng 39(1):133–140
Mach-Aigner AR, Pucher ME, Steiger MG, Bauer GE, Preis SJ, Mach RL (2008) Transcriptional
regulation of xyr1, encoding the main regulator of the xylanolytic and cellulolytic enzyme
system in Hypocrea jecorina. Appl Environ Microbiol 74(21):6554–6562
Maeda RN, Barcelos CA, Santa Anna LMM, Pereira N Jr (2013) Cellulase production by
Penicillium funiculosum and its application in the hydrolysis of sugar cane bagasse for second
generation ethanol production by fed batch operation. J Biotechnol 163(1):38–44
Mandels M, Weber J (1969) The production of cellulases. In: Hajny GJ, Reese ET (eds) Cellulases
and their applications. American Chemical Society, Washington, DC, pp 391–414
Marcuschamer DK, Olekowicz Popiel P, Simmons BA, Blanch HW (2012) The challenge of
enzyme cost in the production of lignocellulosic biofuels. Biotechnol Bioeng 109(4):1083–1087
Martinez D, Berka RM, Henrissat B, Saloheimo M, Arvas M, Baker SE, Chapman J, Kubicek CP,
Han CS, Ho I, Larrondo LF, de Leon AL, Magnuson JK, Merino S, Misra M, Nelson B, Putnam
N, Robbertse B, Salamov AA, Schmoll M, Terry A, Thayer N, Westerholm-Parvinen A,
Schoch CL, Yao J, Barabote R, Nelson MA, Detter C, Bruce D, Kuske CR, Xie G, Richardson
P, Rokhsar DS, Lucas SM, Rubin EM, Dunn-Coleman N, Ward M, Brettin TS (2008) Genome
sequencing and analysis of the biomass-degrading fungus Trichoderma reesei (syn, Hypocrea
jecorina). Nat Biotechnol 26:553–560
Mathew GM, Sukumaran RK, Singhania RR, Pandey A (2008) Progress in research on fungal cellulases for lignocellulose degradation. J Sci Ind Res 67:898–907
Morrison JM, Elshahed MS, Youssef NH (2016). Defined enzyme cocktail from the anaerobic
fungus Orpinomyces sp. strain C1A effectively releases sugars from pretreated corn stover and
switch grass. Sci. Rep. 6, 29217
Nagy T, Tunnicliffe RB, Higgins LD, Walters C, Gilbert HJ, Williamson MP (2007) Characterization
of a double dockerin from the cellulosome of the anaerobic fungus Piromyces equi. J Mol Biol
373:612–622
Nakkeeran E, Gowthaman MK, Umesh-Kumar S, Subramanian R (2012) Techno-economic analysis of processes for Aspergillus carbonarius polygalacturonase production. J Biosci Bioeng
113:634–640
Nigam P, Singh D (1996) Processing of agricultural wastes in solid-state fermentation for cellulolytic enzyme production. J Sci Ind Res 55:457–467
Nitta M, Furukawa T, Shida Y, Mori K, Kuhara S, Morikawa Y, Ogasawara W (2012) A new Zn
(II)2Cys6-type transcription factor BglR regulates β-glucosidase expression in Trichoderma
reesei. Fungal Genet Biol 49(5):388–397
Ooijkaas LP, Weber FJ, Buitelaar RM, Tramper J, Rinzema A (2000) Defined media and inert
supports: their potential as solid-state fermentation production systems. TIBTECH 18:356–360
Pandey A (2003) Solid-state fermentation. Biochem Eng J 13:81–84
Payne CM, Knott BC, Mayes HB, Hansson H, Himmel ME, Sandgren M, Ståhlberg J, Beckham
GT (2015) Fungal cellulases. Chem Rev 115(3):1308–1448
Pereira BMP, Alvarez TM, da Silva Delabona P, Dillon AJP, Squina FM, da Cruz P (2013)
Cellulase on-site production from sugar cane bagasse using Penicillium echinulatum. Bioenerg
Res 6:1052
Pirota RDPB, Delabona PS, Farinas CS (2014) Enzymatic hydrolysis of sugarcane bagasse using
enzyme extract and whole solid-state fermentation medium of two newly isolated strains of
Aspergillus oryzae. Chem Eng Trans 38:259–264
Placido J, Capareda S (2015) Ligninolytic enzymes: a biotechnological alterative for bioethanol
production. Bioresour Bioproc 2:23
Praestgaard E, Elmerdahl J, Murphy L, Nymand S, McFarland KC, Borch K, Westh P (2011) A
kinetic model for the burst phase of processive cellulases. FEBS J 278(9):1547–1560
Pu Y, Hu F, Huang F, Davison BH, Ragauskas AJ (2013) Assessing the molecular structure basis
for biomass recalcitrance during dilute acid and hydrothermal pretreatments. Biotechnol
Biofuels 6:15
R.K. Sukumaran et al.
