Bon EPS, Ferrara MA, Corvo ML (2008) Enzymes in biotechnology: production, applications and
market. Rio de Janeiro. Interciencia; UFRJ: CAPES: FAPERJ: FCT (Portugal), Rio de Janeiro
Borjesson J, Engqvist M, Sipos B, Tjerneld F (2007) Effect of poly(ethylene glycol) on enzymatic
hydrolysis and adsorption of cellulase enzymes to pre-treated lignocellulose. Enzyme Microbial
Technol 41(1–2):186–195
Botella I, De Ory I, Webb C, Cantero D, Blandino A (2005) Hydrolytic enzyme production by
Aspergillus awamori on grape pomace. Biochem Eng J 26:100–106
Bozell JJ, Petersen GR (2010) Technology development for the production of bio- based products
from biorefinery carbohydrates-The US Department of Energy’s “Top10” revisited. Green
Chem 12(4):525–728
Chandel AK, Chandrasekhar G, Silva MB, da Silva SS (2012) The realm of cellulases in biorefinery
development. Crit Rev Biotechmol 32(3):187–202
Chang X, Minnan L, Xiaobing W, Huijuan X, Zhongan C, Fengzhang Z, Liangshu X (2006)
Screening and characterization of the high cellulase producing strain Aspergillus glaucus XC9.
Front Biol China 1:35–40
Chellapandi P, Abha AJ (2009) Enhanced endoglucanase production by soil isolates of Fusarium
sp. and Aspergillus sp. through submerged fermentation process. Turk J Biochem 34
(4):209–214
Chin TC, Cole Anthony LJ (1982) Cellulase production by the thermophilic fungus, Thermoascus
aurantiacus. Pertanika 5(2):255–262
Chinedu NS, Okachi VJ, Smith HA, Okafor UA, Onyegema Okerenta BM, Omidiji O (2007) Effect
of carbon sources on cellulase production by Penicillium chrysogenum PCL 501.Afr. J Biochem
Res 1(1):006–010
Chinedu SN, Okochi VI, Omidiji O (2011) Cellulase Production by wild strains of Aspergillus
niger, Penicillium chrysogenum and Trichoderma harzianum grown on waste cellulosic
materials. IFE J Sci 13(1):57–62
Coelho MAZ, Leite SGF, Rosa MF, Furtado AAL (2001) Utilization of agro-industrial residues:
production of enzymes from the green coconut shell. CEPPA News lett 19:33–42
Coral G, Arikan B, Unaldi MN, Guvenmes H (2002) Some properties of crude carboxy-methyl
cellulase of Aspergillus niger Z10 wild-type strain. Turk J Biol 26:209–213
Couto SR, Sanromán MA (2006) Application of solid-state fermentation to food industry-a review.
J Food Eng 76:291–302
Cunha FM, Esperanca MN, Zangirolami TC, Badino AC, Farinas CS (2012) Sequential solid-state
and submerged cultivation of Aspergillus niger on sugarcane bagasse for the production of
cellulase. Bioresour Technol 112:270–274
Daroit DJ, Silveira ST, Hertz PF, Brandelli A (2007) Production of extracellular β-glucosidase by
Monascus purpureus on different growth substrates. Process Biochem 42:904–908
Dashtban M, Schraft H, Qin W (2009) Fungal bioconversion of lignocellulosic residues;
opportunities & perspectives. Int J Biol Sci 5(6):578–595
Davidson A, Blaxter M (2005) Ancient origin of glycosyl hydrolase family 9 cellulase genes. Mol
Biol Evol 22(5):1273–1284
Davies GJ, Wilson KS, Henrissat B (1997) Nomenclature for sugar-binding sub-sites in glycosyl
hydrolases. Biochem J 321:557–559
Davies GJ, Gloster TM, Henrissat B (2005) Recent structural insights into the expanding world of
carbohydrate-active enzymes. Curr Opin Struct Biol 15(6):637–645
Delabona PS, Farinas CS, Silva MR, Azzoni SF, Pradella JGC (2012) Use of a new Trichoderma
harzianum strain isolated from the Amazon rainforest with pre-treated sugar cane bagasse for
on-site cellulase production. Bioresour Technol 107:517–521
Diaz AB, De Ory I, Caro I, Blandino A (2012) Enhance hydrolytic enzymes production by
Aspergillus awamori on supplemented grape pomace. Food Bioprod Process 90(1):72–78
Dincer A, Telefoncu A (2006) Improving the stability of cellulase by immobilization on modified
polyvinyl alcohol coated chitosan beads. J Mol Catal B Enzyme 45:10–14
11 Significance of Process Parameters on Fungal Cellulase Production
317
market. Rio de Janeiro. Interciencia; UFRJ: CAPES: FAPERJ: FCT (Portugal), Rio de Janeiro
Borjesson J, Engqvist M, Sipos B, Tjerneld F (2007) Effect of poly(ethylene glycol) on enzymatic
hydrolysis and adsorption of cellulase enzymes to pre-treated lignocellulose. Enzyme Microbial
Technol 41(1–2):186–195
Botella I, De Ory I, Webb C, Cantero D, Blandino A (2005) Hydrolytic enzyme production by
Aspergillus awamori on grape pomace. Biochem Eng J 26:100–106
Bozell JJ, Petersen GR (2010) Technology development for the production of bio- based products
from biorefinery carbohydrates-The US Department of Energy’s “Top10” revisited. Green
Chem 12(4):525–728
Chandel AK, Chandrasekhar G, Silva MB, da Silva SS (2012) The realm of cellulases in biorefinery
development. Crit Rev Biotechmol 32(3):187–202
Chang X, Minnan L, Xiaobing W, Huijuan X, Zhongan C, Fengzhang Z, Liangshu X (2006)
Screening and characterization of the high cellulase producing strain Aspergillus glaucus XC9.
Front Biol China 1:35–40
Chellapandi P, Abha AJ (2009) Enhanced endoglucanase production by soil isolates of Fusarium
sp. and Aspergillus sp. through submerged fermentation process. Turk J Biochem 34
(4):209–214
Chin TC, Cole Anthony LJ (1982) Cellulase production by the thermophilic fungus, Thermoascus
aurantiacus. Pertanika 5(2):255–262
Chinedu NS, Okachi VJ, Smith HA, Okafor UA, Onyegema Okerenta BM, Omidiji O (2007) Effect
of carbon sources on cellulase production by Penicillium chrysogenum PCL 501.Afr. J Biochem
Res 1(1):006–010
Chinedu SN, Okochi VI, Omidiji O (2011) Cellulase Production by wild strains of Aspergillus
niger, Penicillium chrysogenum and Trichoderma harzianum grown on waste cellulosic
materials. IFE J Sci 13(1):57–62
Coelho MAZ, Leite SGF, Rosa MF, Furtado AAL (2001) Utilization of agro-industrial residues:
production of enzymes from the green coconut shell. CEPPA News lett 19:33–42
Coral G, Arikan B, Unaldi MN, Guvenmes H (2002) Some properties of crude carboxy-methyl
cellulase of Aspergillus niger Z10 wild-type strain. Turk J Biol 26:209–213
Couto SR, Sanromán MA (2006) Application of solid-state fermentation to food industry-a review.
J Food Eng 76:291–302
Cunha FM, Esperanca MN, Zangirolami TC, Badino AC, Farinas CS (2012) Sequential solid-state
and submerged cultivation of Aspergillus niger on sugarcane bagasse for the production of
cellulase. Bioresour Technol 112:270–274
Daroit DJ, Silveira ST, Hertz PF, Brandelli A (2007) Production of extracellular β-glucosidase by
Monascus purpureus on different growth substrates. Process Biochem 42:904–908
Dashtban M, Schraft H, Qin W (2009) Fungal bioconversion of lignocellulosic residues;
opportunities & perspectives. Int J Biol Sci 5(6):578–595
Davidson A, Blaxter M (2005) Ancient origin of glycosyl hydrolase family 9 cellulase genes. Mol
Biol Evol 22(5):1273–1284
Davies GJ, Wilson KS, Henrissat B (1997) Nomenclature for sugar-binding sub-sites in glycosyl
hydrolases. Biochem J 321:557–559
Davies GJ, Gloster TM, Henrissat B (2005) Recent structural insights into the expanding world of
carbohydrate-active enzymes. Curr Opin Struct Biol 15(6):637–645
Delabona PS, Farinas CS, Silva MR, Azzoni SF, Pradella JGC (2012) Use of a new Trichoderma
harzianum strain isolated from the Amazon rainforest with pre-treated sugar cane bagasse for
on-site cellulase production. Bioresour Technol 107:517–521
Diaz AB, De Ory I, Caro I, Blandino A (2012) Enhance hydrolytic enzymes production by
Aspergillus awamori on supplemented grape pomace. Food Bioprod Process 90(1):72–78
Dincer A, Telefoncu A (2006) Improving the stability of cellulase by immobilization on modified
polyvinyl alcohol coated chitosan beads. J Mol Catal B Enzyme 45:10–14
11 Significance of Process Parameters on Fungal Cellulase Production
317
