African Journal of
Biotechnology

  • Abbreviation: Afr. J. Biotechnol.
  • Language: English
  • ISSN: 1684-5315
  • DOI: 10.5897/AJB
  • Start Year: 2002
  • Published Articles: 12487

Full Length Research Paper

Production of thermophilic and acidophilic endoglucanases by mutant Trichoderma atroviride 102C1 using agro-industrial by-products

Mariana Menezes Quadros de Oliveira
  • Mariana Menezes Quadros de Oliveira
  • Centro de Ciências da Saúde (CCS), Instituto de Microbiologia Prof. Paulo de Góes, Departamento de Microbiologia Geral, Avenida Carlos Chagas Filho, 373, Bloco I, Laboratório 055, CEP: 21941-902, Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, RJ, Brazil.
  • Google Scholar
André Luiz Grigorevski de Lima
  • André Luiz Grigorevski de Lima
  • Centro de Ciências da Saúde (CCS), Instituto de Microbiologia Prof. Paulo de Góes, Departamento de Microbiologia Geral, Avenida Carlos Chagas Filho, 373, Bloco I, Laboratório 055, CEP: 21941-902, Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, RJ, Brazil.
  • Google Scholar
Elba Pinto da Silva Bon
  • Elba Pinto da Silva Bon
  • Centro de Ciências Matemáticas e Natureza (CCMN), Instituto de Química, Departamento de Bioquímica, Avenida Athos da Silveira Ramos, 149, Bloco A, sala 539, CEP: 21941-909, Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, RJ, Brazil.
  • Google Scholar
Rosalie Reed Rodrigues Coelho
  • Rosalie Reed Rodrigues Coelho
  • Centro de Ciências da Saúde (CCS), Instituto de Microbiologia Prof. Paulo de Góes, Departamento de Microbiologia Geral, Avenida Carlos Chagas Filho, 373, Bloco I, Laboratório 055, CEP: 21941-902, Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, RJ, Brazil.
  • Google Scholar
Rodrigo Pires do Nascimento
  • Rodrigo Pires do Nascimento
  • Centro de Tecnologia (CT), Escola de Química, Departamento de Engenharia Bioquímica, Avenida Athos da Silveira Ramos, 149, Bloco E, sala 108, CEP: 21941-909, Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, RJ, Brazil.
  • Google Scholar


  •  Received: 23 September 2015
  •  Accepted: 19 January 2016
  •  Published: 16 March 2016

References

Adsul MG, Bastawde KB, Varma AJ, Gokhale DV (2007). Strain improvement of Penicillium janthinellum NCIM 1171 for increased cellulase production. Bioresour. Technol. 98:1467-1473.
Crossref

 

Andrade JP, Bispo ASR, Marbach PAS, Nascimento RP (2011). Production and partial characterization of cellulases from Trichoderma sp. IS-05 isolated from Sandy Coastal Plains of Northeast Brazil. Enzyme Res. pp. 1-7.
Crossref

 
 

Antoni D, Zverlov VV, Schwarz WH (2007). Biofuels from microbes. Appl. Microbiol. Biotechnol. 77:23-35.
Crossref

 
 

Borges TA, Souza AT, Squina FM, Ria-o-Pachón DM, Santos AC (2014). Biochemical characterization of na endoxylanase from Pseudozyma brasiliensis sp. nov. strain GHG001 isolated from the intestinal tract of Chrysomelidae larvae associated to sugarcane roots. Proc. Biochem. 49:77-83.
Crossref

 
 

César T, Mrsa V (1996). Purification and properties of the xylanase produced by Thermomyces lanuginosus. Enzyme Microb. Technol. 19:289-296.
Crossref

 
 

Chand P, Aruna A, Maqsood AM, Rao LV (2005). Novel mutation method for increased cellulase production. J. Appl. Microbiol. 98:318-323.
Crossref

 
 

Chandra M, Kalra A, Sangwan NS, Gaurav SS, Darokar MP, Sangwan RS (2009). Development of a mutant of Trichoderma citrinoviride for enhanced production of cellulases. Bioresour. Technol. 100:1659-1662.
Crossref

 
 

Chu S, Majumdar A (2012). Opportunities and challenges for a

 
 

Deswal D, Gupta R, Nandal P, Kuhad RC (2014). Fungal pretreatment improves amenability of lignocellulosic material for its saccharification sugars. Carbohyd. Polym. 99:264-269.
Crossref

 
 

Gashe BA (1992). Cellulase production and activity by Trichoderma sp. A-001. J. Appl. Bacteriol. 73:79-82.
Crossref

 
 

Ghose TK (1987). Measurement of cellulase activities. Pure Appl. Chem. 59:257-268.
Crossref

 
 

Gottschalk LMF, Oliveira RA, Bon EPS (2010). Cellulases, xylanases, β-glucosidases and ferulic acid esterase produced by Trichoderma and Aspergillus act synergistically in the hydrolysis of sugarcane bagasse. J. Biochem. Eng. 51:72-78.
Crossref

 
 

Grigorevski-Lima AL, Oliveira MMQ, Nascimento RP, Bon EPS, Coelho, RRR (2013). Production and Partial characterization of cellulases and xylanases from Trichoderma atroviride 676 using lignocellulosic residual biomass. Appl. Biochem. Biotechnol. 169:1373-1385.
Crossref

 
 

Hopwood DA, Bibb MJ, Chater KF, Kieser T, Bruton CJ, Kieser HM, Lydiate DJ, Smith CP, Ward JM, Schrempf H (1985). Genetic manipulation of Streptomyces, a Laboratory Manual. The John Innes Institute, Norwich, United Kingdom.

 
 

Javed MR, Rashid MH, Nadeem H, Riaz M, Perveen R. (2009). Catalytic and thermodynamic characterization of endoglucanase (CMCase) from Aspergillus oryzae cmc-1. Appl. Biochem. Biotechnol. 157:483-497.
Crossref

 
 

Jiang X, Geng A, He N, Li Q (2011). New isolate of Trichoderma viride strain for enhanced cellulolytic enzyme complex production. J. Biosci. Bioeng. 111:121-127.
Crossref

 
 

Kaur J, Chadha BS, Kumar BA, Saim HS (2007). Purification and characterization of two endoglucanases from Melanocarpus sp. MTCC 3922. Bioresour. Technol. 98:74-81.
Crossref

 
 

Kovàcz K, Megyeri L, Szakacs G, Kubicek CP, Galbe M, Zacchi G (2008). Trichoderma atroviride mutants with enhanced production of cellulose and β-glucosidase on pretreated willow. Enzyme Microb. Technol. 43:48-55.
Crossref

 
 

Kovàcz K, Szakacs G, Zacchi G. (2009). Comparative enzymatic hydrolysis of pretreated spruce by supernatants, whole fermentation broths and washed mycelia of Trichoderma reesei and Trichoderma atroviride. Bioresour. Technol. 100:1350-1357.
Crossref

 
 

Li X, Yang H, Roy B, Park EY, Jiang L, Wang D, Miao Y (2010). Enhanced cellulose production of the Trichoderma viride mutated by microwave and ultraviolet. Microbiol. Res. 165:190-198.
Crossref

 
 

Mandels M, Weber J (1969). The production of cellulases. In: Cellulases and their applications. Advances in chemistry series, Edited by Gould RF, Washington, DC: Am. Chem. Soc. 95:391-414.
Crossref

 
 

Martins LF, Kolling D, Camassola M, Dillon AJP, Ramos LP (2008). Comparison of Penicillium echinulatum and Trichoderma reesei cellulases in relation to their activity against various cellulosic substrates. Bioresour. Technol. 99:1417-1424.
Crossref

 
 

Menon V, Rao M (2012). Trends in bioconversion of lignocellulose: Biofuels, platform chemicals & biorefinery concept. Prog. Energy Combust. Sci 38(4):522-550.
Crossref

 
 

Miller L (1959). Use of a dinitrosalicylic acid reagent for determination of reducing sugar. Anal. Chem. 31:426-428.
Crossref

 
 

Montenecourt BS, Eveleigh DE (1977). Semiquantitative plate assay for determination of cellulose production by Trichoderma viride. Appl. Environ. Microbiol. 33:178-183.

 
 

Naika GS, Kaul P, Prakash V (2007). Purification and charactherization of a new endoglucanase from Aspergillus aculeatus. J. Agric. Food Chem. 55:7566-7572.
Crossref

 
 

Oliveira MMQ, Grigorevski-Lima AL, Franco-Cirigliano MN, Nascimento RP, Bon EPS, Coelho RRR (2014). Trichoderma atroviride 102C1 mutant: a high endoxylanase producer for assisting lignocellulosic material degradation. J. Microbiol. Biochem. Technol. 6:236-241.
Crossref

 
 

Omer AM (2014). Energy efficiency improvement utilizing high technology: the path forward for renewable energy use in industry, buildings and sustainable development. Blue Biotechnol. J. 3(2):184-250.

 
 

Palonen H, Tjerneld F, Zacchi G, Tenkanen M (2004). Adsorption of Trichoderma reesei CBH I and EG II and their catalytic domains on steam pretreated softwood and isolated lignin. J. Biotechnol. 107:65-72.
Crossref

 
 

Plant JE, Attwell RW, Smith CA (1988). A semi-micro quantitative assay for cellulolytic activity in microorganisms. J. Microbiol. Methods 7:259-263.
Crossref

 
 

Rosgaard L, Pedersen S, Cherry JR, Harris P, Meyer AS (2006). Efficiency of new fungal cellulase systems in boosting enzymatic degradation of barley straw lignocelluloses. Biotechnol. Prog. 22:493-498.
Crossref

 
 

Service RF (2007). Cellulosic ethanol: Biofuel researchers prepare to reap a new harvest. Science 315:1488-1491.
Crossref

 
 

Shirling EB, Gottlieb D (1966). Methods for characterization of Streptomyces species. Int. J. Syst. Bacteriol. 16:312-340.
Crossref

 
 

Soccol CR, Vandenberghe LPS, Medeiros ABP, Karp SG, Buckeridge M, Ramos LP, Pitarelo AP, Ferreira-Leitão V, Gottschalk LMF, Ferrara MA, Bon EPS, Moraes LMP, Araújo JA, Torres FAG (2010). Bioethanol from lignocellulose: Status and perspective in Brazil. Bioresour. Technol. 101:4820-4825.
Crossref

 
 

Sul OJ, Kim JH, Park SJ, Son YJ, Park BR, Chung DK, Jeong CS, Han IS (2004). Characterization and molecular cloning of a novel endoglucanase from Trichoderma sp. C-4. Appl. Microbiol. Biotechnol. 66:63-70.
Crossref

 
 

van Wyk JPH, Mohulatsi M (2003). Biodegradation of wastepaper by cellulase from Trichoderma viride. Bioresour. Technol. 86:21-23.
Crossref

 
 

Wilson DB (2011). Microbial diversity of cellulose hydrolysis. Curr. Opin. Microbiol. 14:259-263.
Crossref