PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2014 | 63 | 4 |

Tytuł artykułu

Production of ligninolytic enzymes by cultures of white rot fungi

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Some Basidiomycota were chosen for studies of key ligninases synthesis (25°C, 30 days) in modified medium (shaken or not cultures)with added wheat straw. Liquid Czapek medium with straw yielded a higher amount of laccase than peroxidase, ground straw induced enzyme worse than chopped straw. With peroxidase the reverse dependencies were observed. Laccase of Lentinus edodes synthesized two enzyme isoforms (ca 30 and 16 kDa). In T. versicolor culture active laccase protein with highest molecular mass ca 65 kDa was found. P. sajor-caju yielded three different peroxidase isoforms. Ligninase biosynthesis depended on strain, straw fragmentation extent, culture method and growth medium.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

63

Numer

4

Opis fizyczny

p.461-465,fig.

Twórcy

autor
  • Department of Microbial Biology, Faculty of Agriculture and Biology, Warsaw University of Life Sciences-SGGW, Warsaw, Poland
  • Department of Biochemistry, Faculty of Agriculture and Biology, Warsaw University of Life Sciences- SGGW, Warsaw, Poland
  • Department of Microbial Biology, Faculty of Agriculture and Biology, Warsaw University of Life Sciences-SGGW, Warsaw, Poland
autor
  • Department of Biochemistry, Faculty of Agriculture and Biology, Warsaw University of Life Sciences- SGGW, Warsaw, Poland
autor
  • Department of Vegetable and Medicinal Plants, Faculty of Horticulture, Biotechnology and Landscape Architecture, Warsaw University of Life Sciences-SGGW, Warsaw, Poland
autor
  • Department of Experimental Statistics and Bioinformatics, Faculty of Agriculture and Biology, Warsaw University of Life Sciences-SGGW, Warsaw, Poland
autor
  • Institute Technology and Life Sciences in Falenty, Raszyn, Poland
autor
  • Bionicum LTD, Warsaw, Poland

Bibliografia

  • Bertrand B., F. Martínez-Morales, R. Tinoco, S. Rojas-Trejo, L. Serrano-Carreón and M.R. Trejo-Hernández. 2013. Induction of laccases in Trametes versicolor by aqueous wood extracts. World J. Microbiol. Biotechnol. 30: 135–142.
  • Burbianka M., M. Pliszka and H. Burzyńska. 1983. Food Microbiol. (in Polish)PZWL, Wyd 5. Warsaw 520.
  • Claus H. 2003. Laccases and their occurrence in prokaryotes. Arch. Microbiol. 179: 145–150.
  • Criquet S., S. Tagger, G. Vogt, G. Iacasio and J. Le Petit. 1999. Laccase activity of forest litter. Soil Biol. Biochem. 31: 1239–1244.
  • Du Xueyu Li J., G. Gellerstedt, J. Rencoret, J. C. Del Río, A.T. Martínez and A. Gutiérrez. 2013. Understanding Pulp Delignification by Laccase-Mediator Systems through Isolation and Characterization of Lignin-Carbohydrate Complexes Biomacromolecules 14: 3073–3080.
  • Eriksson K.E.L. and R.A. Blanchette. 1990. Microbial and enzymatic degradation of wood and components. Springer-Verlag, Berlin, Heidelberg, New York, London, Paris, Tokyo, Hong Kong.
  • Galliano H., G. Gass, J.L. Seris and A.M. Boudet. 1991. Lignin degradation by Rigidoporus lignosus involves synergistic action of two oxidizing enzymes: Mn peroxidase and laccase. Enzyme Microb. Technol. 13: 478–482.
  • Hofrichter M. 2002. “Review: lignin conversion by manganese peroxidase (MnP)”. Enzyme and Microbial Technology 30: 454–66.
  • Huttermann A., C. Mai and A. Kharazipour. 2001. Modification of lignin for the production of new compounded materials. Apply Microbiol. Biotechnol. 55: 387–394.
  • Jung H., F. Xu and K. Li. 2002. Purification and characterization of laccase from wood-degrading fungus Trichophyton rubrum LKY-7. Enzyme Microbial. Tech. 30: 161–168.
  • Karp S.G., V. Faraco, A. Amore, L. Birolo, C. Giangrande, V.T. Soccol, A. Pandey and C.R. Soccol. 2012. Characterization of laccase isoforms produced by Pleurotus ostreatus in solid state fermentation of sugarcane bagasse. Bioresour Technol. 114: 735–739.
  • Koroleva O.V., E.V. Stepanova, V.P. Gavrilova, N.S. Yakovleva, E.O. Landesman, I.S. Yavmetdinov and A. Yaropolov. 2002. Laccase and Mn-peroxidase production by Coriolus hirsutus strain 075 in a jar fermentor. J. Bioscience Bioengineering 5: 449–452.
  • Krajewski A. and P. Witomski. 2003. Protection of Wood, Ed. SGGW-Warsaw (in Polish) p. 271.
  • Kunamneni A., F.J. Plou, A. Ballesteros and M. Alcalde. 2008. Laccases and their applications: A patent review, Departamento de Biocatálisis, Instituto de Catálisis y Petroleoquímica, CSIC, Cantoblanco, 28049 Madrid, Spain. http://digital.csic.es/bitstream/10261/9595/1/postprint_laccase_patent_review.pdf
  • Leonowicz A. and K. Grzywnowicz. 1981. Quantitative estimation of laccase forms in some white-rot fungi using syringaldazine asa substrate. Enzyme. Microb. Technol. 3: 55–57.
  • Lettera V., A. Piscitelli, G. Leo, L. Birolo, C. Pezzella and G. Sannia. 2010. Identification of a new member of Pleurotus ostreatus laccase family from mature fruiting body. Fungal Biol. 114: 724–730.
  • Libardi N.Jr., R.M. Gern, S.A. Furlan and D. Schlosser. 2012. Laccase production by the aquatic ascomycete Phoma sp. UHH 5-1-03 and the white rot basidiomycete Pleurotus ostreatus DSM 1833 during submerged cultivation on banana peels and enzyme applicability for the removal of endocrine-disrupting chemicals. Appl. Biochem. Biotechnol. 167: 1144–1156.
  • Mayer A.M. and R.C. Staples. 2002. Laccase: New function for an old enzyme. Phytochemistry 60: 551–565.
  • Michael J.F.C., S.D. Dass, E.A. Grulke and C.A. Reddy. 1991. Role of manganese proxidases and lignin peroxidases of Phanerochaete chrysosporium in the decolorization of kraft bleach plant effluent. Appl. Environ. Microbiol. 57: 2368–2375.
  • Morais H., C. Ramos, E. Forgack, T. Csershati and J. Oliviera. 2001. Lignin-modifying enzymes of Pleurotus ostreatus grown on agro-residues. Acta Alimentaria 30: 363–372.
  • Nazareth S.W. and J.D. Sampy. 2003. Production and characterisation of lignocellulases of Panus tigrinus and their application. International Biodeterioration and Biodegradation 52: 207–214.
  • Niku-Paavola M.L, M. Raaska and M. Itavara. 1990. Detection of white-rot fungi by a nontoxic stain. Mycol. Res. 94: 27–31.
  • Riva S. 2006. Laccases: blue enzymes for green chemistry. Trends Biotechnol. 24: 219–226.
  • Ruttimann-Johnson C., L.Salas, R.Vicuna and T.K. Kirk. 1993. Extracellular enzyme production and synthetic lignin mineralization by Ceriporiopsis subvermispora. Appl. Environmental Microbiology 59: 1792–1797.
  • Sanchez C. 2009. Lignocellulosic residues: Biodegradation and bioconversion by fungi. Biotechnology Advances 27: 185–194.
  • Shah M.P., G.V. Reddy, R. Banerjee, P.R. Babu and I.L. Kothari. 2005. Microbial degradation of banana wastes under solid state bioprocessing using two lignocellulolytic fungi Phylostica spp. MPS-001 and Aspergillus spp. MPS-002. Process Biochemistry 40: 445–451.
  • Shi Y.F., Y. Hui-Sheng and J.A. Buswell. 1997. Effect of nutrient nitro-gen and manganese on manganese peroxidase and laccase production by Pleurotus sajor-caju, FEMS Microbiology Letters 147: 133–137.
  • Toczko M. and A. Grzelińska. 1997. Materials from Biochemistry. ed. SGGW, Warsaw (in Polish) book for students.
  • Zadrazil F. 1975. Influence of CO2 concentration on the mycelium growth of three Pleurotus species. European J. Appl. Microbiol. 1: 327–335.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-a7c2ef6b-15f1-46c9-80da-a78f5a448cd1
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.