Production of Manganese Peroxidase by Trametes villosa on Unexpensive Substrate and Its Application in the Removal of Lignin from Agricultural Wastes
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Author(s)
Manganese peroxidase (MnP) is a ligninolytic enzyme
that is involved in the removal of lignin from the cell wall of plants.
This removal facilitates the access of hydrolytic enzymes to the
carbohydrate polymers that are hydrolyzed to simple sugars, which allows
the subsequent fermentation to obtain bioproducts, such as ethanol. In
this work, response surface methodology (RSM) was employed to optimize
the culture conditions on unexpensive substrate for MnP secretion by Trametes villosa. Three independent variables were evaluated (i.e.,
temperature, moisture content and pH). The crude extract containing MnP
was used in the delignification experiment and it caused a reduction in
lignin content for all residues tested: 35.05 ± 1.45 (%) for the sugar
cane bagasse; 63.11 ± 0.06 (%) for the sisal fiber and 39.61 ± 0.39 (%)
for the coconut shell, under the reaction conditions tested after 4
hours of fermentation. The preliminary results exhibited the potential
application of this enzyme in the removal of lignin from plant residues.
However, the conditions should be evaluated and optimized for each
residue type.
Cite this paper
Silva, M. , Souza, V. , Santos, V. , Kamida, H. ,
Vasconcellos-Neto, J. , Góes-Neto, A. and Bello Koblitz, M. (2014)
Production of Manganese Peroxidase by Trametes villosa on Unexpensive Substrate and Its Application in the Removal of Lignin from Agricultural Wastes. Advances in Bioscience and Biotechnology, 5, 1067-1077. doi: 10.4236/abb.2014.514122.
| [1] |
Singh, R., Ashish S., Sapna, T.
and Monika, S. (2014) A Review on Delignification of Lignocellulosic
Biomass for Enhancement of Ethanol Production Potential. Renewable and
Sustainable Energy Reviews, 32, 713-728. http://dx.doi.org/10.1016/j.rser.2014.01.051 |
| [2] |
Chang, A.J., Fan, J.Y. and Wen,
X.H. (2012) Screening of Fungi Capable of Highly Selective Degradation
of Lignin in Rice Straw. International Biodeterioration &
Biodegradation, 72, 26-30. http://dx.doi.org/10.1016/j.ibiod.2012.04.013 |
| [3] |
Hofrichter, M. (2002) Review:
Lignin Conversion by Manganese Peroxidase (MnP). Enzyme and Microbial
Technology, 30, 454-466. http://dx.doi.org/10.1016/S0141-0229(01)00528-2 |
| [4] |
Majumdar, S., Tiit, L.K., Jose,
O.S., Stefan, B., Satish, K.N., John, E.C. and John, A.G. (2014) Roles
of Small Laccases from Streptomyces in Lignin Degradation. Biochemistry,
53, 4047-4058. http://dx.doi.org/10.1021/bi500285t |
| [5] |
Fujii, K., Mari, U., Chie, H.,
Shinya, F. and Takashi, K. (2013) Environmental Control of Lignin
Peroxidase, Manganese Peroxidase, and Laccase Activities in Forest Floor
Layers in Humid Asia. Soil Biology and Biochemistry, 57, 109-115. http://dx.doi.org/10.1016/j.soilbio.2012.07.007 |
| [6] |
Knezevic, A., Ivan, M., Mirjana,
S. and Jelena, V. (2013) Potential of Trametes Species to Degrade
Lignin. International Biodeterioration & Biodegradation, 85, 52-56. http://dx.doi.org/10.1016/j.ibiod.2013.06.017 |
| [7] |
Elisashvili, V. and
Kachlishvili, V. (2009) Physiological Regulation of Laccase and
Manganese Peroxidase Production by White-Rot Basidiomycetes. Journal of
Biotechnology, 144, 37-42. http://dx.doi.org/10.1016/j.jbiotec.2009.06.020 |
| [8] |
Hiscox, J., Baldrian, P.,
Rogers, H. and Boddy, L. (2010) Changes in Oxidative Enzyme Activity
during Interspecific Mycelial Interactions Involving the White-Rot
Fungus Trametes versicolor. Fungal Genetic and Biology, 47, 562-571. http://dx.doi.org/10.1016/j.fgb.2010.03.007 |
| [9] |
Tuomela, M., Vikman, M.,
Hatakka, A. and Itavaara, M. (2000) Biodegradation of Lignin in Compost
Environment: A Review. Bioresource Technology, 72, 169-183. http://dx.doi.org/10.1016/S0960-8524(99)00104-2 |
| [10] |
Sun, X., Zhang, R. and Zhang, Y.
(2004) Production of Lignocellulolytic Enzymes by Trametes gallica and
Detection of Polysaccharide Hydrolase and Laccase Activities in
Polyacrylamide Gels. Jounal of Basic Microbiology, 44, 220-231. http://dx.doi.org/10.1002/jobm.200310376 |
| [11] |
Songulashvili, G., Elisashvili,
V., Wasser, S.P., Nevo, E. and Hadar, Y. (2007) Basidiomycetes Laccase
and Manganese Peroxidase Activity in Submerged Fermentation of Food
Industry Wastes. Enzyme and Microbial Technology, 41, 57-61. http://dx.doi.org/10.1016/j.enzmictec.2006.11.024 |
| [12] |
Irbe, I., Elisashvili, V.,
Asatiani, M.D., Janberga, A., Andersone, I., Andersons, B., Biziks, V.
and Grinins, J. (2014) Lignocellulolytic Activity of Coniophora puteana
and Trametes versicolor in Fermentation of Wheat Bran and Decay of
Hydrothermally Modified Hardwoods. International Biodeterioration &
Biodegradation, 86, 71-78. http://dx.doi.org/10.1016/j.ibiod.2013.06.027 |
| [13] |
Arantes, V., Silva, E.M. and
Milagres, A.M.F. (2011) Optimal Recovery Process Conditions for
Manganese Peroxidase Obtained by Solid-State Fermentation of Eucalyptus
Residue Using Lentinula edodes. Biomass and Bioenergy, 35, 4040-4044. http://dx.doi.org/10.1016/j.biombioe.2011.06.042 |
| [14] |
Lopes, M.A., Gomes, D.S.,
Koblitz, M.G.B., Pirovani, C.P, Cascardo, J.C.M., Góes-Neto, A. and
Micheli, F. (2008) Use of Response Surface Methodology to Examine
Chitinase Regulation in the Basidiomycete Moniliophthora perniciosa.
Mycological Research, 112, 399-406. http://dx.doi.org/10.1016/j.mycres.2007.10.017 |
| [15] |
Levin, L., Herrmann, C. and
Papinutti, V.L. (2008) Optimization of Lignocellulolytic Enzyme
Production by the White-Rot Fungus Trametes trogii in Solid-State
Fermentation Using Response Surface Methodology. Biochemical Engineering
Journal, 39, 207-214. http://dx.doi.org/10.1016/j.bej.2007.09.004 |
| [16] | Raol, G.G., Prajapati, V.S. and Raol, B.V. (2014) Formulation of Low-Cost, Lactose-Free Production Medium by Response Surface Methodology for the Production of β-Galactosidase Using Halotolerant Aspergillus tubengensis GR-1. Biocatalysis and Agricultural Biotechnology. |
| [17] |
Qiu, J., Song, F., Qiu, Y., Li,
X. and Guan, X. (2013) Optimization of the Medium Composition of a
Biphasic Production System for Mycelial Growth and Spore Production of
Aschersonia placenta Using Response Surface Methodology. Journal of
Invertebrate Pathology, 112, 108-115. http://dx.doi.org/10.1016/j.jip.2012.10.010 |
| [18] | Palmieri, G., Cennamo, G. and Sannia, G. (2005) Remazol Brilliant Blue R Decolourisation by the Fungus Pleurotus ostreatus and Its Oxidative Enzymatic System. Enzyme and Microbial Technology, 36, 17-24. |
| [19] | Uetanabaro, A.P.T. and Góes-Neto, A. (2006) Importance of Culture Collections of Microorganisms (CCMs) for the Conservation of Microbial Biotechnological Resources of the Brazilian Semi-Arid Region. In: Queiroz, L.P., Rapini, A. and Giulietti, A.M., Eds., Towards Greater Knowledge of the Brazilian Semi-Arid Biodiversity, 1st Edition, Ministério da Ciência e Tecnologia, Brasília-DF, 41-43. |
| [20] |
Drechsler-Santos, E.R.,
Gibertoni, T.B., Góes-Neto, A. and Cavalcanti, M.A.Q. (2009) A
Re-Evalutation of the Lignocellulolytic Agaricomycetes from the
Brazilian Semi-Arid Region. Mycotaxon, 108, 241-244. http://dx.doi.org/10.5248/108.241 |
| [21] |
Kuwahara, M., Glenn, J.K.,
Morgan, M.N. and Gold, M.H. (1984) Separation and Characterization of
Two Extracellular H2O2-Dependent Oxidases from Ligninolytic Cultures of
Phanerochaete chrysosporium. FEBS Letters, 169, 247-250. http://dx.doi.org/10.1016/0014-5793(84)80327-0 |
| [22] |
Menezes, C.R., Silva, I.S. and
Durrant, L.R. (2009) Bagaço de cana: Fonte para produção de enzimas
ligninocelulolíticas. Estudos Tecnológicos, 5, 68-78. http://dx.doi.org/10.4013/ete.2009.51.05 |
| [23] |
Murthy, M.V.R., Padmanbham, S.,
Ramakrishna, M. and Lonsane, B.K. (1997) Comparison of Nine Different
Caseinolytic Assays for Estimation of Proteinase Activity and Further
Improvement of the Best Method. Food Biotechnology, 11, 1-23. http://dx.doi.org/10.1080/08905439709549919 |
| [24] | Van Soest, P.J. (1994) Nutritional Ecology of the Ruminant. Cornell University Press, Ithaca. |
| [25] |
Cupul, W.C., Abarca, G.H.,
Carrera, D.M. and Vázquez, R.R. (2014) Enhancement of Ligninolytic
Enzyme Activities in a Trametes maxima-Paecilomyces carneus Co-Culture:
Key Factors Revealed after Screening Using a Plackett-Burman
Experimental Design. Electronic Journal of Biotechnology, 17, 114-121. http://dx.doi.org/10.1016/j.ejbt.2014.04.007 |
| [26] |
Fernández-Fueyo, E., Castanera,
R., Ruiz-Dueñas, F.J., López-Lucendo, M.F., Ramírez, L., Pisabarro, A.G.
and Martínez, A.T. (2014) Ligninolytic Peroxidase Gene Expression by
Pleurotus ostreatus: Differential Regulation in Lignocellulose Medium
and Effect of Temperature and pH. Fungal Genetics and Biology, 72,
150-161. http://dx.doi.org/10.1016/j.fgb.2014.02.003 |
| [27] |
Fink-Boots, M., Malarczyk, E.
and Leonowicz, A. (1999) Increased Enzymatic Activities and Levels of
Superoxide Anion and Phenolic Compounds in Cultures of Basidiomycetes
after Temperature Stress. Acta Biotechnology, 19, 319-330. http://dx.doi.org/10.1002/abio.370190407 |
| [28] | Elisashvili, V., Torok, T., Kachlishvili, E., Khardziani, T. and Metreveli, E. (2011) Evaluation and Regulation of the Lignocellulolytic Activity of Novel White-Rot Basidiomycetes. Global Journal of Biochemistry, 2, 134-141. |
| [29] |
Jaszek, M., Grzywnowicz, K.,
Malarczyk, E. and Leonowicz, A. (2006) Enhanced Extracellular Laccase
Activity as a Part of the Response System of White Rot Fungi Trametes
versicolor and Abortiporus biennis to Paraquat-Caused Oxidative Stress
Conditions. Pesticide Biochemistry and Physiology, 85, 147-154. http://dx.doi.org/10.1016/j.pestbp.2006.01.002 |
| [30] |
Wang, F., Hu, J., Guo, C. and
Liu, C. (2014) Enhanced Laccase Production by Trametes versicolor Using
Corn Steep Liquor as Both Nitrogen Source and Inducer. Bioresource
Technology, 166, 602-605. http://dx.doi.org/10.1016/j.biortech.2014.05.068 |
| [31] |
Carabajal, M., Harald, K.,
Laura, L., Nico, J., Martin, H. and René, U. (2013) The Secretome of
Trametes versicolor Grown on Tomato Juice Medium and Purification of the
Secreted Oxidoreductases Including a Versatile Peroxidase. Journal of
Biotechnology, 168, 15-23. http://dx.doi.org/10.1016/j.jbiotec.2013.08.007 |
| [32] |
Baborová, P., Möder, M.,
Baldrian, P., Cajthamlová, K. and Cajthaml, T. (2006) Purification of a
New Manganese Peroxidase of the White-Rot Fungus Irpex lacteus, and
Degradation of Polycyclic Aromatic Hydrocarbons by the Enzyme. Research
in Microbiology, 157, 248-253. http://dx.doi.org/10.1016/j.resmic.2005.09.001 |
| [33] |
Machado, K.M.G., Matheus, R.D.
and Bononi, V.L.R. (2005) Ligninolytic Enzymes Production and Remazol
Brilliant Blue R Decolorization by Tropical Brazilian Basidiomycetes
Fungi. Brazilian Journal of Microbiology, 36, 246-252. http://dx.doi.org/10.1590/S1517-83822005000300008 |
| [34] |
Kapich, A.N., Prior, B.A.,
Botha, A., Galkin, S., Lundell, T. and Hatakka, A. (2004) Effect of
Lignocellulose-Containing Substrates on Production of Ligninolytic
Peroxidases in Submerged Cultures of Phanerochaete chrysosporium ME-446.
Enzyme and Microbial Technology, 34, 187-195. http://dx.doi.org/10.1016/j.enzmictec.2003.10.004 |
| [35] |
Kapich, A.N., Steffen, K.,
Hofrichter, M. and Hatakka, A. (2005) Involvement of Lipid Peroxidation
in the Degradation of a Non-Phenolic Lignin Model Compound by Manganese
Peroxidase of the Litter-Decomposing Fungus Stropharia coronilla.
Biochemical and Biophysical Research Communications, 330, 371-377. http://dx.doi.org/10.1016/j.bbrc.2005.02.167 |
| [36] |
Lopez, M.J., Vargas-García,
M.C., Suárezestrella, F., Nichols, N.N., Dien, B.S. and Moreno, J.
(2007) Lignocellulose-Degrading Enzymes Produced by the Ascomycete
Coniochaeta ligniaria and Related Species: Application for a
Lignocellulosic Substrate Treatment. Enzyme and Microbial Technology,
40, 794-800. http://dx.doi.org/10.1016/j.enzmictec.2006.06.012 |
| [37] |
Yamanaka, R., Soares, C.F.,
Matheus, D.R. and Machad, K.M.G. (2008) Lignolytic Enzymes Produced by
Trametes villosa CCB176 under Different Culture Conditions. Bra-zilian
Journal of Microbiology, 39, 78-84. http://dx.doi.org/10.1590/S1517-83822008000100019 |
| [38] |
Elisashvili, V.V., Penninckx,
M., Kachlishvili, E., Tsiklauri, N., Metreveli, E., Kharziani, T. and
Kvesitadze, G. (2008) Lentinus edodes and Pleurotus Species
Lignocellulolytic Enzymes Activity in Submerged and Solid-State
Fermentation of Lignocellulosic Wastes of Different Composition.
Bioresource Technology, 99, 457-462. http://dx.doi.org/10.1016/j.biortech.2007.01.011 |
| [39] | Elisashvili, V., Parlar, H., Kachlishvili, E., Chichua, D. and Kvesitadze, G. (2001) Ligninolytic Activity of Basidiomycetes Grown under Submerged and Solid-State Fermentation on Plant Raw Material (Sawdust of Grapevine Cuttings). Advances in Food Science, 23, 117-123. |
| [40] |
Xu, F.J., Chen, H.Z. and Li,
Z.H. (2001) Solid-State Production of Lignin Peroxidase (LiP) and
Manganese Peroxidase (MnP) by Phanerochaete chrysosporium Using
Steam-Exploded Straw as Substrate. Bioresource Technology, 80, 149-151. http://dx.doi.org/10.1016/S0960-8524(01)00082-7 |
| [41] |
Vassilev, N., Requena, A.R.,
Nieto, L.M., Nikolaeva, I. and Vassilev, M. (2009) Production of
Manganese Peroxidase by Phanerochaete chrisosporium Grown on Medium
Containing Agro-Wastes/Rock Phosphate and Biocontrol Properties of the
Final Product. Industrial Crops and Products, 30, 28-32. http://dx.doi.org/10.1016/j.indcrop.2009.01.001 |
| [42] |
Papinutti, V.L. and Forchiassin,
F. (2007) Lignocellulolytic Enzymes from Fomes sclerodermeus Growing in
Solid-State Fermentation. Journal of Food Engineering, 81, 54-59. http://dx.doi.org/10.1016/j.jfoodeng.2006.10.006 |
| [43] |
Wan, C. and Li, Y. (2012) Fungal
Pre-treatment of Lignocellulosic Biomass. Biotechnology Advances, 30,
1447-1457. http://dx.doi.org/10.1016/j.biotechadv.2012.03.003 |
| [44] |
Arora, D.S., Chander, M. and
Gill, P.K. (2002) Involvement of Lignin Peroxidase, Manganese Peroxidase
and Laccase in Degradation and Selective Ligninolysis of Wheat Straw.
International Biodeterioration & Biodegradation, 50, 115-120. http://dx.doi.org/10.1016/S0964-8305(02)00064-1 |
| [45] |
Deswal, D., Gupta, R. Nandal, P.
and Kuhad, R.C. (2013) Fungal Pretreatment Improves Amenability of
Lignocellulosic Material for Its Saccharification to Sugars.
Carbohydrate Polymers, 99, 264-269. http://dx.doi.org/10.1016/j.carbpol.2013.08.045 |
| [46] |
Moniruzzaman, M. and Ono, T.
(2012) Ionic Liquid Assisted Enzymatic Delignification of Wood Biomass: A
New “Green” and Efficient Approach for Isolating of Cellulose Fibers.
Biochemical Engineering Journal, 60, 156-160. http://dx.doi.org/10.1016/j.bej.2011.11.001 |
| [47] |
Mukhopadhyay, M., Kuila, A.,
Tuli, D.K. and Banerjee, R. (2011) Enzymatic Depolymerization of Ricinus
communis, a Potential Lignocellulosic for Improved Saccharification.
Biomass Bioenergy, 35, 3584-3591. http://dx.doi.org/10.1016/j.biombioe.2011.05.013 eww141225lx |
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