N.A. Adamafio, N.S. Sarpong, C.A. Mensah and M. Obodai
Asian Journal of Biochemistry, 2012, 7(3), 143-150.
The metal ion response profile and thermal stability of extracellular laccase from Pleurotus ostreatus strain EM-1, which is widely cultivated in Ghana, were investigated to provide information essential for the establishment of laccase-based applications in the country. P. ostreatus (Jacq. ex. fr) Kummer strain EM-1 was cultivated on a mixture of Triplochiton scleroxylon (wawa) sawdust, rice bran and lime. Extracellular laccase was isolated from spent sawdust four to six days after the appearance of mushroom pinheads and subjected to ammonium sulphate precipitation and gel filtration using Sephadex G-75. Laccase activity was assayed spectrophotometrically at 468 nm using 2,6-dimethoxyphenol in Mcilvaines citrate-phosphate buffer, pH 5.0. Two metal ions, Cu2+ and Mn2+, stimulated P. ostreatus strain EM-1 laccase activity. Cu2+ caused a maximal stimulatory effect of 324.4%, while Mn2+ exerted a more moderate stimulatory effect of 180.5%. Magnesium ions had no effect on the activity of the enzyme. Activity decreased by 77.4% after 20 min of incubation at 50°C. During seven days of storage at either 4 or -20°C, laccase activity decreased by 87.7-88.8%. This rate of deactivation was reduced to 28.1-32.8% over the same period when 20 mM CuSO4 was added to the enzyme prior to storage. The findings suggest that P. ostreatus strain EM-1 laccase would not be a suitable biocatalyst for high temperature processes. Furthermore, copper and to a lesser extent, manganese can be used as stimulatory additives during P. ostreatus strain EM-1 laccase-catalyzed processes at ambient temperature and for short-term storage of the enzyme.
ASCI-ID: 16-281
Asian Journal of Biochemistry, 2011, 6(3), 282-290.
Revista Internacional de Sociología, 2015, 73(1), e006. DOI: 10.3989/ris.2012.11.29
Purification and Characterization of an Extracellular, Thermo-Alkali-Stable, Metal Tolerant Laccase from Bacillus tequilensis SN4PLoS ONE, 2014, 9(5), e96951. DOI: 10.1371/journal.pone.0096951
The importance of fermentative conditions for the biotechnological production of lignin modifying enzymes from white-rot fungiFEMS Microbiology Letters, 2017, 364(13), . DOI: 10.1093/femsle/fnx134
Molecular cloning, expression and characterization of poxa1b gene from Pleurotus ostreatusMolecular Biology Reports, 2019, 46(1), 981. DOI: 10.1007/s11033-018-4555-3
Immobilization of Purified Fungal Laccase on Cost Effective Green Coconut Fiber and Study of its Physical and Kinetic Characteristics in Both Free and Immobilized FormCurrent Biotechnology, 2019, 8(1), 3. DOI: 10.2174/2211550108666190201151816
Production of laccase enzyme from Curvularia lunata MY3: purification and characterizationFolia Microbiologica, 2024, 69(1), 221. DOI: 10.1007/s12223-023-01088-2
Optimisation and physicochemical characterisation of a thermo-alkali stable laccase produced by wastewater associated Bacillus sp. NU2Environmental Technology, 2024, 45(22), 4441. DOI: 10.1080/09593330.2023.2253503
Production, Biochemical Characterization, and Application of Laccase from Halophilic Curvularia lunata MLK46 Recovered from Mangrove RhizosphereBiology, 2025, 14(4), 402. DOI: 10.3390/biology14040402
Production and characterization of novel thermostable CotA-laccase from Bacillus altitudinis SL7 and its application for lignin degradationEnzyme and Microbial Technology, 2024, 172(), 110329. DOI: 10.1016/j.enzmictec.2023.110329
Refolding, characterization, and dye decolorization ability of a highly thermostable laccase from Geobacillus sp. JS12Protein Expression and Purification, 2020, 173(), 105646. DOI: 10.1016/j.pep.2020.105646
Purification and characterization of a novel white highly thermo stable laccase from a novel Bacillus sp. MSK-01 having potential to be used as anticancer agentInternational Journal of Biological Macromolecules, 2021, 170(), 232. DOI: 10.1016/j.ijbiomac.2020.12.082