期刊论文详细信息
BMC Biotechnology
Decolorization applicability of sol–gel matrix immobilized manganese peroxidase produced from an indigenous white rot fungal strain Ganoderma lucidum
Hafiz Muhammad Nasir Iqbal1  Muhammad Asgher1 
[1] Industrial Biotechnology Laboratory, Department of Chemistry and Biochemistry, University of Agriculture, Faisalabad, Pakistan
关键词: Toxicity reduction;    Decolorization;    Textile effluents;    Immobilization;    Sol–gel;    PAGE;    MnP;    G. lucidum;    Bio-catalysis;   
Others  :  1121370
DOI  :  10.1186/1472-6750-13-56
 received in 2012-12-16, accepted in 2013-07-12,  发布年份 2013
PDF
【 摘 要 】

Background

An eco-friendly treatment of industrial effluents is a major environmental concern of the modern world in the face of stringent environmental legislations. By keeping in mind the extensive industrial applications of ligninolytic enzymes, this study was performed to purify, and immobilize the manganese peroxidase (MnP) produced from an indigenous strain of Ganoderma lucidum. The present study was also focused on investigating the capability of immobilized MnP for decolorization of dye containing textile effluents.

Results

A large magnitude of an indigenous MnP (882±13.3 U/mL) was obtained from white rot fungal strain G. lucidum in solid state bio-processing of wheat straw under optimized fermentation conditions (moisture, 50%; substrate, 5 g; pH, 5.5; temperature, 30°C; carbon source, 2% fructose; nitrogen source, 0.02% yeast extract; C: N ratio, 25:1; fungal spore suspension, 5 mL and fermentation time period, 4 days). After ammonium sulfate fractionation and Sephadex-G-100 gel filtration chromatography, MnP was 4.7-fold purified with specific activity of 892.9 U/mg. G. lucidum MnP was monomeric protein as evident by single band corresponding to 48 kDa on native and denaturing SDS-PAGE. The purified MnP (2 mg/mL) was immobilized using a sol–gel matrix of tetramethoxysilane (TMOS) and proplytrimethoxysilane (PTMS). The oxidation of MnSO4 for up to 10 uninterrupted cycles demonstrated the stability and reusability of the immobilized MnP. Shelf life profile revealed that enzyme may be stored for up to 60 days at 25°C without losing much of its activity. To explore the industrial applicability of MnP produced by G. lucidum, the immobilized MnP was tested against different textile effluents. After 4 h reaction time, the industrial effluents were decolorized to different extents (with a maximum of 99.2%). The maximally decolorized effluent was analyzed for formaldehyde and nitroamines and results showed that the toxicity parameters were below the permissible limits.

Conclusions

In conclusion, G. lucidum MnP was immobilized by sol–gel matrix entrapment with an objective to enhance its practical efficiencies. The MnP was successfully entrapped into a sol- gel matrix of TMOS and PTMS with an overall immobilization efficiency of 93.7%. The sol- gel entrapped MnP seems to have prospective capabilities which can be useful for industrial purposes, especially for bioremediation of industrial effluents.

【 授权许可】

   
2013 Iqbal and Asgher; licensee BioMed Central Ltd.

【 预 览 】
附件列表
Files Size Format View
20150212013328870.pdf 1608KB PDF download
Figure 4. 103KB Image download
Figure 3. 55KB Image download
Figure 2. 49KB Image download
Figure 1. 96KB Image download
【 图 表 】

Figure 1.

Figure 2.

Figure 3.

Figure 4.

【 参考文献 】
  • [1]Stoilova I, Krastanov A, Stanchev V: Properties of crude laccase from Trametes versicolor produced by solid-substrate fermentation. Adv Biosci Biotechnol 2010, 1:208-215.
  • [2]Asgher M, Iqbal HMN: Enhanced catalytic features of sol–gel immobilized MnP isolated from solid state culture of Pleurotus ostreatus IBL-02. Chin Chem Lett 2013, 24:344-346.
  • [3]Asgher M, Iqbal HMN: Characterization of a novel manganese peroxidase purified from solid state culture of Trametes versicolor IBL-04. BioRes 2011, 6:4317-4330.
  • [4]Asgher M, Iqbal HMN, Irshad M: Characterization of purified and xerogel immobilized novel lignin peroxidase produced from Trametes versicolor IBL-04 using solid state medium of corncobs. BMC Biotechnol 2012, 12:46. BioMed Central Full Text
  • [5]Asgher M, Kamal S, Iqbal HMN: Improvement of catalytic efficiency, thermo-stability and dye decolorization capability of Pleurotus ostreatus IBL-02 laccase by hydrophobic Sol-gel entrapment. Chem Cent J 2012, 6(1):110. BioMed Central Full Text
  • [6]Asgher M, Ahmad Z, Iqbal HMN: Alkali and enzymatic delignification of sugarcane bagasse to expose cellulose polymers for saccharification and bio-ethanol production. Ind Crops Prod 2013, 44:488-495.
  • [7]Papinutti V, Forchiassin F: Lignocellulolytic enzymes from Fomes sclerodermeus growing in solid-state fermentation. J Food Eng 2007, 81(1):54-59.
  • [8]Asgher M, Jamil F, Iqbal HMN: Bioremediation potential of mixed white rot culture of Pleurotus ostreatus IBL-02 and Coriolus versicolor IBL-04 for textile industry wastewater. J Bioremed Biodegrad 2012, S1:007.
  • [9]Takano M, Nakamura M, Yamaguchi M: Glyoxal oxidase supplies hydrogen peroxide at hyphal tips and on hyphal wall to manganese peroxidase of white-rot fungus Phanerochaete crassa WD1694. J Wood Sci 2010, 56(4):307-313.
  • [10]Saratale RG, Saratale GD, Chang JS, Govindwar SP: Outlook of bacterial decolorization and degradation of azo dyes: A review. J Taiwan Inst Chem Eng 2011, 42:138-157.
  • [11]Ahmed I, Zia MA, Iftikhar T, Iqbal HMN: Characterization and detergent compatibility of purified protease produced from Aspergillus niger by utilizing agro wastes. BioRes 2011, 6(4):4505-4522.
  • [12]Xiao H, Huang J, Liu C, Jiang D: Immobilization of laccase on amine-terminated magnetic nano-composite by glutaraldehyde crosslinking method. Trans Nonferrous Met Soc China 2006, 16:s414-s418.
  • [13]Kunamneni A, Camarero S, García-Burgos C, Plou FJ, Ballesteros A, Alcalde M: Engineering and applications of fungal laccases for organic synthesis. Microb Cell Fact 2008, 7:32. BioMed Central Full Text
  • [14]Yinghui D, Qiuling W, Shiyu F: Laccase stabilization by covalent binding immobilization on activated polyvinyl alcohol carrier. Lett Appl Microbiol 2002, 35(6):451-456.
  • [15]Maas R, Chaudhari S: Adsorption and biological decolorization of azo dye reactive red 2 in semicontinuous anaerobic reactors. Proc Biochem 2005, 40:699-705.
  • [16]Verma P, Madamwar D: Production of ligninolytic enzymes for dye decolorization by cocultivation of white-rot fungi Pleurotus ostreatus and Phanerochaete chrysosporium under solid-state fermentation. App Biochem Biotechnol 2002, 102(1):109-118.
  • [17]Wariishi H, Valli K, Gold MH: Manganese (II) oxidation by manganese peroxidase from the basidiomycete Phanerochaete chrysosporium. Kinetic mechanism and role of chelators. J Biol Chem 1992, 267:23688-23695.
  • [18]Bradford MM: A rapid and sensitive method for quantification of microgram quantities of protein utilizing the principle of protein dye binding. Anal Biochem 1976, 72:248-254.
  • [19]Laemmli UK: Cleavage of structural proteins during assembly of head of bacteriophage T4. Nature 1970, 227:680-685.
  文献评价指标  
  下载次数:109次 浏览次数:73次