
Chinese Journal of Applied Ecology ›› 2003, Vol. ›› Issue (12): 2342-2346.
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ZHANG Lili1,2, CHEN Lijun1, LIU Guifen3, WU Zhijie1
Received:2003-03-04
Revised:2003-07-03
CLC Number:
ZHANG Lili, CHEN Lijun, LIU Guifen, WU Zhijie. Advance in enzymological remediation of polluted soils[J]. Chinese Journal of Applied Ecology, 2003, (12): 2342-2346.
| [1] Aitken MD, Massey IJ, Chen T, et al. 1994. Characterization of reaction products from the enzyme catalyzed oxidation of phenolic pollutants. Water Res, 28:1897~1903 [2] Alexander M. 1999. Biodegradation and Bioremediation. San Diego:Academic Press. [3] Atlow SC, Bonadonna L, Klibanov AM. 1984. Dephenolization of industrial wastewaters catalyzed by polyphenol oxidase. Biotechnol Bioeng, 26: 599~603 [4] Banci L, Ciofi N, Tien M. 1999. Lignin and Mn peroxidase-catalyzed oxidation of phenolic lignin oligomers. Biochemistry, 38:3205~3208 [5] Benny C. 1998. Purification and characterization of laccase from Chaetomium thermophilium and its role in humification. Appl Environ Microbiol, 64(9): 3175~3179 [6] Bollag JM, Liu SY. 1990. Biological transformation process of pesticides In: Cheng H ed. Pesticides in the Soil Environment Process,Impacts and Modeling SSSA Book Ser. No. 2 SSSA. Madison. WI.169~211 [7] Bollag JM. 1992. Decontaminating soil with enzymes. Environ Sci Technol, 26:1876~1880 [8] Bretscher M. 1981. Water disposal in the chemical industry. In:Leisinger T, eds. Microbial degradation of xenobiotics and recalcitrant compounds. Orlando: Academic Press. 65~74 [9] Caldwell SR, Raushel FM. 1991. Detocification of organophosphate pesticides using an immobilized phosphotriesterase form Pseudomonas diminuta . Biotechnol Bioeng , 37:103~109 [10] Casella L, Poli S, Gullotti M, et al. 1994. The hloroperoxidase catalyzed oxidation of phenols. Biochemistry, 33:6377~6379 [11] Cervelli S, Perret D. 1998. The immobilized enzymes as lbiotechnological suggestiion for soil decontamination. AnalChim,88:509~515 [12] Chen Y-C (陈玉成). 2002. Bioremediation of polluted soils. Engineers of Bioremediaton to Polluted Environment. Beijing: Chemical Indurstry Press. 137~165(in Chinese) [13] Christopher F. 1994. The structure and function of fungal laccase.Microbiology, 140(1): 19~23 [14] Cooper VA, Nicell JA. 1996. Removal of phenols from a foundry wastewater using horseradish peroxidase. Water Res, 30: 954~964 [15] Crecchio C, Ruggiero P, Pizzigallo MDR. 1995. Polyphenoloxidases immobilized in organic gels: Properties and applications in the detoxification of aromatic eompounds. BiotechnolBioeng, 48:585~591 [16] Dec J, Bollag JM. 1990. Detoxification of substituted phenols by oxidoreductive enzymes through polymerization reactions. Arch Environ Contam Toxicol, 19:543~550 [17] Dec J, Bollag JM. 1995. Effect of various factors on dehalogenation of chlorinated phenols and anilines during oxidative coupling. Environ Sci Technol,29: 657~662 [18] Dec J, Bollag JM. 1994. Use of plant-material for the decontamination of water polluted with phenols. Biotechnol Bioeng, 44:1132~1138 [19] Duran N, Esposito E. 2000. Potential applications of oxidative enzymes and phenoloxidase-like compounds in wastewater and soil treatment: A review. Appl Catalysis B: Environ, 28: 83~99 [20] Esposito E, Manfio G, Villas S, et al. 1997. Microbiological strategies on remediation of contaminated soil with organochlorides. In:Esposito E ed. Proceedings of the First National Meeting of Environmental Applied Microbiology Campinas, S. P. Brazil: CD-Rom Paper. 1: 80 [21] Esposito E, Reseode MOO, Freer J, et al. 1995. Ligninolytic enzymes application on humic acid organochloride compounds association. In: Pimentel E, eds. Proceedings of the Fourth Brazilian Symposium on Chemical Lignins Wood Comp. Brazil:CD-Rom Paper. 5:251 [22] Esposito E, Villas S, Manfio G. 1998. Fungal potential for soil bioremediation. In: Gaylarde C, Barbosa T, Gabilan N, eds. Proceedings of the Third Latin American Biodegradation & Biodeterioration Symposium -LABS-3, Florianopolis. Brazil: CD-Rom Paper. 25: 1 [23] Farrel R, Ayyagari M, Akkara J, et al. 1998. Biodegradation of polyaromatic synthesized by peroxidase-catalyzed free-radical polymerization. J Environ Polym Degrad,6:115~119 [24] Ganjiloust H, Tatsumi K, Wada S, et al. 1996. Role of peroxidase and chitosan in removing chlorophenols from aqueous solution. Water Sci Tech nol , 34:151~160 [25] Gelpke MDS, Mayfield-Gambill M, Cereghino GPL, et al. 1999.Homologous expression of recombinant lignin peroxidase in Phauerochaete chrysosporium . Appl Environ Microbiol, 65: 1670~1672 [26] Gianfreda L, Bollag JM. 1994. Effect of soils on the behavior of immobilized enzymes. Soil Sci Soc Am J, 58:1672~1681 [27] Gianfreda L, Bollag JM. 2002. Isolated enzymes for the tansformation and detoxification of organic pollutants. In: Burns R, eds. Enzymes in the Environment Activity, Ecology and Applications. New York: Marcel Dekker, Inc. 495~527 [28] Goldstein RM, Mallory LM, Alexander M. 1985. Reasons for possible failure of inoculation to enhance biodegradation. Appl Environ Microbiol, 50: 967~983 [29] Grabski AC, Grimek HJ, Burgess RR. 1998. Immobilization of manganese peroxidase from Lentinula edodes and its biocatalytic generation of Mn-Ⅲ-chelate as a chemical oxidant of chlorophenols.Biotech nol Bioeng , 60:204~206 [30] Grabski AC, Rasmussen JK, Coleman PL, et al. 1996. Immobilization of manganese peroxidase from Lentinula edodes on alkylaminated EmphazeTM AB 1 polymer for generation of Mn3 + as an oxidizing agent. Appl Biochem Biotechnol, 60: 1~9 [31] Gramss G, Kirsche B, Voigt KD, et al. 1999. Conversion rates of five polycyclic aromatic hydrocarbons in liquid cultures of fifty-eight fungi and the concomitant production of oxidative enzymes. MycolRes, 103:1009~1019 [32] Gramss G, Voigt KD, Kirsche B. 1999. Oxidoreductase enzymes liberated by plant roots and their effects on soil humic material.Chemosphere, 38: 1481~1485 [33] Gunsalus IC, Lpederson TC. 1975. Oxygenase-catalyzed biological hydroxylations. Annul Rev Biochem , 44:377~407 [34] Harayama S. 1997. Polycyclic aromatic hydrocarbon bioremediation design. Curr Pin Biotechnol, 8: 268~273 [35] He N(何宁),Chen J(陈坚),Geng J-J(耿金菊).2001.Production and applications of immobilized enzyme used to environmental protection.In:Chen J(陈坚),Ren H-Q(于洪强),eds.Application and Development of Environmental Biological Technology.Beijing: Chinese Light Industry Press. 274~318 ( in Chinese ) [36] Johjima T, Itoh N, Kabuto M, et al. 1999. Direct interaction of lignin and lignin peroxidase from Phanerochaete chrysosporium.Proc Natl Acad Sci U. S. A,96:1989~1996 [37] Jolivat C, Raynal A, Caminade E, et al. 1999. Transformation of N,N-dimethyl-n-(hydroxyphenyl)ureas by laccase from the white rot fungus. Appl Mcrobial Biotechnol, 51: 676~678 [38] Karam J, Nicell JA. 1997. Potential applications of enzymes in waste treatment. J Chem Technol Biotechnol, 69:141~153 [39] Katchalski E, Silman I, Goldman R. 1971. Effect of the microenvironment on the mode of action of immobilized enzymes. Adv Enzymol, 28:506~511 [40] Kazunga C, Aitken MD, Gold A. 1999. Primary product of the horseradish peroxidase-catalyzed oxidation of pentachlorophenol.Environ Sci Technol , 33:1408~1410 [41] Kim JE, Wang CJ, Bollag JM. 1997. Interaction of reactive and inert chemicals in the presence of oxidoreductases: Reaction of the herbicide Bentazon and its metabolites with humic monomers.Biodegradation, 8: 387~390 [42] Laidler KJ, Bunting PS. 1980. The kinetics of immobilized enzyme systems. In: Putich DL ed. Methods in Enzymology. 64: 227~248 [43] Martinek K, Mozhaev VV. 1985. Immobilization of enzymes: An approach to fundamental studies in biochemistry. Adv Enzyrnol,57:179~249 [44] Masaphy SF, Fahima T, Levanov D, et al. 1996. Parathion degradation by Xanthomonas sp. and its crude enzyme extract in clay suspensions. J Environ Qual , 25:1248~1255 [45] Munnecke DM. 1976. Enzymatic hydrolysis of organophosphate insecticides, a possible pesticide disposal method. Appl Environ Microbiol,32: 7~13 [46] Munnecke DM. 1979. Chemical, physical and biological methods for the disposal and detocification of pesticides. Residue Rev, 70:1~26 [47] Nannipieri P, Bollag JM. 1991. Use of enzymes to detoxify pesticidecontaminatde soils and waters. J Environ Qual, 20:510~517 [48] Norde W, Lyklema J. 1979. Thermodynamics of protein adsorption:Theory with special reference to the adsorption of human plasma albumin and bovine pancreas ribonuclase at polystyene surfaces. J Colloid Interface Sci, 71: 350~366 [49] Novotny C, Erbanova CP, Dadek V, et al. 1999. Extracellular oxidative enzyme production and PAH removal in soil by exploratory mycelium of white rot fungi. Biodegration, 10: 159~164 [50] Okeke BC, Paterson A, Smith JE, et al. 1997. Comparative biotransformation of pentachlorophenol in soil by solid substrate culture of Lentinula edodes. Appl Microbiol Biotechnol, 48: 563~568 [51] Park JM, Dec J, Kim JE, et al. 1999. Effect of humic constituents on the transformation of chlorinated phenols and anilines in the presence of oxidoreductive enzymes or bimessite. Environ Sci Technol,33: 2028~2035 [52] Pickard MA, Kadima TA, Carmichael RD. 1991. Chloroperoxidase,a peroxidase with potential. J Ind Microbiol, 7: 235~241 [53] Piersynski GM, Sims JT, Vance GF. 1994. Soils and Environmental Quality. Boca Raton FL: Lewis. 245~249 [54] Ruggiero P, Sarkar JM, Bollag JM. 1989. Detoxification of 2, 4-dichlorophenol by a laccase immobilized on soil or clay. Soil Sci,147: 1256~1259 [55] Saccomandi F, Conte P, Piccolo A. 1988. Use of oxidase enzyme to increase polymerization of soil organic matter. Fresenius Environ Bull, 7: 537~540 [56] Singleton I. 1994. Microbial metabolism of xenobiotics: Fundamental and applied research. J Chem Technol Biotechnol, 59: 9~23 [57] Sybe H, Frans J. 1991. Alkene monooxygenase from rmyobacterium: Amulticomloneot enzyme. J Gen Microbiol, 137: 2555~2560 [58] Tatsumi K, Wada S, Ichikawa H. 1996. Removal of chlorophenols from wastewater by immobilized horseradish peroxidase. Biotechnol Bioeng, 51: 126~129 [59] Wariishi H, Valli K, Gold MH. 1992. Manganese(Ⅱ)oxidation by manganese peroxidase from the basidiomycete Phanerochaete chrysosporium-kinetic mechanisms and role of chelators. J Biol Chem, 267:23688~23692 [60] Zhang C(张从),Xia L-J(夏立江),eds.2000.Bioremediation Technology of Polluted Soil. Beijng: China Environmental Science Press. (in Chinese) [61] Zhao SS, Luong JHT. 1996. An electrocatalytic approach for the measurement of chlorophenols. Anal Chim Acta, 327: 235~241 |
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