Citation: | JIA Wei, CHEN Jin-quan, CHANG Jun-jun. BIOREMEDIATION OF MERCURY CONTAMINATION: A REVIEW[J]. ENVIRONMENTAL ENGINEERING , 2020, 38(5): 171-178. doi: 10.13205/j.hjgc.202005030 |
CELO V, LEAN D R, SCOTT S L. Abiotic methylation of mercury in the aquatic environment[J]. Science of the Total Environment, 2006, 368(1):126-137.
|
尚谦, 张长水. 含汞废水的污染特征及处理[J]. 有色金属加工, 1997(5):52-65.
|
BOENTE C, SIERRA C, RODRIGUEZ-VALDES E, et al. Soil washing optimization by means of attributive analysis: case study for the removal of potentially toxic elements from soil contaminated with pyrite ash[J]. Journal of Cleaner Production, 2017, 142: 2693-2699.
|
勾立争, 刘长波, 刘诗诚, 等. 热脱附法修复多环芳烃和汞复合污染土壤实验研究[J]. 环境工程, 2018, 36(2):184-187
,146.
|
NRIAGU J, BECKER C. Volcanic emissions of mercury to the atmosphere: global and regional inventories[J]. Science of the Total Environment, 2003, 304(1):3-12.
|
FRASER A, DASTOOR A, RYJKOV A. How important is biomass burning in Canada to mercury contamination?[J]. Atmospheric Chemistry and Physics, 2018, 18(10):7263-7286.
|
MUNTHE J, MCELROY W J. Some aqueous reactions of potential importance in the atmospheric chemistry of mercury[J]. Atmospheric Environment Part A General Topics, 1992, 26(4):553-557.
|
AHRENS L, MARUSCZAK N, RUBARTH J, et al. Distribution of perfluoroalkyl compounds and mercury in fish liver from high-mountain lakes in France originating from atmospheric deposition[J]. Environmental Chemistry, 2011, 7(5):422-428.
|
HU Y A, CHENG H F. Control of mercury emissions from stationary coal combustion sources in China: current status and recommendations[J]. Environmental Pollution, 2016, 218:1209-1221.
|
STREETS D G, LU Z F, LEVIN L, et al. Historical releases of mercury to air, land, and water from coal combustion[J]. Science of The Total Environment, 2018, 615:131-140.
|
CHENG H F, HU Y A. Municipal solid waste (MSW) as a renewable source of energy: current and future practices in China[J]. Bioresource Technology, 2010, 101(11):3816-3824.
|
HU Y A, CHENG H F, TAO S C. The growing importance of waste-to-energy (WTE) incineration in China’s anthropogenic mercury emissions: emission inventories and reduction strategies[J]. Renewable and Sustainable Energy Reviews, 2018, 97:119-137.
|
ESDAILE L J, CHALKER J M. The mercury problem in artisanal and small-scale gold mining[J]. Chemistry-A European Journal, 2018:6905-6916.
|
王琪, 唐丹平, 姜林, 等. 废弃荧光灯管的环境管理研究[J]. 环境污染与防治, 2012, 34(11):98-102.
|
CUTILLAS-BARREIRO L, PEREZ-RODRIGUEZ P, GOMEZ-ARMESTO A, et al. Lithological and land-use based assessment of heavy metal pollution in soils surrounding a cement plant in SW Europe[J]. Science of the Total Environment, 2016, 562:179-190.
|
ROCHA-ROMAN L, OLIVERO-VERBEL J, CABALLERO-GALLARDOK R, et al. Impacto de la mineria del oro asociado con la contaminacion por mercurio en suelo superficial de san martin de loba, sur de bolivar (colombia)[J]. Revista Internacional De Contaminacion Ambiental, 2018, 34(1):93-102.
|
CRYDERMAN D, LETOURNEAU L, MILLER F, et al. An ecological and human biomonitoring investigation of mercury contamination at the Aamjiwnaang first nation[J]. Ecohealth, 2016, 13(4):1-12.
|
GERSON J R, DRISCOLL C T, HSU-KIM H, et al. Senegalese artisanal gold mining leads to elevated total mercury and methylmercury concentrations in soils, sediments, and rivers[J]. Elementa-Science of the Anthropocene, 2018, 6(1): 11.
|
FAYIGA A O, IPINMOROTI M O, CHIRENJE T. Environmental pollution in Africa[J]. Environment Development & Sustainability, 2018, 20(1):1-33.
|
BHAVE P, SHRESTHA R. Total mercury status in an urban water body, Mithi River, Mumbai and analysis of the relation between total mercury and other pollution parameters[J]. Environmental Monitoring and Assessment, 2018, 190(12):711.
|
GAFUR N A, SAKAKIBARA M, SANO S. A case study of heavy metal pollution in water of Bone river by artisanal small-scale gold mine activities in eastern part of Gorontalo, Indonesia[J]. Water, 2018, 10(11):1-10.
|
胡国成, 张丽娟, 齐剑英, 等. 贵州万山汞矿周边土壤重金属污染特征及风险评价[J]. 生态环境学报, 2015, 24(5):879-885.
|
SONG Z C, LI P, DING L, et al. Environmental mercury pollution by an abandoned chlor-alkali plant in Southwest China[J]. Journal of Geochemical Exploration, 2018, 194:81-87.
|
ZHANG Y X, WANG M, HUANG B, et al. Soil mercury accumulation, spatial distribution and its source identification in an industrial area of the Yangtze Delta, China[J]. Ecotoxicology and Environmental Safety, 2018, 163:230-237.
|
LIANG Y C, ZHU S Q, LIANG H D. Mercury enrichment in coal fire sponge in Wuda coalfield, Inner Mongolia of China[J]. International Journal of Coal Geology, 2018, 192:51-55.
|
GAO J Y, WANG H, CAI W, et al. Pollution characteristics of atmospheric particulate mercury near a coal-fired power plant on the southeast coast of China[J]. Atmospheric Pollution Research, 2016, 7(6):1119-1127.
|
HINCHMAN R, NEGRI M C, GATLIFF E G. Phytoremediation: using green plants to clean up contaminated soil, groundwater and wastewater[J]. Office of Scientific & Technical Information Technical Reports, 1996.
|
LEONARD T L, TAYLOR J G E, GUSTIN M S, et al. Mercury and plants in contaminated soils: 2. Environmental and physiological factors governing mercury flux to the atmosphere[J]. Environmental Toxicology and Chemistry, 1998, 17(10):2072-2079.
|
LV S Q, YANG B,KOU Y X,et al. Assessing the difference of tolerance and phytoremediation potential in mercury contaminated soil of a non-food energy crop,Helianthus tuberosus L. (Jerusalem artichoke)[J]. Peerj, 2018, 6(4):4325.
|
ALCANTARA H J P, DORONILA A I, KOLEV S D. Phytoextraction potential of Manihot esculenta Crantz. (cassava) grown in mercury-and gold-containing biosolids and mine tailings[J]. Minerals Engineering, 2017, 114:57-63.
|
XUN Y, FENG L, LI Y D, et al. Mercury accumulation plant, Mercury accumulation plant Cyrtomium macrophyllum and its potential for phytoremediation of mercury polluted sites[J]. Chemosphere, 2017, 189:161-170.
|
MARRUGO-NEGRETE J, DURANGO-HERNÁNDEZ J, PINEDO-HERNÁNDEZ J, et al. Phytoremediation of mercury-contaminated soils by Jatropha curcas[J]. Chemosphere, 2015, 127:58-63.
|
SMOLINSKA B, SZCZODROWSKA A. Antioxidative response of Lepidium sativum L. during assisted phytoremediation of Hg contaminated soil[J]. New Biotechnology, 2017, 38:74-83.
|
LIU Z C, WANG L A, DING S M, et al. Enhancer assisted-phytoremediation of mercury-contaminated soils by Oxalis corniculata L. and rhizosphere microorganism distribution of, Oxalis corniculata L[J]. Ecotoxicology and Environmental Safety, 2018, 160:171-177.
|
CHANG S, WEI F, YANG Y, et al. Engineering tobacco to remove mercury from polluted soil[J]. Applied Biochemistry and Biotechnology, 2015, 175(8):3813-3827.
|
GRIBOFF J, WUNDERLIN D A, MONFERRAN M V. Phytofiltration of As3+, As5+, and Hg by the aquatic macrophyte Potamogeton pusillus L, and its potential use in the treatment of wastewater[J]. International Journal of Phytoremediation, 2018, 20:914-921.
|
MARRUGO-NEGRETE J, ENAMORADO-MONTES G, DURANGO-HERNÁNDEZ J, et al. Removal of mercury from gold mine effluents using Limnocharis flava in constructed wetlands[J]. Chemosphere, 2017, 167:188-192.
|
BIBI A, FAROOQ U, NAZ S, et al. Phytoextraction of Hg by parsley (Petroselinum crispum) and its growth responses[J]. International Journal of Phytoremediation, 2016, 18(4):354-357.
|
SITARSKA M, TRACZEWSKA T, FILYAROVSKAYA V. Removal of mercury (Ⅱ) from the aquatic environment by phytoremediation[J]. Desalination and Water Treatment, 2015, 57(3):1-10.
|
GOMES M V T, SOUZA R R D, TELES V S, et al. Phytoremediation of water contaminated with mercury using Typha domingensis in constructed wetland[J]. Chemosphere, 2013, 103(5):228-233.
|
AMIT P, AJAY K, ZHONG H. Adverse effect of heavy metals (As, Pb, Hg, and Cr) on health and their bioremediation strategies: a review[J]. International Microbiology, 2018, 21(3):97-106.
|
MAHBUB K R, KRISHNAN K, NAIDU R, et al. Mercury remediation potential of a mercury resistant strain Sphingopyxis sp.SE2 isolated from contaminated soil[J]. Journal of Environmental Sciences, 2017, 51(1):128-137.
|
MATSUI K, ENDO G. Mercury bioremediation by mercury resistance transposon-mediated in situ molecular breeding[J]. Applied Microbiology & Biotechnology, 2018, 102(7):1-12.
|
FRANCOIS F, LOMBARD C, GUIGNER J M, et al. Isolation and characterization of environmental bacteria capable of extracellular biosorption of mercury[J]. Applied and Environmental Microbiology, 2012, 78(4):1097-1106.
|
RAMARAJU K, JOSEPH A M, VISWANATH K B, et al. Exopolysaccharide from, Bacillus cereus VK1: enhancement, characterization and its potential application in heavy metal removal[J]. Colloids and Surfaces B: Biointerfaces, 2018, 171:327-334.
|
CHEN J Q, DONG J, CHANG J J, et al. Characterization of an Hg(Ⅱ)-volatilizing, Pseudomonas sp. strain, DC-B1, and its potential for soil remediation when combined with biochar amendment[J]. Ecotoxicology and Environmental Safety, 2018, 163:172-179.
|
MAHBUB K R, KRISHNAN K, NAIDU R, et al. Mercury resistance and volatilization by Pseudoxanthomonas sp. SE1 isolated from soil[J]. Environmental Technology & Innovation, 2016, 6:94-104.
|
YU Z S, LI J B, LI Y, et al. A mer operon confers mercury reduction in a Staphylococcus epidermidis strain isolated from Lanzhou reach of the Yellow River[J]. International Biodeterioration & Biodegradation, 2014, 90:57-63.
|
GIRI S, DASH H R, DAS S. Mercury resistant bacterial population and characterization of Bacillus sp. isolated from sediment of solid waste discharged point of steel industry[J]. National Academy Science Letters, 2014, 37(3):237-243.
|
LIU B, WANG C G, LIU D X, et al. Hg tolerance and biouptake of an isolated pigmentation yeast Rhodotorula mucilaginosa[J]. Plos One, 2017, 12(3):172984.
|
CHEN J Q, DONG J, SHEN S L, et al. Isolation of the Hg(Ⅱ)-volatilizing Bacillus sp. strain DC-B2 and its potential to remediate Hg(Ⅱ)-contaminated soils[J]. Chemical Technology and Biotechnology, 2019, 94(5):1433-1440.
|
MCCARTHY D, EDWARDS G C, GUSTIN M S, et al. An innovative approach to bioremediation of mercury contaminated soils from industrial mining operations[J]. Chemosphere, 2017, 184:694-699.
|
MAHBUB K R, KRISHNAN K, ANDREWS S, et al. Bio-augmentation and nutrient amendment decrease concentration of mercury in contaminated soil[J]. Science of the Total Environment, 2017, 576:303-309.
|
YANG Y K, ZHANG C, SHI X J, et al. Effect of organic matter and pH on mercury release from soils[J]. Journal of Environmental Sciences, 2007, 19(11):1349-1354.
|
程晓伟, 刁永发, 刘静, 等. 滤料负载活性焦脱汞的实验研究[J]. 环境工程, 2016, 34(增刊1):711-714.
|
WAGNER-DÖBLER I. Pilot plant for bioremediation of mercury-containing industrial wastewater[J]. Applied Microbiology & Biotechnology, 2003, 62(2/3):124-133.
|
SINHA A, KHARE S K. Mercury bioremediation by mercury accumulating Enterobacter sp. cells and its alginate immobilized application[J]. Biodegradation, 2012, 23(1):25-34.
|
SONE Y, MOCHIZUKI Y, KOIZAWA K, et al. Mercurial-resistance determinants in Pseudomonas strain K-62 plasmid pMR68[J]. AMB Express, 2013, 3(1):1-7.
|
ROJAS L A,YANEZ C, GONZALEZ M, et al. Characterization of the metabolically modified heavy metal-resistant cupriavidus metallidurans Strain MSR33 generated for mercury bioremediation[J]. Plos One, 2011, 6(3):e17555.
|
TARIQ A, LATIF Z. Bioremediation of mercury compounds by using immobilized nitrogenfixing bacteria[J]. International Journal of Agriculture & Biology, 2014, 16(6):1129-1134.
|
DRANGUET P, LE F S, COSIO C, et al. Influence of chemical speciation and biofilm composition on mercury accumulation by freshwater biofilms[J]. Environmental Science Processes & Impacts, 2017, 19(1):38-49.
|