Phytoremediation as a management option for contaminated sediments in tidal marshes, flood control areas and dredged sediment landfill sites
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Piet Seuntjens | Valérie Bert | Winnie Dejonghe | P. Seuntjens | W. Dejonghe | B. Vandecasteele | Bart Vandecasteele | Sophie Lacherez | Hoang Thi Thanh Thuy | V. Bert | H. Thuy | Sophie Lacherez | Hoang Thi Thanh Thuy
[1] David W. Moore,et al. A Comparative Screening-Level Ecological and Human Health Risk Assessment for Dredged Material Management Alternatives in New York/New Jersey Harbor , 2002 .
[2] D. Hahn,et al. Interactions between the salt marsh grass Spartina patens, arbuscular mycorrhizal fungi and sediment bacteria during the growing season , 2003 .
[3] E. Meers,et al. Potential of Brassic rapa, Cannabis sativa, Helianthus annuus and Zea mays for phytoextraction of heavy metals from calcareous dredged sediment derived soils. , 2005, Chemosphere.
[4] S. J. Flynn,et al. Characterization of Two Tetrachloroethene-Reducing, Acetate-Oxidizing Anaerobic Bacteria and Their Description as Desulfuromonas michiganensis sp. nov , 2003, Applied and Environmental Microbiology.
[5] M. Hodson,et al. Changes in the leachability of metals from dredged canal sediments during drying and oxidation. , 2001, Environmental pollution.
[6] K. Verheyen,et al. Tree species effect on the redistribution of soil metals. , 2007, Environmental pollution.
[7] Valérie Bert,et al. The effect of phytostabilization on Zn speciation in a dredged contaminated sediment using scanning electron microscopy, x-ray fluorescence, EXAFS spectroscopy, and principal components analysis , 2005 .
[8] Yong-Hui Song,et al. The remediation of heavy metals contaminated sediment. , 2009, Journal of hazardous materials.
[9] W. S. Douglas,et al. Laboratory measurements of the volatilization of PCBs from amended dredged material. , 2008, Environmental research.
[10] W. Huybrechts,et al. Early vegetation succession and management options on a brackish sediment dike , 2005 .
[11] I. Joris,et al. Quality Criteria for Re-Use of Organotin-Containing Sediments on Land (7 pp) , 2006 .
[12] W. Sand,et al. Bioleaching review part A: progress in bioleaching: fundamentals and mechanisms of bacterial metal sulfide oxidation. , 2003, Applied microbiology and biotechnology.
[13] W. Röling,et al. Robust Hydrocarbon Degradation and Dynamics of Bacterial Communities during Nutrient-Enhanced Oil Spill Bioremediation , 2002, Applied and Environmental Microbiology.
[14] Jung-Hye Choi,et al. Bioremediation of Aroclor 1242 by a consortium culture in marine sediment microcosm , 2008 .
[15] P. Owens. Conceptual Models and Budgets for Sediment Management at the River Basin Scale (12 pp) , 2005 .
[16] A. P. Schwab,et al. Dissipation of PAHs in saturated, dredged sediments: a field trial. , 2008, Chemosphere.
[17] Helen R. Watling,et al. The bioleaching of sulphide minerals with emphasis on copper sulphides — A review , 2006 .
[18] Sue White,et al. Synthesis of the sednet work package 5 outcomes , 2004 .
[19] C Garbisu,et al. Phytoremediation of organic contaminants in soils. , 2001, Bioresource technology.
[20] J. Teal,et al. Gas Transport in the Marsh Grass, Spartina alterniflora , 1966 .
[21] Guiseppe Bortone,et al. Sediment and dreged material treatment , 2007 .
[22] G. Schüürmann,et al. Ecotoxicology : ecological fundamentals, chemical exposure, and biological effects , 1998 .
[23] W. Armstrong. Aeration in Higher Plants , 1980 .
[24] H. Naveau,et al. Anaerobic Dechlorinating Bacteria , 1998, Biotechnology progress.
[25] Y. Oshima,et al. The stability of butyltin compounds in a dredged heavily-contaminated sediment. , 2007, Chemosphere.
[26] R M Atlas,et al. Microbial degradation of petroleum hydrocarbons: an environmental perspective , 1981, Microbiological reviews.
[27] S. Singh,et al. Leaching behaviour of Cd, Cu, Pb and Zn in surface soils derived from dredged sediments. , 1999, Environmental pollution.
[28] M. Otte,et al. Conflicting processes in the wetland plant rhizosphere: Metal retention or mobilization? , 2003 .
[29] Frédéric Coulon,et al. Determining the identity and roles of oil-metabolizing marine bacteria from the Thames estuary, UK. , 2007, Environmental microbiology.
[30] J. C. Dodd,et al. The mycorrhizal status of Phragmites australis in several polluted soils and sediments of an industrialised region of Northern Portugal , 2001, Mycorrhiza.
[31] L. Krumholz,et al. A freshwater anaerobe coupling acetate oxidation to tetrachloroethylene dehalogenation , 1996, Applied and environmental microbiology.
[32] J. Harmsen,et al. Landfarming of polycyclic aromatic hydrocarbons and mineral oil contaminated sediments , 2004 .
[33] Heinz-Dieter Detzner,et al. Synthesis of the sednet work package 4 outcomes , 2004 .
[34] Julie Lions,et al. Zinc and cadmium mobility in a 5-year-old dredged sediment deposit: Experiments and modelling , 2007 .
[35] B. Clément,et al. Assessment of ecotoxicological risks related to depositing dredged materials from canals in northern France on soil. , 2006, Environment international.
[36] C Garbisu,et al. Phytoextraction: a cost-effective plant-based technology for the removal of metals from the environment. , 2001, Bioresource technology.
[37] D. Bedard. A case study for microbial biodegradation: anaerobic bacterial reductive dechlorination of polychlorinated biphenyls-from sediment to defined medium. , 2008, Annual review of microbiology.
[38] Y. Wong,et al. Isolation of PAH-degrading bacteria from mangrove sediments and their biodegradation potential. , 2005, Marine pollution bulletin.
[39] F. Tack,et al. Uptake of Cd, Zn and Mn by willow increases during terrestrialisation of initially ponded polluted sediments. , 2007, The Science of the total environment.
[40] E. Meers,et al. Trace metal behaviour in estuarine and riverine floodplain soils and sediments: a review. , 2009, The Science of the total environment.
[41] G. Olson,et al. Bioleaching review part B: progress in bioleaching: applications of microbial processes by the minerals industries. , 2003, Applied microbiology and biotechnology.
[42] E. Master,et al. Sequential anaerobic-aerobic treatment of soil contaminated with weathered Aroclor 1260. , 2002, Environmental science & technology.
[43] F. Tack,et al. Cycling and ecosystem impact of metals in contaminated calcareous dredged sediment-derived soils (Flanders, Belgium). , 2008, The Science of the total environment.
[44] J. Ehrenfeld,et al. Salt marsh rhizosphere affects microbial biotransformation of the widespread halogenated contaminant tetrabromobisphenol-A (TBBPA) , 2005 .
[45] Jih‐Gaw Lin,et al. Enhancement of metal bioleaching from contaminated sediment using silver ion. , 2009, Journal of hazardous materials.
[46] R. Swennen,et al. Kinetics of element release during combined oxidation and pHstat leaching of anoxic river sediments , 2005 .
[47] Frédéric Coulon,et al. Effects of temperature and biostimulation on oil-degrading microbial communities in temperate estuarine waters. , 2007, Environmental microbiology.
[48] N. Lust,et al. Preliminary results of afforestation of brackish sludge mounds , 2001 .
[49] Hilla Peretz,et al. Ju n 20 03 Schrödinger ’ s Cat : The rules of engagement , 2003 .
[50] K. Sowers,et al. Identification of a microorganism that links its growth to the reductive dechlorination of 2,3,5,6-chlorobiphenyl. , 2001, Environmental microbiology.
[51] N. Lust,et al. Phytoremediation prospects of willow stands on contaminated sediment: a field trial. , 2003, Environmental pollution.
[52] I. Mendelssohn,et al. The combined effects of phytoremediation and biostimulation in enhancing habitat restoration and oil degradation of petroleum contaminated wetlands , 1998 .
[53] N. Lust,et al. Dredged sediment as a substrate for biomass production of willow trees established using the SALIMAT technique , 2001 .
[54] A. P. Schwab,et al. Greenhouse and field assessment of phytoremediation for petroleum contaminants in a riparian zone. , 2008, Bioresource technology.
[55] F. Coulon,et al. Structure of bacterial communities along a hydrocarbon contamination gradient in a coastal sediment. , 2008, FEMS microbiology ecology.
[56] A. P. Schwab,et al. Phytoremediation of polychlorinated biphenyl (PCB)-contaminated sediment: a greenhouse feasibility study. , 2007, Journal of environmental quality.
[57] I. Linkov,et al. Multicriteria Decision Analysis: A Comprehensive Decision Approach for Management of Contaminated Sediments , 2006, Risk analysis : an official publication of the Society for Risk Analysis.
[58] N. Lust,et al. Short- and longer-term effects of the willow root system on metal extractability in contaminated dredged sediment. , 2004, Journal of environmental quality.
[59] Jaco Vangronsveld,et al. Potential of five willow species (Salix spp.) for phytoextraction of heavy metals. , 2007 .
[60] B. Muys,et al. Effect of tree species choice and mineral capping in a woodland phytostabilisation system: A case-study for calcareous dredged sediment landfills with an oxidised topsoil , 2008 .
[61] S. Kittelmann,et al. Novel uncultured Chloroflexi dechlorinate perchloroethene to trans-dichloroethene in tidal flat sediments. , 2008, Environmental microbiology.
[62] P. Schröder,et al. Prospects for the phytoremediation of organic pollutants in Europe , 2002, Environmental science and pollution research international.
[63] Carl E. Cerniglia,et al. Biodegradation of polycyclic aromatic hydrocarbons , 1992, Biodegradation.
[64] R. Crawford,et al. Variation in the Structure and Response to Flooding of Root Aerenchyma in some Wetland Plants , 1983 .
[65] W. Sand,et al. Bioleaching review part A: , 2003, Applied Microbiology and Biotechnology.
[66] T. Thewys,et al. The Use of Plants for Remediation of Metal-Contaminated Soils , 2004, TheScientificWorldJournal.
[67] G. Bennett,et al. Biodegradation of xenobiotics by anaerobic bacteria , 2005, Applied Microbiology and Biotechnology.
[68] Gustavo Curutchet,et al. Anaerobic sediment potential acidification and metal release risk assessment by chemical characterization and batch resuspension experiments , 2007 .
[69] F. Tack,et al. Heavy Metal Fractionation and Extractability in Dredged Sediment Derived Surface Soils , 1998 .
[70] J. Grotenhuis,et al. Biochemical ripening of dredged sediments. Part 2. Degradation of polycyclic aromatic hydrocarbons and total petroleum hydrocarbons in slurried and consolidated sediments , 2007, Environmental toxicology and chemistry.
[71] J. Field,et al. Microbial transformation and degradation of polychlorinated biphenyls. , 2008, Environmental pollution.
[72] Jih‐Gaw Lin,et al. Bioleaching of heavy metals from contaminated sediment by indigenous sulfur-oxidizing bacteria in an air-lift bioreactor: effects of sulfur concentration. , 2004, Water research.
[73] Susanne Heise,et al. Sediment risk management and communication , 2007 .
[74] M. Quigley,et al. Willows Beyond Wetlands: Uses of Salix L. Species for Environmental Projects , 2005 .
[75] C. Lors,et al. Effects of bacterial activities on the release of heavy metals from contaminated dredged sediments. , 2004, Chemosphere.
[76] H. Neue,et al. Metals and arsenic in soils and corresponding vegetation at Central Elbe river floodplains (Germany). , 2007, Environmental pollution.
[77] W. D. de Vos,et al. Anaerobic microbial dehalogenation. , 2003, Annual review of microbiology.
[78] I. Mendelssohn,et al. Potential of restoration and phytoremediation with Juncus roemerianus for diesel-contaminated coastal wetlands , 2009 .
[79] K. Sowers,et al. Microbial Reductive Dechlorination of Aroclor 1260 in Baltimore Harbor Sediment Microcosms Is Catalyzed by Three Phylotypes within the Phylum Chloroflexi , 2007, Applied and Environmental Microbiology.
[80] P. Lecomte,et al. Impact of vegetation on the mobility and bioavailability of trace elements in a dredged sediment deposit: a greenhouse study , 2000 .
[81] Jan Mertens,et al. Metal uptake by young trees from dredged brackish sediment: limitations and possibilities for phytoextraction and phytostabilisation. , 2004, The Science of the total environment.
[82] R. Samson,et al. Effect of decomposing litter on the mobility and availability of metals in the soil of a recently created floodplain , 2008 .
[83] Qingzhong Wu,et al. Identification of a Bacterium That Specifically Catalyzes the Reductive Dechlorination of Polychlorinated Biphenyls with Doubly Flanked Chlorines , 2002, Applied and Environmental Microbiology.
[84] B. Borremans,et al. Endophytic bacterial diversity in poplar trees growing on a BTEX-contaminated site: the characterisation of isolates with potential to enhance phytoremediation. , 2006, Systematic and applied microbiology.
[85] R. Gillham,et al. A PCE groundwater plume discharging to a river: influence of the streambed and near-river zone on contaminant distributions. , 2004, Journal of contaminant hydrology.
[86] A. J. Zweers,et al. Theory and application of landfarming to remediate polycyclic aromatic hydrocarbons and mineral oil-contaminated sediments; beneficial reuse. , 2007, Journal of environmental quality.
[87] P. Novak,et al. The reductive dechlorination of 2,3,4,5-tetrachlorobiphenyl in three different sediment cultures: evidence for the involvement of phylogenetically similar Dehalococcoides-like bacterial populations. , 2006, FEMS microbiology ecology.
[88] J. Grotenhuis,et al. Biochemical ripening of dredged sediments. Part 1. Kinetics of biological organic matter mineralization and chemical sulfur oxidation , 2007, Environmental toxicology and chemistry.
[89] Catherine N. Mulligan,et al. Remediation technologies for metal-contaminated soils and groundwater: an evaluation , 2001 .
[90] E. Gabet,et al. Selenium distribution and fluxes in intertidal wetlands, San Francisco Bay, California. , 2001, Journal of environmental quality.
[91] K. Ghanem,et al. The role of bacteria on heavy-metal extraction and uptake by plants growing on multi-metal-contaminated soils , 2008 .
[92] C. Lors,et al. Use of phytostabilisation to remediate metal polluted dredged sediment , 2008 .
[93] Sally L. Yost,et al. Air Emissions from Exposed Contaminated Sediments and Dredged Material , 1999 .
[94] P. Champagne,et al. Mitigation Of Alkaline Mine Drainage In ANatural Wetland System , 2006 .
[95] J. Grotenhuis,et al. Quantification of physical properties of dredged sediments during physical ripening , 2005 .
[96] Lynda B. M. Ellis,et al. The University of Minnesota Biocatalysis/Biodegradation Database: post-genomic data mining , 2003, Nucleic Acids Res..
[97] Paul B. Downing,et al. The cost and effectiveness of retrofit programs for used cars , 1974 .
[98] M. L. Shelley,et al. Development of a wetland constructed for the treatment of groundwater contaminated by chlorinated ethenes , 2007 .
[99] M. Weinstein,et al. Beneficial use of dredged material to enhance the restoration trajectories of formerly diked lands , 2002 .
[100] Christof Holliger,et al. Reductive dechlorination in the energy metabolism of anaerobic bacteria , 1998 .
[101] Y. Wong,et al. Removal of pyrene from contaminated sediments by mangrove microcosms. , 2003, Chemosphere.
[102] D. Lelie,et al. Phytoremediation: European and American trends successes, obstacles and needs , 2002 .
[103] L. Lynd,et al. Cloning of l-lactate dehydrogenase and elimination of lactic acid production via gene knockout in Thermoanaerobacterium saccharolyticum JW/SL-YS485 , 2004, Applied Microbiology and Biotechnology.
[104] P. Mccarty,et al. Breathing with Chlorinated Solvents , 1997, Science.
[105] M R Palermo,et al. Recovery of dredged material for beneficial use: the future role of physical separation processes. , 2001, Journal of hazardous materials.
[106] N. Lepp,et al. Cadmium and zinc in vegetation and litter of a voluntary woodland that has developed on contaminated sediment-derived soil. , 2007, Journal of environmental quality.
[107] J. Roelofs,et al. Changes in pore water chemistry of desiccating freshwater sediments with different sulphur contents , 2006 .
[108] S. Kittelmann,et al. Identification of novel perchloroethene-respiring microorganisms in anoxic river sediment by RNA-based stable isotope probing. , 2007, Environmental microbiology.
[109] J. Harmsen,et al. Growing biomass to stimulate bioremediation: technical and economic perspective , 1999 .
[110] M. E. Figueroa,et al. Comparison of the role of two Spartina species in terms of phytostabilization and bioaccumulation of metals in the estuarine sediment. , 2008, Marine pollution bulletin.
[111] S. Singh,et al. Heavy Metal Transport from Dredged Sediment Derived Surface Soils in a Laboratory Rainfall Simulation Experiment , 2000 .
[112] P. Putwain,et al. Changing contaminant mobility in a dredged canal sediment during a three-year phytoremediation trial. , 2006, Environmental pollution.
[113] M. Otte,et al. Long-term effects of submergence and wetland vegetation on metals in a 90-year old abandoned Pb-Zn mine tailings pond. , 2004, Environmental pollution.
[114] H. Galbraith,et al. Effects of metals and arsenic on riparian communities in southwest Montana , 1996, Ecotoxicology.
[115] R. Engler,et al. Availability and plant uptake of heavy metals from contaminated dredged material placed in flooded and upland disposal environments , 1982 .
[116] R. Wennrich,et al. Effect of different types of elemental sulfur on bioleaching of heavy metals from contaminated sediments. , 2006, Chemosphere.
[117] J Vangronsveld,et al. Phytostabilization of a metal contaminated sandy soil. I: Influence of compost and/or inorganic metal immobilizing soil amendments on phytotoxicity and plant availability of metals. , 2006, Environmental pollution.
[118] W. de Haan,et al. Field monitoring of ripening of dredged material at three sites in the Netherlands (preliminary results) , 1998 .
[119] E. Meers,et al. Comparison of EDTA and EDDS as potential soil amendments for enhanced phytoextraction of heavy metals. , 2005, Chemosphere.
[120] R. Naidu,et al. Bioremediation of high molecular weight polycyclic aromatic hydrocarbons: a review of the microbial degradation of benzo[a]pyrene. , 2000 .
[121] R. Meagher,et al. Phytoremediation of toxic elemental and organic pollutants. , 2000, Current opinion in plant biology.
[122] U. Förstner,et al. Sediment remediation: U.S. focus on capping and monitored natural recovery , 2007 .
[123] Y. Wong,et al. Effectiveness of bacterial inoculum and mangrove plants on remediation of sediment contaminated with polycyclic aromatic hydrocarbons. , 2008, Marine pollution bulletin.