1,378
Views
78
CrossRef citations to date
0
Altmetric
Original Articles

Remediation of Heavy Metals by Biomolecules: A Review

, , &
Pages 1644-1704 | Published online: 15 May 2015

REFERENCES

  • Abdel-Halim, E. S., and Al-Deyab, S. S. (2011). Removal of heavy metals from their aqueous solutions through adsorption onto natural polymers. Carbohydr. Polym., 84, 454–458.
  • Abdel-Razik, H. H., and Kenawy, E.-R. (2012). Synthesis, characterization, and amidoximation of diaminomaleodinitrile-functionalized polyethylene terephthalate grafts for collecting heavy metals from wastewater. J. Appl. Polym. Sci., 125, 1136–1145.
  • Achard-Joris, M., Moreau, J. L., Lucas, M., Baudrimont, M., Mesmer-Dudons, N., Gonzalez, P., Boudou, A., and Bourdineaud, J. P. (2007). Role of metallothioneins in superoxide radical generation during copper redox cycling: Defining the fundamental function of metallothioneins. Biochimie, 89, 1474–1488.
  • Achour, R., Abriak, N. E., Zentar, R., Rivard, P., and Gregoire, P. (2014). Valorization of unauthorized sea disposal dredged sediments as a road foundation material. Environ. Technol., 35, 1997–2007.
  • Adam, V., Zehnalek, J., Petrlova, J., Potesil, D., Sures, B., Trnkova, L., Jelen, F., Vitecek, J., and Kizek, R. (2005). Phytochelatin modified electrode surface as a sensitive heavy- metal ion biosensor. Sensors, 5, 70–84.
  • Ahalya, N., Ramachandra, T. V., and Kanamadi, R. D. (2003). Biosorption of heavy metals. Res. J. Chem. Environ., 7, 71–79.
  • Ahmad, A., and Alam, M. (2004). Sequestration and remediation of heavy metals by Brassica sp at Hindan river sites. Indian J. Chem. Technol., 11, 555–559.
  • Alfaro-Cuevas-Villanueva, R., Hidalgo-Vázquez, A. R., Cortés Penagos, C. D.J., and Cortés-Martínez, R. (2014). Thermodynamic, kinetic, and equilibrium parameters for the removal of lead and cadmium from aqueous solutions with calcium alginate beads. Sci. World J., 2014, 647512.
  • Allouche, F. N., Guibal, E., and Mameri, N. (2014). Preparation of a new chitosan-based material and its application for mercury sorption. Colloids Surf., A, 446, 224–232.
  • Alongi, J., Carosio, F., Frache, A., and Malucelli, G. (2013). Layer by Layer coatings assembled through dipping, vertical or horizontal spray for cotton flame retardancy. Carbohydr. Polym., 92, 114–119.
  • Apopei, D. F., Dinu, M. V., Trochimczuk, A. W., and Dragan, E. S. (2012). Sorption isotherms of heavy metal ions onto semi-interpenetrating polymer network cryogels based on polyacrylamide and anionically modified potato starch. Ind. Eng. Chem. Res., 51, 10462–10471.
  • Armentrout, P. B., Armentrout, E. I., Clark, A. A., Cooper, T. E., Stennett, E. M.S., and Carl, D. R. (2010). An experimental and theoretical study of alkali metal cation interactions with cysteine. J. Phys. Chem. B, 114, 3927–3937.
  • Armentrout, P. B., Chen, Y., and Rodgers, M. T. (2012). Metal cation dependence of interactions with amino acids: Bond energies of Cs + to Gly, Pro, Ser, Thr, and Cys. J. Phys. Chem. A, 116, 3989–3999.
  • Armentrout, P. B., Yang, B., and Rodgers, M. T. (2013). Metal cation dependence of interactions with amino acids: Bond energies of Rb+ and Cs+ to Met, Phe, Tyr, and Trp. J. Phys. Chem. B, 117, 3771–3781.
  • Badruddoza, A. Z. M., Tay, A. S.H., Tan, P. Y., Hidajat, K., and Uddin, M. S. (2011). Carboxymethyl-β-cyclodextrin conjugated magnetic nanoparticles as nano-adsorbents for removal of copper ions: Synthesis and adsorption studies. J. Hazard. Mater., 185, 1177–1186.
  • Balaji, T., Yokoyama, T., and Matsunaga, H. (2005). Adsorption and removal of As(V) and As(III) using Zr-loaded lysine diacetic acid chelating resin. Chemosphere, 59, 1169–1174.
  • Balaria, A., and Schiewer, S. (2008). Assessment of biosorption mechanism for Pb binding by citrus pectin. Sep. Purif. Technol., 63, 577–581.
  • Baral, S. S., Das, S. N., Rath, P., Chaudhury, G. R., and Swamy, Y. V. (2007). Removal of Cr(VI) from aqueous solution using waste weed, Salvinia cucullata. Chem. Ecol., 23, 105–117.
  • Barbier, O., Jacquillet, G., Tauc, M., Cougnon, M., and Poujeol, P. (2005). Effect of heavy metals on, and handling by, the kidney. Nephron - Physiology, 99, 105–110.
  • Basha, S., Murthy, Z. V.P., and Jha, B. (2008). Sorption of Hg(II) from aqueous solutions onto Carica papaya: Application of isotherms. Ind. Eng. Chem. Res., 47, 980–986.
  • Béchet, B., Durin, B., Legret, M., and Le Cloirec, P. (2006). Colloidal specification of heavy metals in runoff and interstitial waters of a retention/infiltration pond. Water. Sci. Technol., 54, 307–314.
  • Bée, A., Talbot, D., Abramson, S., and Dupuis, V. (2011). Magnetic alginate beads for Pb(II) ions removal from wastewater. J. Colloid Interface Sci., 362, 486–492.
  • Behera, B. K., and Mishra, R. (2008). 3-Dimensional weaving. Indian J. Fibre Textile Res., 33, 274–287.
  • Birlik, E., Ersöz, A., Açıkkalp, E., Denizli, A., and Say, R. (2007). Cr(III)-imprinted polymeric beads: Sorption and preconcentration studies. J. Hazard. Mater., 140, 110–116.
  • Blindauer, C. A. (2013). Lessons on the critical interplay between zinc binding and protein structure and dynamics. J. Inorg. Biochem., 121, 145–155.
  • Bolan, N., Kunhikrishnan, A., Thangarajan, R., Kumpiene, J., Park, J., Makino, T., Kirkham, M. B., and Scheckel, K. (2014). Remediation of heavy metal(loid)s contaminated soils - to mobilize or to immobilize? J. Hazard. Mater., 266, 141–166.
  • Borne, K. E., Fassman-Beck, E. A., and Tanner, C. C. (2014). Floating Treatment Wetland influences on the fate of metals in road runoff retention ponds. Water Res., 48, 430–442.
  • Braccini, I., and Pérez, S. (2001). Molecular basis of Ca2+-induced gelation in alginates and pectins:  the egg-box model revisited. Biomacromolecules, 2, 1089–1096.
  • Brady, J. P., Ayoko, G. A., Martens, W. N., and Goonetilleke, A. (2014). Enrichment, distribution and sources of heavy metals in the sediments of Deception Bay, Queensland, Australia. Mar. Pollut. Bull., 15, 248–255.
  • Bukhari, S. B., Memon, S., Mahroof-Tahir, M., and Bhanger, M. I. (2009). Synthesis, characterization and antioxidant activity copper-quercetin complex. Spectrochim. Acta, Part A, 71, 1901–1906.
  • Callahan, D. L., Baker, A. J.M., Kolev, S. D., and Wedd, A. G. (2006). Metal ion ligands in hyperaccumulating plants. J. Biol. Inorg. Chem., 11, 2–12.
  • Canet, R., Chaves, C., Pomares, F., and Albiach, R. (2003). Agricultural use of sediments from the Albufera Lake (eastern Spain). Agricult. Ecosyst. Environ., 95, 29–36.
  • Carrera, F., Sánchez Marcos, E., Merkling, P. J., Chaboy, J., and Muñoz-Páez, A. (2004). Nature of metal binding sites in Cu(II) complexes with histidine and related N-coordinating ligands, as studied by EXAFS. Inorg. Chem., 43, 6674–6683.
  • Chen, C.-Y., Yang, C.-Y., and Chen, A.-H. (2011). Biosorption of Cu(II), Zn(II), Ni(II) and Pb(II) ions by cross-linked metal-imprinted chitosans with epichlorohydrin. J. Environ. Manage., 92, 796–802.
  • Chen, W. B., and Cao, Z. (2013). Removal of lead(II) and copper(II) from hypersaline media with amorphous tin(IV) phosphate. Asian J. Chem., 25, 3655–3659.
  • Chen, Y.-X., Liu, H., Zhu, G. W., Chen, H.-L., and Tian, G.-M. (2004). Pollution characteristics of recent sediments in the Hangzhou section of the Grand Canal, China. J. Environ. Sci., 16, 34–39.
  • Chen, Y. X., Zhong, B. H., and Fang, W. M. (2012). Adsorption characterization of lead(II) and cadmium(II) on crosslinked carboxymethyl starch. J. Appl. Polym. Sci., 124, 5010–5020.
  • Chu, J., Yan, S., and Lam, K. P. (2012). Methods for improvement of clay slurry or sewage sludge. Proc. Instit. Civil Engineers: Ground Improvement, 165, 187–199.
  • Citir, M., Stennett, E. M.S., Oomens, J., Steill, J. D., Rodgers, M. T., and Armentrout, P. B. (2010). Infrared multiple photon dissociation spectroscopy of cationized cysteine: Effects of metal cation size on gas-phase conformation. Int. J. Mass Spectrom., 297, 9–17.
  • Cobbett, C. S. (2000). Phytochelatins and their roles in heavy metal detoxification. Plant Physiol., 123, 825–832.
  • Cobbett, C.S., and Goldsbrough, P. (2002). Phytochelatins and metallothioneins: Roles in heavy metal detoxification and homeostasis. Ann. Rev. Plant Biol., 53, 159–182.
  • Coulon, A., El-Mufleh, A., Cannavo, P., Vidal-Beaudet, L., Béchet, B., and Charpentier, S. (2013). Specific stability of organic matter in a stormwater infiltration basin. Journal of Soils and Sediments, 13, 508–518.
  • Crini, G. G. (2005). Recent developments in polysaccharide-based materials used as adsorbents in wastewater treatment. Prog. Polym. Sci., 30, 38–70.
  • D’Hose, T., Cougnon, M., De Vliegher, A., Willekens, K., Van Bockstaele, E., and Reheul, D. (2012). Farm compost application: Effects on crop performance. Compost Sci. Util., 20, 49–56.
  • Degoutin, S., Jimenez, M., Casetta, M., Bellayer, S., Chai, F., Blanchemain, N., Neut, C., Kacem, I., Traisnel, M., and Martel, B. (2012). Anticoagulant and antimicrobial finishing of non-woven polypropylene textiles. Biomed. Mater., 7, 1–13.
  • Delalande, O., Desvaux, H., Godat, E., Valleix, A., Junot, C., Labarre, J., and Boulard, Y. (2010). Cadmium-glutathione solution structures provide new keys for understanding the detoxification process. FEBS J., 277, 5086–5096.
  • Delmer, D. P., and Amor, Y. (1995). Cellulose biosynthesis. Plant Cell, 7, 987–1000.
  • Demirbas, A. (2004). Adsorption of lead and cadmium ions in aqueous solutions onto modified lignin from alkali glycerol delignication. J. Hazard. Mater., 109, 221–226.
  • Dennis, G. R., and Ritchie, G. L.D. (1991). Dilute-solution field gradient induced birefringence and molecular quadrupole moment of benzene. J. Phys. Chem., 95, 656–660.
  • Deschamps, P., Kulkarni, P. P., Gautam-Basak, M., and Sarkar, B. (2005). The saga of copper(II)-L-histidine. Coord. Chem. Rev., 249, 895–909.
  • Deschamps, T., Benzaazoua, M., Bussière, B., Belem, T., and Mbonimpa, M. (2006). Mécanismes de rétention des métaux lourds en phase solide : cas de la stabilisation des sols contaminés et des déchets industriels. VertigO - la revue électronique en sciences de l’environnement, 7, http://vertigo.revues.org/2171#quotation
  • Deze, E. G., Papageorgiou, S. K., Favvas, E. P., and Katsaros, F. K. (2012). Porous alginate aerogel beads for effective and rapid heavy metal sorption from aqueous solutions: Effect of porosity in Cu 2+ and Cd 2+ ion sorption. Chem. Eng. J., 209, 537–546.
  • Ding, C., Cheng, W., Sun, Y., and Wang, X. (2014). Determination of chemical affinity of graphene oxide nanosheets with radionuclides investigated by macroscopic, spectroscopic and modeling techniques. Dalton Trans., 43, 3888–3896.
  • Dixon, K. L., and Knox, A. S. (2012). Sequestration of metals in active cap materials: A laboratory and numerical evaluation. Remediation, 22, 81–91.
  • Dolatabadi, J. E.N. (2011). Molecular aspects on the interaction of quercetin and its metal complexes with DNA. Int. J. Biol. Macromol., 48, 227–233.
  • Dongre, R., Thakur, M., Ghugal, D., and Meshram, J. (2012). Bromine pretreated chitosan for adsorption of lead (II) from water. Bull. Mater. Sci., 35, 875–884.
  • Dronnet, V. M., Renard, C. M.G.C., Axelos, M. A.V., and Thibault, J.-F. (1996). Characterization and selectivity of divalent metal ions binding by citrus and sugar-beet pectins. Carbohydr. Polym., 30, 253–263.
  • Ducoroy, L., Bacquet, M., Martel, B., and Morcellet, M. (2008). Removal of heavy metals from aqueous media by cation exchange nonwoven PET coated with b-cyclodextrin-polycarboxylic moities. React. Funct. Polym., 68, 594–600.
  • Ducoroy, L., Martel, B., Bacquet, M., and Morcellet, M. (2007). Cation exchange finishing of nonwoven polyester with polycarboxylic acids and cyclodextrins. J. Appl. Polym. Sci., 103, 3730–3738.
  • Duke, M. L., Fowler, J., Schmidt, M. L., and Askew, A. C. (2000). Dredging and dewatering of hazardous impoundment sediment using the dry dredge and geotubes. WEDA Journal, 2, 13–21.
  • Dunbar, R. C., Steill, J. D., and Oomens, J. (2011). Encapsulation of Metal Cations by the PhePhe Ligand: A Cation−π Ion Cage. J. Am. Chem. Soc., 133, 9376–9386.
  • Dursun, A. Y. (2006). A comparative study on determination of the equilibrium, kinetic and thermodynamic parameters of biosorption of copper(II) and lead(II) ions onto pretreated Aspergillus niger. Biochem. Eng. J., 28, 187–195.
  • Dutta, P. K., Dutta, J., and Tripathi, V. S. (2004). Chitin and chitosan: Chemistry, properties and applications. J. Sci. Ind. Res., 63, 20–31.
  • Ebel, M., and Rehder, D. (2006). Interaction of vanadyl (VO2+) with ligands containing serine, tyrosine, and threonine. Inorg. Chem., 45, 7083–7090.
  • El-Khouly, A. S., Takahashi, Y., Saafan, A. A., Kenawy, E., and Hafiz, Y. A. (2011). Study of heavy metal ion absorbance by amidoxime group introduced to cellulose-graft-polyacrylonitrile. J. Appl. Polym. Sci., 120, 866–873.
  • Ely, A., Baudu, M., Kankou, M. O.S.O., and Basly, J. P. (2011). Copper and nitrophenol removal by low cost alginate/Mauritanian clay composite beads. Chem. Eng. J., 178, 168–174.
  • Evans, M., Fazakas, K., and Keating, J. (2009). Creosote contamination in sediments of the Grey Owl Marina in Prince Albert National Park, Saskatchewan, Canada. Water, Air, Soil Pollut., 201, 161–184.
  • Fabbrizzi, L., Leone, A., and Tagliette, A. (2001). A chemosensing ensemble for selective carbonate detection in water based on metal-ligand interactions. Angew. Chem. Int. Ed., 40, 3066–3069.
  • Faghihian, H., and Nejati-Yazdinejad, M. (2009). Sorption performance of cysteine-modified bentonite in heavy metals uptake. Russian Source, 74, 833–843.
  • Faller, P., Hureau, C., Dorlet, P., Hellwig, P., Coppel, Y., Collin, F., and Alies, B. (2012). Methods and techniques to study the bioinorganic chemistry of metal-peptide complexes linked to neurodegenerative diseases. Coord. Chem. Rev., 256, 2381–2396.
  • Fan, L., Luo, C., Lv, Z., Lu, F., and Qiu, H. (2011). Removal of Ag+ from water environment using a novel magnetic thiourea-chitosan imprinted Ag+. J. Hazard. Mater., 194, 193–201.
  • Febrianto, J., Kosasih, A. N., Sunarso, J., Ju, Y.-H., Indraswati, N., and Ismadji, S. (2009). Equilibrium and kinetic studies in adsorption of heavy metals using biosorbent: A summary of recent studies. J. Hazard. Mater., 162, 616–645.
  • Figueira, E., Freitas, R., Guasch, H., and Almeida, S. F.P. (2014). Efficiency of cadmium chelation by phytochelatins in Nitzschia palea (Kützing) W. Smith. Ecotoxicology, 23, 285–292.
  • Fiset, J.-F., Blais, J.-F., and Riveros, P. A. (2008). Review on the removal of metal ions from effluents using seaweeds, alginate derivatives and other sorbents. Rev. Sci. Eau, 21, 283–308.
  • Fitts, J. P., Persson, P., Brown, G. E. Jr., and Parks, G. A. (1999). Structure and bonding of Cu(II)-glutamate complexes at the γ-Al2O3- water interface. J. Colloid Interface Sci., 220, 133–147.
  • Foo, K. Y., and Hameed, B. H. (2009). An overview of landfill leachate treatment via activated carbon adsorption process. J. Hazard. Mater., 171, 54–60.
  • Foo, K. Y., and Hameed, B. H. (2010). Insights into the modeling of adsorption isotherm systems. Chem. Eng. J., 156, 2–10.
  • Fu, F., and Wang, Q. (2011). Removal of heavy metal ions from wastewaters: A review. J. Environ. Manage., 92, 407–418.
  • Gancarz, J., Pozniak, M., Bryjak, A., Frankiewicz. (1999). Modification of polysulfone membranes. 2. Plasma grafting and plasma polymerization of acrylic acid. Acta Polymer., 50, 317–326.
  • Gao, Y., Truong, Y. B., Cacioli, P., Butler, P., and Kyratzis, I. L. (2014). Bioremediation of pesticide contaminated water using an organophosphate degrading enzyme immobilized on nonwoven polyester textiles. Enzyme Microb. Technol., 54, 38–44.
  • Gerente, C., Lee, V. K.C., Le Cloirec, P., and McKay, G. (2007). Application of chitosan for the removal of metals from wastewaters by adsorption: mechanisms and models review. Crit. Rev. Environ. Sci. Technol., 37, 41–127.
  • Ghosh, S., Cirera, J., Vance, M. A., Ono, T., Fujisawa, K., and Solomon, E. I. (2008). Spectroscopic and electronic structure studies of phenolate Cu(II) complexes: phenolate ring orientation and activation related to cofactor biogenesis. J. Am. Chem. Soc., 130, 16262–16273.
  • Glennon, M. M., Harris, P., Ottesen, R. T., Scanlon, R. P., and O’Connor, P. J. (2014). The Dublin SURGE Project: Geochemical baseline for heavy metals in topsoils and spatial correlation with historical industry in Dublin, Ireland. Environ. Geochem. Health, 36, 235–254.
  • Gomes, A. P., Mano, J. F., Queiroz, J. A., and Gouveia, I. C. (2014). New biomaterial based on cotton with incorporated biomolecules. J. Appl. Polym. Sci., 131, 40519.
  • Gondar, D., Lopez, R., Fiol, S., Antelo, J. M., and Arce, F. (2005). Characterization and acid-base properties of fulvic and humic acids isolated from two horizons of an ombrotrophic peat bog. Geoderma, 126, 367–374.
  • González-Macías, C., Sánchez-Reyna, G., Salazar-Coria, L., and Schifter, I. (2014). Application of the positive matrix factorization approach to identify heavy metal sources in sediments. A case study on the Mexican Pacific Coast. Environ. Monit. Assess., 186, 307–324.
  • Grant, G. T., Morris, E. R., Rees, D. A., Smith, P. J.C., and Thom, D. (1973). Biological interactions between polysaccharides and divalent cations: The egg-box model. FEBS Lett., 32, 195–198.
  • Gritti, F., and Guiochon, G. (2006). Extension of Toth Y function from gas-solid to liquid-solid equilibria and application to reversed-phase liquid chromatography systems. J. Colloid Interface Sci., 299, 136–154.
  • Guibal, E. (2004). Interactions of metal ions with chitosan-based sorbents: a review. Sep. Purif. Technol., 38, 43–74.
  • Guo, X., Zhang, S., and Shan, X.-Q. (2008). Adsorption of metal ions on lignin. J. Hazard. Mater., 151, 134–142.
  • Gurgel, L. V.A., and Gil, L. F. (2009). Adsorption of Cu(II), Cd(II), and Pb(II) from aqueous single metal solutions by succinylated mercerized cellulose modified with triethylenetetramine. Carbohydr. Polym., 77, 142–149.
  • Gurgel, L. V.A., Júnior, O. K., Gil, R. P. d.F., and Gil, L. F. (2008). Adsorption of Cu(II), Cd(II), and Pb(II) from aqueous single metal solutions by cellulose and mercerized cellulose chemically modified with succinic anhydride. Bioresour. Technol., 99, 3077–3083.
  • Gutiérrez-Segura, E., Solache-Ríos, M., Colín-Cruz, A., and Fall, C. (2012). Adsorption of cadmium by Na and Fe modified zeolitic tuffs and carbonaceous material from pyrolyzed sewage sludge. J. Environ. Manage., 97, 6–13.
  • Hall, J. L. (2002). Cellular mechanisms for heavy metal detoxification and tolerance. J. Exper. Botany, 53, 1–11.
  • Hamzeh, M., Ouddane, B., Daye, M., and Halwani, J. (2014). Trace metal mobilization from surficial sediments of the Seine River Estuary. Water, Air, Soil Pollut., 225, 1–15.
  • He, J., Lu, Y., and Luo, G. (2014). Ca(II) imprinted chitosan microspheres: An effective and green adsorbent for the removal of Cu(II), Cd(II) and Pb(II) from aqueous solutions. Chem. Eng. J., 244, 202–208.
  • Heaton, A. L., Bowman, V. N., Oomens, J., Steill, J. D., and Armentrout, P. B. (2009). Infrared multiple photon dissociation spectroscopy of cationized asparagine: Effects of metal cation size on gas-phase conformation. J. Phys. Chem. A, 113, 5519–5530.
  • Heim, S., and Schwarzbauer, J. (2013). Pollution history revealed by sedimentary records: a review. Environ. Chem. Lett., 11, 255–270.
  • Hierhammer, M., and Erth, H. (2008). Novel textile structure for geotechnical applications with seal function. Neuartige Textile Struktur für Geotechnische Anwendungen mit Dichtfunktion, 51, 30–31, e28–e29.
  • Hofmann, J., Watson, V., and Scharaw, B. (2014). Groundwater quality under stress: contaminants in the Kharaa River basin (Mongolia). Environ. Earth Sci., 73(2), 629–648.
  • Howard, M., A. Jurbergs, H., and Holcombe, J. A. (1999). Comparison of silica-immobilized poly(L-cysteine) and 8-hydroxyquinoline for trace metal extraction and recovery. J. Anat. At. Spectrom., 14, 1209–1214.
  • Hu, J., Chen, G., and Lo, I. M.C. (2005). Removal and recovery of Cr(VI) from wastewater by maghemite nanoparticles. Water Res., 39, 4528–4536.
  • Hu, P., Sorensen, C., and Gross, M. (1995). Influences of peptide side chains on the metal ion binding site in metal ion-cationized peptides: Participation of aromatic rings in metal chelation. J. Am. Soc. Mass Spectrom., 6, 1079–1085.
  • Ibáñez, J. P., and Aracena, A. (2014). Uptake of Zn2+ from dilute aqueous solutions using protonated dry alginate beads. Can. Metall. Q., 53, 82–87.
  • Ikhsan, J., Wells, J. D., Johnson, B. B., and Angove, M. J. (2004). The effect of aspartic acid on the binding of transition metals to kaolinite. J. Colloid Interface Sci., 273, 6–13.
  • Imaz, I., Rubio-Martínez, M., An, J., Solé-Font, I., Rosi, N. L., and Maspoch, D. (2011). Metal-biomolecule frameworks (MBioFs). Chem. Commun., 47, 7287–7302.
  • Irving, H., and Williams, R. J. P. (1953). The stability of transition-metal complexes. J. Chem. Soc., 0, 3192–3210.
  • Jacobs, P., and Förstner, U. (2001). Managing contaminated sediments. Journal of Soils and Sediments, 1, 205–212.
  • Jalilehvand, F., Leung, B. O., Izadifard, M., and Damian, E. (2006). Mercury(II) cysteine complexes in alkaline aqueous solution. Inorg. Chem., 45, 66–73.
  • Jalilehvand, F., Parmar, K., and Zielke, S. (2013). Mercury(ii) complex formation with N-acetylcysteine. Metallomics, 5, 1368–1376.
  • Jodra, Y., and Mijangos, F. (2003). Cooperative biosorption of copper on calcium alginate enclosing iminodiacetic type resin. Environ. Sci. Technol., 37, 4362–4367.
  • Johnson, A. M., and Holcombe, J. A. (2004). Poly(l-cysteine) as an electrochemically modifiable ligand for trace metal chelation. Anal. Chem., 77, 30–35.
  • Jozefczak, M., Remans, T., Vangronsveld, J., and Cuypers, A. (2012). Glutathione is a key player in metal-induced oxidative stress defenses. Int. J. Mol. Sci., 13, 3145–3175.
  • Jurasekova, Z., Torreggiani, A., Tamba, M., Sanchez-Cortes, S., and Garcia-Ramos, J. V. (2009). Raman and surface-enhanced Raman scattering (SERS) investigation of the quercetin interaction with metals: Evidence of structural changing processes in aqueous solution and on metal nanoparticles. J. Mol. Struct., 918, 129–137.
  • Jurbergs, H. A., and Holcombe, J. A. (1997). Characterization of immobilized Poly(l-cysteine) for cadmium chelation and preconcentration. Anal. Chem., 69, 1893–1898.
  • Kadirvelu, K., Faur-Brasquet, C., and Le Cloirec, P. (2000). Removal of Cu(II), Pb(II), and Ni(II) by adsorption onto activated carbon cloths. Langmuir, 16, 8404–8409.
  • Kägi, J. H.R., and Vallee, B. L. (1960). Metallothionein: a cadmium- and zinc-containing protein from equine renal cortex. J. Biol. Chem., 235, 3460–3465.
  • Kalender, L., and Çiçek Uçar, S. (2013). Assessment of metal contamination in sediments in the tributaries of the Euphrates River, using pollution indices and the determination of the pollution source, Turkey. J. Geochem. Explor., 134, 73–84.
  • Kalinovich, I., Rutter, A., Rowe, R. K., McWatters, R., and Poland, J. S. (2008). The application of geotextile and granular filters for PCB remediation. Geosynth. Int., 15, 173–183.
  • Karnitz Junior, O., Alves Gurgel, L. V., Pereira de Freitas, R., and Gil, L. F. (2009). Adsorption of Cu(II), Cd(II), and Pb(II) from aqueous single metal solutions by mercerized cellulose and mercerized sugarcane bagasse chemically modified with EDTA dianhydride (EDTAD). Carbohydr. Polym., 77, 643–650.
  • Khalil, M. I., and Farag, S. (1998). Utilization of some starch derivatives in heavy metal ions removal. J. Appl. Polym. Sci., 69, 45–50.
  • Khangarot, B. S., and Rathore, R. S. (2004). Protective action of 24 amino acids on the toxicity of copper to a freshwater tubificid worm Tubifex tubifex Muller. Water, Air, Soil Pollut., 157, 53–63.
  • Kim, B. S., and Lim, S. T. (1999). Removal of heavy metal ions from water by cross-linked carboxymethyl corn starch. Carbohydr. Polym., 39, 217–223.
  • Klaassen, C. D., Liu, J., and Choudhuri, S. (1999). Metallothionein: An intracellular protein to protect against cadmium toxicity. Ann. Rev. Pharmacol. Toxicol., 39, 267–294.
  • Knox, A. S., Paller, M. H., and Roberts, J. (2012). Active capping technology—New approaches for in situ remediation of contaminated sediments. Remediation J., 22, 93–117.
  • Kolozsi, A., Vosekalna, I., Martinek, T., Larsen, E., and Gyurcsik, B. (2009). Copper(ii) and zinc(ii) ion binding properties of a MAP type branched ligand with histidines as surface functionalities. Dalton Trans., 5647–5654.
  • Koneswaran, M., and Narayanaswamy, R. (2009). l-Cysteine-capped ZnS quantum dots based fluorescence sensor for Cu2+ ion. Sens. Actuators B, 139, 104–109.
  • Kyzas, G. Z., Kostoglou, M., Lazaridis, N. K., and Bikiaris, D. N. (2013). N-(2-Carboxybenzyl) grafted chitosan as adsorptive agent for simultaneous removal of positively and negatively charged toxic metal ions. J. Hazard. Mater., 244–245, 29–38.
  • Lafaye, A., Junot, C., Pereira, Y., Lagniel, G., Tabet, J.-C., Ezan, E., and Labarre, J. (2005). Combined proteome and metabolite-profiling analyses reveal surprising insights into yeast sulfur metabolism. J. Biol. Chem., 280, 24723–24730.
  • Lagrange, P., Schneider, M., and Lagrange, J. (1998). Complexes of oxovanadium(IV), dioxovanadium(V) and dioxouranium(VI) with aminoacids in aqueous solution. J. Chim. Phys. Phys.-Chim. Biol., 95, 2280–2299.
  • Lai, Y.-L., Thirumavalavan, M., and Lee, J.-F. (2010). Effective adsorption of heavy metal ions (Cu2+, Pb2+, Zn2+) from aqueous solution by immobilization of adsorbents on Ca-alginate beads. Toxicol. Environ. Chem., 92, 697–705.
  • Lampert, D. J., Sarchet, W. V., and Reible, D. D. (2011). Assessing the effectiveness of thin-layer sand caps for contaminated sediment management through passive sampling. Environ. Sci. Technol., 45, 8437–8443.
  • Lewis, N. G., and Yamamoto, E. (1990). Lignin: occurence, biogenesis and biodegradation. Ann. Rev. Plant Physiol. Plant. Mol. Biol., 249, 895–909.
  • Li, J., Kang, J., Lu, J., Li, X., Tang, J., Zhang, H., and Zhang, Y. (2009). Determination of calf thymus DNA using resonance light-scattering quenching method based on the terbium (III) (Tb3+)/europium (III) (Eu3+)–quercetin system. J. Lumin., 129, 906–911.
  • Li, Q., Sun, L., Zhang, Y., Qian, Y., and Zhai, J. (2011). Characteristics of equilibrium, kinetics studies for adsorption of Hg(II) and Cr(VI) by polyaniline/humic acid composite. Desalination, 266, 188–194.
  • Li, S., Wei, J., Wang, L., Wang, A., Yang, H., and Nie, Y. (2012). Utilization of recycled polypropylene-acrylate grafted nonwoven for the removal of oil from water. Water Environ. Res., 84, 719–724.
  • Li, T., Yuan, S., Wan, J., and Lu, X. (2010). Hydroxypropyl-b-cyclodextrin enhanced electrokinetic remediation of sediment contaminated with HCB and heavy metals. J. Hazard. Mater., 176, 306–312.
  • Li, X., Qi, Y., Li, Y., Zhang, Y., He, X., and Wang, Y. (2013). Novel magnetic beads based on sodium alginate gel crosslinked by zirconium(IV) and their effective removal for Pb2 +in aqueous solutions by using a batch and continuous systems. Bioresour. Technol., 142, 611–619.
  • Liang, F. B., Song, Y. L., Huang, C. P., Li, Y. X., and Chen, B. H. (2013). Synthesis of novel lignin-based ion-exchange resin and its utilization in heavy metals removal. Ind. Eng. Chem. Res., 52, 1267–1274.
  • Liao, K., and Bhatia, S. K. (2006). Dewatering of natural sediments using geotextile tubes: Comparative behaviors of woven and non-woven geotextiles. Geotechnical Special Publication, 152, 253–258.
  • Lin, D., Tian, X., Li, T., Zhang, Z., He, X., and Xing, B. (2012). Surface-bound humic acid increased Pb 2+ sorption on carbon nanotubes. Environ. Pollut., 167, 138–147.
  • Liu, J., Xia, X., Li, Y., Wang, H., and Li, Z. (2013). Theoretical study on the interaction of glutathione with group IA (Li +, Na+, K+), IIA (Be2+, Mg 2+, Ca2+), and IIIA (Al3+) metal cations. Struct. Chem., 24, 251–261.
  • Liu, J. F., Zhao, Z. S., and Jiang, G. B. (2008). Coating Fe3O4 magnetic nanoparticles with humic acid for high efficient removal of heavy metals in water. Environ. Sci. Technol., 42, 6949–6954.
  • Locatelli, C. (2004). Heavy metals in matrices of food interest: sequential voltammetric determination at trace and ultratrace level of copper, lead, cadmium, zinc, arsenic, selenium, manganese and iron in meals. Electroanalysis, 16, 1478–1486.
  • Ma, J. C., and Dougherty, D. A. (1997). The cation-π interaction. Chem. Rev., 97, 1303–1324.
  • Maddaiah, V. T., Kurnick, A. A., and Reid, B. L. (1964). Phytic acid studies. Proc. Soc. Exp. Biol. Med., 115, 391–393.
  • Majid, S., Rhazi, M. E., Amine, A., and Brett, C. M.A. (2002). An amperometric method for the determination of trace mercury(II) by formation of complexes with L-tyrosine. Anal. Chim. Acta, 464, 123–133.
  • Manap, M. R.A., Yusof, N. A., Nor, S. M. M., and Ahmad, F. B. H. (2010). Recent development of amino acids and peptides in metal ions detection: An overview. Orient. J. Chem., 26, 23–29.
  • Manceau, A., Simionovici, A., Lanson, M., Perrin, J., Tucoulou, R., Bohic, S., Fakra, S. C., Marcus, M. A., Bedell, J. P., and Nagy, K. L. (2013). Thlaspi arvense binds Cu(ii) as a bis-(l-histidinato) complex on root cell walls in an urban ecosystem. Metallomics, 5, 1674–1684.
  • Maret, W., Larsen, K. S., and Vallee, B. L. (1997). Coordination dynamics of biological zinc “clusters” in metallothioneins and in the DNA-binding domain of the transcription factor Gal4. Proc. Natl. Acad. Sci., 94, 2233–2237.
  • Maret, W., and Li, Y. (2009). Coordination dynamics of zinc in proteins. Chem. Rev., 109, 4682–4707.
  • Martel, B., Le Thuaut, P., Bertini, S., Crini, G., Bacquet, M., Torri, G., and Morcellet, M. (2001). Grafting of cyclodextrins onto polypropylene nonwoven fabrics for the manufacture of reactive filters. III. Study of the sorption properties. J. Appl. Polym. Sci., 85, 1771–1778.
  • Martin, R. B. (1987). A stability ruler for metal ion complexes. J. Chem. Educ., 64, 402.
  • Masciandaro, G., Di Biase, A., Macci, C., Peruzzi, E., Iannelli, R., and Doni, S. (2014). Phytoremediation of dredged marine sediment: Monitoring of chemical and biochemical processes contributing to sediment reclamation. J. Environ. Manage., 134, 166–174.
  • Mata, Y. N., Blazquez, M. L., Ballester, A., Gonzalez, F., and Muñoz, J. A. (2010). Studies on sorption, desorption, regeneration and reuse of sugar-beet pectin gels for heavy metal removal. J. Hazard. Mater., 178, 243–248.
  • Mayr, H., Breugst, M., and Ofial, A. R. (2011). Farewell to the HSAB treatment of ambident reactivity. Angew. Chem. Int. Ed., 50, 6470–6505.
  • Meland, S., Borgstrøm, R., Heier, L. S., Rosseland, B. O., Lindholm, O., and Salbu, B. (2010). Chemical and ecological effects of contaminated tunnel wash water runoff to a small Norwegian stream. Sci. Total Environ., 408, 4107–4117.
  • Mera, R., Torres, E., and Abalde, J. (2014). Sulphate, more than a nutrient, protects the microalga Chlamydomonas moewusii from cadmium toxicity. Aquat. Toxicol., 148, 92–103.
  • Merrifield, J. D., Davids, W. G., MacRae, J. D., and Amirbahman, A. (2004). Uptake of mercury by thiol-grafted chitosan gel beads. Water Res., 38, 3132–3138.
  • Mesu, J. G., Visser, T., Soulimani, F., Van Faassen, E. E., De Peinder, P., Beale, A. M., and Weckhuysen, B. M. (2006). New insights into the coordination chemistry and molecular structure of copper(II) histidine complexes in aqueous solutions. Inorg. Chem., 45, 1960–1971.
  • Meunier, F., and Sun, L.-M. (2003). Adsorption aspects théoriques. Techniques de l’ingénieur Procédés de traitement des eaux potables, industrielles et urbaines, base documentaire: TIB318DUO.
  • Mishra, G., and McArthur, S. L. (2010). Plasma polymerization of maleic anhydride: Just what are the right deposition conditions? Langmuir, 26, 9645–9658.
  • Misra, V. (2009). A review on the use of biopolymers for the removal of toxic metals from liquid industrial effluents. Int. J. Environ. Waste Manage., 3, 393–410.
  • Mohan, R. K., Brown, M. P., and Barnes, C. R. (2000). Design criteria and theoretical basis for capping contaminated marine sediments. Appl. Ocean Res., 22, 85–93.
  • Mohnen, D. (2008). Pectin structure and biosynthesis. Curr. Opin. Plant Biol., 11, 266–277.
  • Monier, M., Kenawy, I. M., and Hashem, M. A. (2014). Synthesis and characterization of selective thiourea modified Hg(II) ion-imprinted cellulosic cotton fibers. Carbohydr. Polym., 106, 49–59.
  • Montazer-Rahmati, M. M., Rabbani, P., and Abdolali, A. (2011). Biosorption of Cd (II) and Ni (II) from aqueous solutions by cystoseira indica. In R. S.B. Antizar-Ladislao (Ed.), Water Production and wastewater treatment (pp. 45–68). Nova Science, New York.
  • Moreau, J. L., Baudrimont, M., Carrier, P., Peltier, G., and Bourdineaud, J. P. (2008). Metal binding and antioxidant properties of chimeric tri- and tetra-domained metallothioneins. Biochimie, 90, 705–716.
  • Moreno, D. A., Víllora, G., Soriano, M. T., Castilla, N., and Romero, L. (2005). Sulfur, chromium, and selenium accumulated in Chinese cabbage under direct covers. J. Environ. Manage., 74, 89–96.
  • Morent, R., De Geyter, N., Van Vlierberghe, S., Beaurain, A., Dubruel, P., and Payen, E. (2011). Influence of operating parameters on plasma polymerization of acrylic acid in a mesh-to-plate dielectric barrier discharge. Prog. Org. Coat., 70, 336–341.
  • Mori, H., Miki, H., and Tsuneoka, N. (2002). The geo-tube method for dioxin-contaminated soil. Geotextiles Geomembr., 20, 281–288.
  • Mostafa, K. M., Samarkandy, A. R., and El-Sanabary, A. A. (2011). Preparation of poly(DMAEM)-cross linked pregelled starch graft copolymer and its application in waste water treatments. Carbohydr. Polym., 86, 491–498.
  • Mudhoo, A., Garg, V. K., and Wang, S. (2012). Removal of heavy metals by biosorption. Environ. Chem. Lett., 10, 109–117.
  • Murphy, A., Zhou, J., Goldsbrough, P. B., and Taiz, L. (1997). Purification and Immunological Identification of Metallothioneins 1 and 2 from Arabidopsis thaliana. Plant Physiol., 113, 1293–1301.
  • Nicolis, I., Deschamps, P., Curis, E., Corriol, O., Acar, V., Zerrouk, N., Chaumeil, J. C., Guyon, F., and Bénazeth, S. (2001). XAS applied to pharmaceuticals: Drug administration and bioavailability. J. Synchrotron Radiat., 8, 984–986.
  • Noonan Schutt, E. (1997). ATME-I features nonwovens machinery. Nonwovens Industry, 28, 44–52.
  • Nouri, L., Ghodbane, I., Hamdaoui, O., and Chiha, M. (2007). Batch sorption dynamics and equilibrium for the removal of cadmium ions from aqueous phase using wheat bran. J. Hazard. Mater., 149, 115–125.
  • Oehr, C., Müller, M., Elkin, B., Hegemann, D., and Vohrer, U. (1999). Plasma grafting - A method to obtain monofunctional surfaces. Surf. Coat. Technol., 116–119, 25–35.
  • Organesyan, E. T., Nersesyan, Z. M., and Parkhomenko, A. Y. (2007). Chemical composition of the above-ground part of Coriandrum sativum. Pharm. Chem. J., 41, 30–34.
  • Ortega, R., Carmona, A., Llorens, I., and Solari, P. L. (2012). X-ray absorption spectroscopy of biological samples. A tutorial. J. Anat. At. Spectrom., 27, 2054–2065.
  • Padmavathy, V. (2008). Biosorption of nickel(II) ions by baker's yeast: Kinetic, thermodynamic and desorption studies. Bioresour. Technol., 99, 3100–3109.
  • Pal, R., and Rai, J. P.N. (2010). Phytochelatins: Peptides involved in heavy metal detoxification. Appl. Biochem. Biotechnol., 160, 945–963.
  • Palacios, Ò., Atrian, S., and Capdevila, M. (2011). Zn- and Cu-thioneins: a functional classification for metallothioneins? J. Biol. Inorg. Chem., 16, 991–1009.
  • Park, J. D., Liu, Y., and Klaassen, C. D. (2001). Protective effect of metallothionein against the toxicity of cadmium and other metals. Toxicology, 163, 93–100.
  • Parr, R. G., and Pearson, R. G. (1983). Absolute hardness: companion parameter to absolute electronegativity. J. Am. Chem. Soc., 105, 7512–7516.
  • Pazos, M., Rosales, E., Alcantara, T., Gomez, J., and Sanroman, M. A. (2010). Decontamination of soils containing PAHs by electroremediation: a review. J. Hazard. Mater., 177, 1–11.
  • Pearson, R. G. (1963). Hard and soft acids and bases. J. Am. Chem. Soc., 85, 3533–3539.
  • Pehlivan, E., Yanık, B. H., Ahmetli, G., and Pehlivan, M. (2008). Equilibrium isotherm studies for the uptake of cadmium and lead ions onto sugar beet pulp. Bioresour. Technol., 99, 3520–3527.
  • Pekal, A., Biesaga, M., and Pyrzynska, K. (2011). Interaction of quercetin with copper ions: complexation, oxidation and reactivity toward radicals. Biometals, 24, 41–49.
  • Peroza, E. A., Schmucki, R., Güntert, P., Freisinger, E., and Zerbe, O. (2009). The bE-domain of wheat Ec-1 metallothionein: a metal-binding domain with a distinctive structure. J. Mol. Biol., 387, 207–218.
  • Plazinski, W. (2012). Sorption of lead, copper, and cadmium by calcium alginate. Metal binding stoichiometry and the pH effect. Environmental Science and Pollution Research, 19, 3516–3524.
  • Plazinski, W. (2013). Binding of heavy metals by algal biosorbents. Theoretical models of kinetics, equilibria and thermodynamics. Adv. Colloid Interface Sci., 197–198, 58–67.
  • Plazinski, W., and Rudzinski, W. (2009). Modeling the effect of surface heterogeneity in equilibrium of heavy metal ion biosorption by using the ion exchange model. Environ. Sci. Technol., 43, 7465–7471.
  • Podzus, P. E., Daraio, M. E., and Jacobo, S. E. (2009). Chitosan magnetic microspheres for technological applications: Preparation and characterization. Phys. B: Condensed Matter, 404, 2710–2712.
  • Poulsen, I. F., and Hansen, H. C.B. (2000). Soil sorption of nickel in presence of citrate or arginine. Water, Air, Soil Pollut., 120, 249–259.
  • Ralph, D. M., Robinson, S. R., Campbell, M. S., and Bishop, G. M. (2010). Histidine, cystine, glutamine, and threonine collectively protect astrocytes from the toxicity of zinc. Free Radical Biol. Med., 49, 649–657.
  • Rambaud, L., Dalbiez, J.-P., Amekraz, B., Moulin, C., Perly, B., and Baudin, C. (2006). Influence of monosubstitution of hexakis(3,6-anhydro)cyclomaltohexaose on Its complexation properties with ions, with special attention to heavy metals. Eur. J. Org. Chem., 2006, 1245–1250.
  • Randall, P. M., Yates, B. J., Lal, V., Darlington, R., and Fimmen, R. (2013). In-situ subaqueous capping of mercury-contaminated sediments in a fresh-water aquatic system, Part II-evaluation of sorption materials. Environ. Res., 125, 41–51.
  • Rao, Y., McCooeye, M., and Mester, Z. (2012). Mapping of sulfur metabolic pathway by LC Orbitrap mass spectrometry. Anal. Chim. Acta, 721, 129–136.
  • Rauser, W. E. (1999). Structure and function of metal chelators produced by plants: The case for organic acids, amino acids, phytin, and metallothioneins. Cell Biochem. Biophys., 31, 19–48.
  • Reddy, D. H.K., and Lee, S.-M. (2013). Application of magnetic chitosan composites for the removal of toxic metal and dyes from aqueous solutions. Adv. Colloid Interface Sci., 201–202, 68–93.
  • Remko, M., Fitz, D., Broer, R., and Rode, B. (2011). Effect of metal Ions (Ni2+, Cu2 +and Zn2+) and water coordination on the structure of L-phenylalanine, L-tyrosine, L-tryptophan and their zwitterionic forms. J. Mol. Model., 17, 3117–3128.
  • Renault, F., Sancey, B., Badot, P. M., and Crini, G. (2009a). Chitosan for coagulation/flocculation processes: an eco-friendly approach. Eur. Polym. J., 45, 1337–1348.
  • Renault, F., Sancey, B., Charles, J., Morin-Crini, N., Badot, P.-M., Winterton, P., and Crini, G. (2009b). Chitosan flocculation of cardboard-mill secondary biological wastewater. Chem. Eng. J., 155, 775–783.
  • Rey-Castro, C., Herrero, R., and Sastre De Vicente, M. E. (2004). Surface charge and permeable gel descriptions of the ionic strength influence on proton binding to seaweed biomass. Chem. Speciation Bioavail., 16, 61–69.
  • Richaud, E., Farcas, F., Divet, L., and Benneton, J. P. (2008). Accelerated ageing of polypropylene geotextiles, the effect of temperature, oxygen pressure and aqueous media on fibers: methodological aspects. Geotextiles Geomembr., 26, 71–81.
  • Ritchie, S. M.C., Kissick, K. E., Bachas, L. G., Sikdar, S. K., Parikh, C., and Bhattacharyya, D. (2001). Polycysteine and other polyamino acid functionalized microfiltration membranes for heavy metal capture. Environ. Sci. Technol., 35, 3252–3258.
  • Rulíšek, L. R., and Havlas, Z. (2000). Theoretical studies of metal ion selectivity. 1. DFT calculations of interaction energies of amino acid side chains with selected transition metal ions (Co2+, Ni2+, Cu2+, Zn2+, Cd2+, and Hg2+). J. Am. Chem. Soc., 122, 10428–10439.
  • Rulíšek, L. R., and Vondrášek, J. (1998). Coordination geometries of selected transition metal ions (Co2+, Ni2+, Cu2+, Zn2+, Cd2+, and Hg2+) in metalloproteins. J. Inorg. Biochem., 71, 115–127.
  • Ryzhov, V., and Dunbar, R. C. (1999). Interactions of phenol and indole with metal ions in the gas phase: Models for Tyr and Trp side-chain binding. J. Am. Chem. Soc., 121, 2259–2268.
  • Schiewer, S. (1999). Modelling complexation and electrostatic attraction in heavy metal biosorption by Sargassum biomass. J. Appl. Phycol., 11, 79–87.
  • Schiewer, S., and Balaria, A. (2009). Biosorption of Pb2+ by original and protonated citrus peels: Equilibrium, kinetics, and mechanism. Chem. Eng. J., 146, 211–219.
  • Schiewer, S., and Volesky, B. (1997). Ionic strength and electrostatic effects in biosorption of divalent metal ions and protons. Environ. Sci. Technol., 31, 2478–2485.
  • Sciarratta, V., Vohrer, U., Hegemann, D., Müller, M., and Oehr, C. (2003). Plasma functionalization of polypropylene with acrylic acid. Surf. Coat. Technol., 174–175, 805–810.
  • Sears, M. E. (2013). Chelation: Harnessing and enhancing heavy metal detoxification - A review. Sci. World J., 2013, 219840.
  • Sevcikova, M., Modra, H., Slaninova, A., and Svobodova, Z. (2011). Metals as a cause of oxidative stress in fish: A review. Veterinarni Medicina, 56, 537–546.
  • Severin, K., Bergs, R., and Beck, W. (1998). Bioorganometallic chemistry - transition metal complexes with α-amino acids and peptides. Angew. Chem. Int. Ed., 37, 1634–1654.
  • Shimazaki, Y., Takani, M., and Yamauchi, O. (2009). Metal complexes of amino acids and amino acid side chain groups. Structures and properties. Dalton Trans., 7854–7869.
  • Sigel, H., and McCormick, D. B. (1970). Discriminating behavior of metal ions and ligands with regard to their biological significance. Acc. Chem. Res., 3, 201–208.
  • Skold, M. E., Thyne, G. D., Drexler, J. W., and McCray, J. E. (2009). Solubility enhancement of seven metal contaminants using carboxymethyl-β-cyclodextrin (CMCD). J. Contam. Hydrol., 107, 108–113.
  • Sljukic, B., Wildgoose, G. G., Crossley, A., Jones, J. H., Jiang, L., Jones, T. G.J., and Compton, R. G. (2006). The thermodynamics of sequestration of toxic copper(ii) metal ion pollutants from aqueous media by l-cysteine methyl ester modified glassy carbon spheres. J. Mater. Chem., 16, 970–976.
  • Soares, M. R., Casagrande, J. C., and Mouta, E. R. (2011). Nickel adsorption by variable charge soils: Effect of pH and ionic strength. Brazilian Arch. Biol. Technol., 54, 207–220.
  • Solomon, E. I., Sundaram, U. M., and Machonkin, T. E. (1996). Multicopper oxidases and oxygenases. Chem. Rev., 96, 2563–2605.
  • Sóvágó, I., Kállay, C., and Várnagy, K. (2012). Peptides as complexing agents: Factors influencing the structure and thermodynamic stability of peptide complexes. Coord. Chem. Rev., 256, 2225–2233.
  • Stevenson, T. T., McNeil, M., Darvill, A. G., and Albersheim, P. (1986). Structure of plant cell walls, XVIII An analysis of the extracellular polysaccharides of suspension-cultured sycamore cells. Plant Physiol., 80, 1012–1019.
  • Suhas, Carrott, P. J.M., and Ribeiro Carrott, M. M.L. (2007). Lignin - from natural adsorbent to activated carbon: A review. Bioresour. Technol., 98, 2301–2312.
  • Sun, L., and Fugetsu, B. (2014). Graphene oxide captured for green use: Influence on the structures of calcium alginate and macroporous alginic beads and their application to aqueous removal of acridine orange. Chem. Eng. J., 240, 565–573.
  • Sun, X., Yang, L., Li, Q., Zhao, J., Li, X., Wang, X., and Liu, H. (2014). Amino-functionalized magnetic cellulose nanocomposite as adsorbent for removal of Cr(VI): Synthesis and adsorption studies. Chem. Eng. J., 241, 175–183.
  • Sun, X., Zhang, J., Zhang, H., Ni, Y., Zhang, Q., Chen, J., and Guan, Y. (2010). The responses of Arabidopsis thaliana to cadmium exposure explored via metabolite profiling. Chemosphere, 78, 840–845.
  • Tang, S. C.N., and Lo, I. M.C. (2013). Magnetic nanoparticles: Essential factors for sustainable environmental applications. Water Res., 47, 2613–2632.
  • Tang, X., Niu, D., Bi, C., and Shen, B. (2013). Hg2+ adsorption from a low-concentration aqueous solution on chitosan beads modified by combining polyamination with Hg2+- imprinted technologies. Ind. Eng. Chem. Res., 52, 13120–13127.
  • Tekin, K., Uzun, L., Sahin, C. A., Bektas, S., and Denizli, A. (2011). Preparation and characterization of composite cryogels containing imidazole group and use in heavy metal removal. React. Funct. Polym., 71, 985–993.
  • Trzaskowski, B., Adamowicz, L., and Deymier, P. A. (2008). A theoretical study of zinc(II) interactions with amino acid models and peptide fragments. J. Biol. Inorg. Chem., 13, 133–137.
  • Tsao, G. T., Zheng, Y., Lu, J., and Gong, C. S. (1997). Adsorption of heavy metal ions by immobilized phytic acid. Appl. Biochem. Biotechnol., 63–65, 731–741.
  • Vandenbossche, M., Casetta, M., Jimenez, M., Bellayer, S., and Traisnel, M. (2014a). Cysteine-grafted nonwoven geotextile: A new and efficient material for heavy metals sorption - Part A. J. Environ. Manage., 132, 107–112.
  • Vandenbossche, M., Dehaese, A., Casetta, M., Jimenez, M., and Traisnel, M. (2014b). Tyrosine: an efficient natural molecule for copper remediation. Green Mater, DOI: 10.1680/gmat.14.00006.
  • Vandenbossche, M., Jimenez, M., Casetta, M., Bellayer, S., Beaurain, A., Bourbigot, S., and Traisnel, M. (2013). Chitosan-grafted nonwoven geotextile for heavy metals sorption in sediments. React. Funct. Polym., 73, 53–59.
  • Vandenbossche, M., Vezin, H., Touati, N., Jimenez, M., Casetta, M., and Traisnel, M. (2014c). Cysteine-grafted nonwoven geotextile: A new and efficient material for heavy metals sorption – Part B. J. Environ. Manage., 143, 99–105.
  • Vieira, R. S., Oliveira, M. L.M., Guibal, E., Rodríguez-Castellón, E., and Beppu, M. M. (2011). Copper, mercury and chromium adsorption on natural and crosslinked chitosan films: An XPS investigation of mechanism. Colloids Surf., A, 374, 108–114.
  • Vijayaraghavan, K., and Joshi, U. M. (2013). Chicken eggshells remove Pb(II) ions from synthetic wastewater. Environ. Eng. Sci., 30, 67–73.
  • Viswanathan, K., Schofield, M. H., Teraoka, I., and Gross, R. A. (2012). Surprising metal binding properties of phytochelatin-like peptides prepared by protease-catalysis. Green Chem., 14, 1020–1029.
  • Voglar, D., and Lestan, D. (2014). Chelant soil-washing technology for metal-contaminated soil. Environ. Technol., 35, 1389–1400.
  • Vohra, P., Gray, G. A., and Kratzer, F. H. (1965). Phytic acid-metal complexes. Proc. Soc. Exp. Biol. Med., 120, 447–449.
  • Volesky, B. (2001). Detoxification of metal-bearing effluents: biosorption for the next century. Hydrometallurgy, 59, 203–216.
  • Volesky, B. (2007). Biosorption and me. Water Res., 41, 4017–4029.
  • Waldron, K. J., Rutherford, J. C., Ford, D., and Robinson, N. J. (2009). Metalloproteins and metal sensing. Nature, 460, 823–830.
  • Walker, T. R., MacAskill, D., and Weaver, P. (2013). Environmental recovery in Sydney Harbour, Nova Scotia: Evidence of natural and anthropogenic sediment capping. Mar. Pollut. Bull., 74, 446–452.
  • Walkowiak, W., and Kozlowski, C. A. (2009). Macrocycle carriers for separation of metal ions in liquid membrane processes—a review. Desalination, 240, 186–197.
  • Wang, D. X., Abriak, N. E., Zentar, R., and Xu, W. (2012a). Solidification/stabilization of dredged marine sediments for road construction. Environ. Technol., 33, 95–101.
  • Wang, T., Song, Y., and Zhou, B. L. (2012b). Chelating-ultrafiltration treatment of some heavy metal ions in aqueous solutions by crosslinking carboxymethyl modified cornstarch. Water, Air, Soil Pollut., 223, 679–686.
  • Weber, G. (2006). Speciation of palladium in plants: Method development for investigating metabolic changes. Pallad. Emiss. Environ., 2006, 203–213.
  • White, B. R., Stackhouse, B. T., and Holcombe, J. A. (2009). Magnetic γ-Fe2O3 nanoparticles coated with poly-l-cysteine for chelation of As(III), Cu(II), Cd(II), Ni(II), Pb(II) and Zn(II). J. Hazard. Mater., 161, 848–853.
  • Wildgoose, G. G., Leventis, H. C., Davies, I. J., Crossley, A., Lawrence, N. S., Jiang, L., Jones, T. G.J., and Compton, R. G. (2005). Graphite powder derivatised with poly-l-cysteine using “building-block” chemistry-a novel material for the extraction of heavy metal ions. J. Mater. Chem., 15, 2375–2382.
  • Wilkes, A., and Slater, A. (2003). Tencel - versatile, high-performance fiber for nonwovens. Chem. Fibers Int., 53, 412–414.
  • Witus, L. S., and Francis, M. B. (2011). Using synthetically modified proteins to make new materials. Acc. Chem. Res., 4, 774–783.
  • Xiao, L., Wildgoose, G. G., Crossley, A., Knight, R., Jones, J. H., and Compton, R. G. (2006). Removal of toxic metal-ion pollutants from water by using chemically modified carbon powders. Chemistry – An Asian Journal, 1, 614–622.
  • Yadav, S. K. (2010). Heavy metals toxicity in plants: An overview on the role of glutathione and phytochelatins in heavy metal stress tolerance of plants. South African Journal of Botany, 76, 167–179.
  • Yalçin, S. (2014). The mechanism of heavy metal biosorption on green marine macroalga Enteromorpha linza. Clean - Soil, Air, Water, 42, 251–259.
  • Yamauchi, O., Odani, A., and Takani, M. (2002). Metal-amino acid chemistry. Weak interactions and related functions of side chain groups. J. Chem. Soc., Dalton Trans., 3411–3421.
  • Yang, S., Sheng, G., Tan, X., Hu, J., Du, J., Montavon, G., and Wang, X. (2011a). Determination of Ni(II) uptake mechanisms on mordenite surfaces: A combined macroscopic and microscopic approach. Geochim. Cosmochim. Acta, 75, 6520–6534.
  • Yang, T., Zhang, X. X., Chen, M. L., and Wang, J. H. (2012). Highly selective preconcentration of ultra-trace cadmium by yeast surface engineering. Analyst, 137, 4193–4199.
  • Yang, T. C., and Zall, R. R. (1984). Absorption of metals by natural polymers generated from seafood processing wastes. Ind. Eng. Chem. Prod. Res. Dev., 23, 168–172.
  • Yang, Y., Wei, X., Wan, J., and Meng, Z. (2011b). Equilibrium and kinetic characteristic of adsorption of Cu2+, Pb2+ on a novel anionic starch microspheres. Water, Air, Soil Pollut., 219, 103–112.
  • Yu, M., Chu, W., and Wu, Z. (2010). XAFS study of the configuration of L-histidine with Mn2+, Co2+, Ni2+, Cu2+, Zn2+ at pH 6.0. Nucl. Instrum. Methods Phys. Res., Sect. A, 619, 408–410.
  • Yu, S. M., Ren, A. P., Chen, C. L., Chen, Y. X., and Wang, X. (2006). Effect of pH, ionic strength and fulvic acid on the sorption and desorption of cobalt to bentonite. Appl. Radiat. Isot., 64, 455–461.
  • Zaaboub, N., Oueslati, W., Helali, M. A., Abdeljaouad, S., Javier Huertas, F., and Galindo, A. L. (2014). Trace elements in different marine sediment fractions of the gulf of tunis (central mediterranean sea). Chem. Speciation Bioavail., 26, 1–12.
  • Zaitseva, N., Zaitsev, V., and Walcarius, A. (2013). Chromium(VI) removal via reduction–sorption on bi-functional silica adsorbents. J. Hazard. Mater., 250–251, 454–461.
  • Zhang, Y., Li, Q., Sun, L., Tang, R., and Zhai, J. (2010). High efficient removal of mercury from aqueous solution by polyaniline/humic acid nanocomposite. J. Hazard. Mater., 175, 404–409.
  • Zheng, Y., Liu, H., Gurgel, P. V., and Carbonell, R. G. (2010). Polypropylene nonwoven fabrics with conformal grafting of poly(glycidyl methacrylate) for bioseparations. J. Membr. Sci., 364, 362–371.
  • Zhou, J., Wang, L., Wang, J., and Tang, N. (2001). Antioxidative and anti-tumour activities of solid quercetin metal(II) complexes. Transition Met. Chem., 26, 57–63.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.