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Original Articles

Classification and Modelling of Nonextractable Residue (NER) Formation of Xenobiotics in Soil – A Synthesis

, , , &
Pages 2107-2171 | Published online: 08 Aug 2014

REFERENCES

  • Abdelhafid, R., Houot, S., and Barriuso, E. (2000a). How increasing availabilities of carbon and nitrogen affect atrazine behaviour in soils. Biology and Fertility of Soils, 30, 333–340.
  • Abdelhafid, R., Houot, S., and Barriuso, E. (2000b). Dependence of atrazine degradation on C and N availability in adapted and non-adapted soils. Soil Biology & Biochemistry, 32, 389–401.
  • Adam, I. K. U, Rein, A., Miltner, A., da Costa, F. A. C., Trapp, S., Kästner, M. (2014). Experimental results and integrated modelling of bacterial growth on insoluble hydrophobic substrate (phenanthrene). Environmental Science & Technology, in press: http://dx.doi.org/10.1021/es500004z.
  • Adriano, D.C., Bollag, J.-M., Frankenberger, W.T. J., and Sims, R.C. (Eds.). (1999). Bioremediation of contaminated soils (772 pp). Agronomy Monograph. American Society of Agronomy, Madison, WI, USA.
  • Alexander, M. (2000). Aging, bioavailability, and overestimation of risk from environmental pollutants. Environmental Science & Technology, 34, 4259–4265.
  • Allard, B. (2006). A comparative study on the chemical composition of humic acids from forest soil, agricultural soil and lignite deposit – bound lipid, carbohydrate and amino acid distributions. Geoderma, 130, 77–96.
  • Andreu, V., and Pico, Y. (2004). Determination of pesticides and their degradation products in soil: Critical review and comparison of methods. Trac-Trends in Analytical Chemistry, 23, 772–789.
  • Baldock, J.A., Oades, J.M., Vassallo, A.M., and Wilson, M.A. (1989). Incorporation of uniformly labeled C-13-glucose carbon into the organic fraction of a soil – carbon balance and CP MAS C-13 NMR measurements. Australian Journal of Soil Research, 27, 725–746.
  • Baluch, H.U., Somasundaram, L., Kanwar, R.S., and Coats, J.R. (1993). Fate of major degradation products of atrazine in Iowa soils. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 28, 127–149.
  • Barraclough, D., Kearney, T., and Croxford, A. (2005). Bound residues: Environmental solution or future problem? Environmental Pollution, 133, 85–90.
  • Barriuso, E., Benoit, P., and Dubus, I.G. (2008). Formation of pesticide nonextractable (bound) residues in soil: Magnitude, controlling factors and reversibility. Environmental Science & Technology, 42, 1845–1854.
  • Barriuso, E., Houot, S., and SerraWittling, C. (1997). Influence of compost addition to soil on the behaviour of herbicides. Pesticide Science, 49, 65–75.
  • Bas, P., Archimede, H., Rouzeau, A., and Sauvant, D. (2003). Fatty acid composition of mixed-rumen bacteria: Effect of concentration and type of forage. Journal of Dairy Science, 86, 2940–2948.
  • Benoit, P., and Barriuso, E. (1997). Fate of 14C-ring-labeled 2,4-D, 2,4-dichlorophenol and 4-chlorophenol during straw composting. Biology and Fertility of Soils, 25, 53–59.
  • Benoit, P., Barriuso, E., Houot, S., and Calvet, R. (1996). Influence of the nature of soil organic matter on the sorption-desorption of 4-chlorophenol, 2,4-dichlorophenol and the herbicide 2,4-dichlorophenoxyacetic acid (2,4-D). European Journal of Soil Science, 47, 567–578.
  • Berns, A., Vinken, R., Bertmer, M., Breitschwerdt, A., and Schaffer, A. (2005). Use of 15N-depleted artificial compost in bound residue studies. Chemosphere, 59, 649–658.
  • Berns, A.E., Bertmer, M., Schaffer, A., Meier, R.J., Vereecken, H., and Lewandowski, H. (2007). The 15N-CPMAS spectra of simazine and its metabolites: Measurements and quantum chemical calculations. European Journal of Soil Science, 58, 882–888.
  • Berns, A.E., Philipp, H., Narres, H.D., Burauel, P., Vereecken, H., and Tappe, W. (2008). Effect of gamma-sterilization and autoclaving on soil organic matter structure as studied by solid state NMR, UV and fluorescence spectroscopy. European Journal of Soil Science, 59, 540–550.
  • Berry, D.F., and Boyd, S.A. (1985). Decontamination of soil through enhanced formation of bound residues. Environmental Science & Technology, 19, 1132–1133.
  • Blaschette, A. (1974). Allgemeine Chemie, Band I: Atome, Moleküle, Kristalle (246 pp). Frankfurt/Main: Akademische Verlagsgesellschaft.
  • Bogan, B.W., and Sullivan, W.R. (2003). Physicochemical soil parameters affecting sequestration and mycobacterial biodegradation of polycyclic aromatic hydrocarbons in soil. Chemosphere, 52, 1717–1726.
  • Boivin, A., Amellal, S., Schiavon, M., and van Genuchten, M.T. (2005). 2,4-Dichlorophenoxyacetic acid (2,4-D) sorption and degradation dynamics in three agricultural soils. Environmental Pollution, 138, 92–99.
  • Bol, R., Poirier, N., Balesdent, J., and Gleixner, G. (2009). Molecular turnover time of soil organic matter in particle-size fractions of an arable soil. Rapid Communications in Mass Spectrometry, 23, 2551–2558.
  • Bollag, J.M. (1991). Enzymatic binding of pesticide degradation products to soil organic matter and their possible release. ACS Symposium Series, 459, 122–132.
  • Bollag, J.M., and Liu, S.Y. (1990). Biological transformation processes of pesticides. In H.H. Cheng (Ed.), Pesticides in the soil environment: Processes, impacts and modelling (pp. 169–211). Soil Science Society of America: Madison, WI, USA.
  • Bollag, J.M., Dec, J., and Huang, P.M. (1998). Formation mechanisms of complex organic structures in soil habitats. Advances in Agronomy, 63, 237–266.
  • Bollag, J.M., Myers, C.J., and Minard, R.D. (1992). Biological and chemical interactions of pesticides with soil organic-matter. Science of the Total Environment, 123, 205–217.
  • Boschker, H.T. S., and Middelburg, J.J. (2002). Stable isotopes and biomarkers in microbial ecology. Fems Microbiology Ecology, 40, 85–95.
  • Bosma, T.N. P., Middeldorp, P.J. M., Schraa, G., and Zehnder, A.J. B. (1997). Mass transfer limitation of biotransformation: Quantifying bioavailability. Environmental Science & Technology, 31, 248–252.
  • Breitschwerdt, A. (2005). Remobilization of non-exactable simazine resues from soil ( PhD thesis). RWTH: Aachen.
  • Bronick, C.J., and Lal, R. (2005). Soil structure and management: A review. Geoderma, 124, 3–22.
  • Brusseau, M.L., Jessup, R.E., and Rao, P.S. C. (1991). Nonequilibrium sorption of organic chemicals – elucidation of rate-limiting processes. Environmental Science & Technology, 25, 134–142.
  • Bundt, M., Widmer, F., Pesaro, M., Zeyer, J., and Blaser, P. (2001). Preferential flow paths: biological ‘hot spots’ in soils. Soil Biology & Biochemistry, 33, 729–738.
  • Burauel, P., and Führ, F. (2000). Formation and long-term fate of non-extractable residues in outdoor lysimeter studies. Environmental Pollution, 108, 45–52.
  • Button, D.K. (1985). Kinetics of nutrient-limited transport and microbial growth. Microbiological Reviews, 49, 270–297.
  • Calderbank, A. (1989). The occurrence and significance of bound pesticide residues in soil. Reviews of Environmental Contamination and Toxicology, 108, 71–103.
  • Chefetz, B., Tarchitzky, J., Deshmukh, A.P., Hatcher, P.G., and Chen, Y. (2002). Structural characterization of soil organic matter and humic acids in particle-size fractions of an agricultural soil. Soil Science Society of America Journal, 66, 129–141.
  • Christensen, B.T. (2001). Physical fractionation of soil and structural and functional complexity in organic matter turnover. European Journal of Soil Science, 52, 345–353.
  • Coleman, D.C., Reid, C.P. P., and Cole, C.V. (1983). Biological strategies of nutrient cycling in soil systems. Advances in Ecological Research, 13, 1–55.
  • Cornelissen, G., Rigterink, H., Ferdinandy, M.M. A., and Van Noort, P.C. M. (1998a). Rapidly desorbing fractions of PAHs in contaminated sediments as a predictor of the extent of bioremediation. Environmental Science & Technology, 32, 966–970.
  • Cornelissen, G., Van Noort, P.C. M., and Govers, H.A. J. (1998b). Mechanism of slow desorption of organic compounds from sediments: A study using model sorbents. Environmental Science & Technology, 32, 3124–3131.
  • Cornish-Bowden, A. (1995). Fundamentals of enzyme kinetics. Portland Press: London.
  • Craven, A. (2000). Bound residues of organic compounds in the soil: The significance of pesticide persistence in soil and water: A European regulatory view. Environmental Pollution, 108, 15–18.
  • Dec, J., and Bollag, J.M. (1997). Determination of covalent and noncovalent binding interactions between xenobiotic chemicals and soil. Soil Science, 162, 858–874.
  • Dec, J., Haider, K., Benesi, A., Rangaswamy, V., Schaffer, A., Plucken, U., and Bollag, J.M. (1997a). Analysis of soil-bound residues of 13C-labeled fungicide cyprodinil by NMR spectroscopy. Environmental Science & Technology, 31, 1128–1135.
  • Dec, J., Haider, K., Rangaswamy, V., Schaffer, A., Fernandes, E., and Bollag, J.M. (1997b). Formation of soil-bound residues of cyprodinil and their plant uptake. Journal of Agricultural and Food Chemistry, 45, 514–520.
  • Dec, J., Haider, K., Schaffer, A., Fernandes, E., and Bollag, J.M. (1997c). Use of a silylation procedure and 13C-NMR spectroscopy to characterize bound and sequestered residues of cyprodinil in soil. Environmental Science & Technology, 31, 2991–2997.
  • Dong, Z., and Layzell, D.B. (2001). H2 oxidation, O2 uptake and CO2 fixation in hydrogen treated soils. Plant and Soil, 229, 1–12.
  • Doyle, R.C., Kaufman, D.D., and Burt, G.W. (1978). Effect of dairy manure and sewage sludge on 14C-pesticide degradation in soil. Journal of Agricultural and Food Chemistry, 26, 987–989.
  • Edgehill, R.U., and Finn, R.K. (1983). Microbial treatment of soil to remove pentachlorophenol. Applied and Environmental Microbiology, 45, 1122–1125.
  • Ehlers, L.J., and Luthy, R.G. (2003). Contaminant bioavailability in soil and sediment. Environmental Science & Technology, 37, 295a–302a.
  • Ekschmitt, K., Liu, M.Q., Vetter, S., Fox, O., and Wolters, V. (2005). Strategies used by soil biota to overcome soil organic matter stability – why is dead organic matter left over in the soil? Geoderma, 128, 167–176.
  • Eschenbach, A., Wienberg, R., and Mahro, B. (1998). Fate and stability of nonextractable residues of 14C-PAH in contaminated soils under environmental stress conditions. Environmental Science & Technology, 32, 2585–2590.
  • Fabbri, D., Chiavari, G., and Galletti, G.C. (1996). Characterization of soil humin by pyrolysis(/methylation) gas chromatography mass spectrometry: Structural relationships with humic acids. Journal of Analytical and Applied Pyrolysis, 37, 161–172.
  • Feisthauer, S., Wick, L.Y., Kastner, M., Kaschabek, S.R., Schlomann, M., and Richnow, H.H. (2008). Differences of heterotrophic 13CO2 assimilation by Pseudomonas knackmussii strain B13 and Rhodococcus opacus 1CP and potential impact on biomarker stable isotope probing. Environmental Microbiology, 10, 1641–1651.
  • Fogarty, A.M., and Tuovinen, O.H. (1991). Microbiological degradation of pesticides in yard waste composting. Microbiological Reviews, 55, 225–233.
  • Frostegard, A., Tunlid, A., and Baath, E. (2011). Use and misuse of PLFA measurements in soils. Soil Biology & Biochemistry, 43, 1621–1625.
  • Führ, F., Ophoff, H., Burauel, P., Wanner, U., and Haider, K. (1998). Modification of definition of bound residues. In F. Führ and H. Ophoff (Eds.), Pesticide bound residues in soil (pp. 175–176). Wiley-VCH: Weinheim.
  • Gaultier, J., Farenhorst, A., Cathcart, J., and Goddar, T. (2008). Degradation of [carboxyl-14C] 2,4-D and [ring-U-14C] 2,4-D in 114 agricultural soils as affected by soil organic carbon content. Soil Biology & Biochemistry, 40, 217–227.
  • Gavrilescu, M. (2005). Fate of pesticides in the environment and its bioremediation. Engineering in Life Sciences, 5, 497–526.
  • Gerstl, Z., and Kliger, L. (1990). Fractionation of the organic matter in soils and sediments and their contribution to the sorption of pesticides. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 25, 729–741.
  • Gevao, B., Jones, K., Semple, K., Craven, A., and Burauel, P. (2003). Nonextractable pesticide residues in soil. Environmental Science & Technology, 37, 138a–144a.
  • Gevao, B., Jones, K.C., and Semple, K.T. (2005). Formation and release of non-extractable 14C-Dicamba residues in soil under sterile and non-sterile regimes. Environmental Pollution, 133, 17–24.
  • Gevao, B., Semple, K.T., and Jones, K.C. (2000). Bound pesticide residues in soils: A review. Environmental Pollution, 108, 3–14.
  • Girardi, C., Nowak, K.M., Carranza-Diaza, O., Lewkow, B., Miltner, A., Gehre, M., Schäffer, A., and Kästner, M. (2013). Microbial degradation of the pharmaceutical ibuprofen and the herbicide 2,4-D in water and soil – use and limits of data obtained from aqueous systems for predicting their fate in soil. Science of the Total Environment, 445, 377–384.
  • Goebel, M.O., Bachmann, J., Reichstein, M., Janssens, I.A., and Guggenberger, G. (2011). Soil water repellency and its implications for organic matter decomposition – is there a link to extreme climatic events? Global Change Biology, 17, 2640–2656.
  • Grasset, L., Guignard, C., and Ambles, A. (2002). Free and esterified aliphatic carboxylic acids in humin and humic acids from a peat sample as revealed by pyrolysis with tetramethylammonium hydroxide or tetraethylammonium acetate. Organic Geochemistry, 33, 181–188.
  • Green, C.T., and Scow, K.M. (2000). Analysis of phospholipid fatty acids (PLFA) to characterize microbial communities in aquifers. Hydrogeology Journal, 8, 126–141.
  • Haggblom, M.M. (1992). Microbial breakdown of halogenated aromatic pesticides and related compounds. FEMS Microbiology Reviews, 103, 29–72.
  • Haider, K. (1999). Von der toten organischen Substanz zum Humus. Journal of Plant Nutrition and Soil Science, 162, 363–371.
  • Haider, K., and Schäffer, A. (2009). Soil biochemistry (132 pp). Science Publishers: Jersey, Plymouth.
  • Haider, K., Spiteller, M., Dec, J., and Schäffer, A. (2000). Silylation of soil organic matter: Extraction of humic compounds and soil bound residues. In J.M. Bollag and G. Stotzky (Eds.), Soil biochemistry (pp. 139–170). Marcel Dekker: New York.
  • Harmsen, J. (2007). Measuring bioavailability: From a scientific approach to standard methods. Journal of Environmental Quality, 36, 1420–1428.
  • Hatcher, P.G., Bortiatynski, J.M., Minard, R.D., Dec, J., and Bollag, J.M. (1993). Use of high-resolution 13C-NMR to examine the enzymatic covalent binding of 13C-labeled 2,4-dichlorophenol to humic substances. Environmental Science & Technology, 27, 2098–2103.
  • Hatzinger, P.B., and Alexander, M. (1995). Effect of aging of chemicals in soil on their biodegradability and extractability. Environmental Science & Technology, 29, 537–545.
  • Hawthorne, S.B., Grabanski, C.B., Martin, E., and Miller, D.J. (2000). Comparisons of Soxhlet extraction, pressurized liquid extraction, supercritical fluid extraction and subcritical water extraction for environmental solids: recovery, selectivity and effects on sample matrix. Journal of Chromatography A, 892, 421–433.
  • Hayes, M.H. B., MacCarthy, P., Malcom, R.L., and Swift, R.S. (1989). Humic substances II, in search of structure (764 pp). John Wiley & Sons: Chichester.
  • Heise, J., Holtge, S., Schrader, S., and Kreuzig, R. (2006). Chemical and biological characterization of non-extractable sulfonamide residues in soil. Chemosphere, 65, 2352–2357.
  • Hesselsoe, M., Nielsen, J.L., Roslev, P., and Nielsen, P.H. (2005). Isotope labeling and microautoradiography of active heterotrophic bacteria on the basis of assimilation of (CO2)-C-14. Applied and Environmental Microbiology, 71, 646–655.
  • Hsu, T.S., and Bartha, R. (1973). Interaction of pesticide-derived chloroaniline residues with soil organic matter. Soil Science, 116, 444–452.
  • Huang, C.H., and Stone, A.T. (1999). Hydrolysis of naptalam and structurally related amides: Inhibition by dissolved metal ions and metal (hydr)oxide surfaces. Journal of Agricultural and Food Chemistry, 47, 4425–4434.
  • Huang, W.L., Ping, P.A., Yu, Z.Q., and Fu, H.M. (2003). Effects of organic matter heterogeneity on sorption and desorption of organic contaminants by soils and sediments. Applied Geochemistry, 18, 955–972.
  • Jablonowski, N.D., Koeppchen, S., Hofmann, D., Schaeffer, A., and Burauel, P. (2008a). Spatial distribution and characterization of long-term aged 14C-labeled atrazine residues in soil. Journal of Agricultural and Food Chemistry, 56, 9548–9554.
  • Jablonowski, N.D., Koppchen, S., Hofmann, D., Schaffer, A., and Burauel, P. (2009). Persistence of 14C-labeled atrazine and its residues in a field lysimeter soil after 22 years. Environmental Pollution, 157, 2126–2131.
  • Jablonowski, N.D., Linden, A., Köppchen, S., Thiele, B., Hofmann, D., and Burauel, P. (2012a). Dry-wet cycles increase pesticide residue release from soil. Environmental Chemistry, 31, 1941–1947.
  • Jablonowski, N.D., Linden, A., Koppchen, S., Thiele, B., Hofmann, D., Mittelstaedt, W., Putz, T., and Burauel, P. (2012b). Long-term persistence of various 14C-labeled pesticides in soils. Environmental Pollution, 168, 29–36.
  • Jablonowski, N.D., Modler, J., Schaeffer, A., and Burauel, P. (2008b). Bioaccessibility of environmentally aged 14C-atrazine residues in an agriculturally used soil and its particle-size aggregates. Environmental Science & Technology, 42, 5904–5910.
  • Jenkinson, D.S., and Ladd, J.N. (1981). Microbial biomass in soil: Measurement and turnover. In E.A. Paul and J.N. Ladd (Eds.), Soil biochemistry (pp. 415–471). Marcel Dekker: New York.
  • Johnsen, A.R., and Karlson, U. (2005). PAH degradation capacity of soil microbial communities – does it depend on PAH exposure? Microbial Ecology, 50, 488–495.
  • Johnson, M.D., Keinath, T.M., and Weber, W.J. (2001). A distributed reactivity model for sorption by sails and sediments. 14. Characterization and modelling of phenanthrene desorption rates. Environmental Science & Technology, 35, 1688–1695.
  • Jones, D.L. (1999). Amino acid biodegradation and its potential effects on organic nitrogen capture by plants. Soil Biology & Biochemistry, 31, 613–622.
  • Jones, D.L., Healey, J.R., Willett, V.B., Farrar, J.F., and Hodge, A. (2005). Dissolved organic nitrogen uptake by plants – an important N uptake pathway? Soil Biology & Biochemistry, 37, 413–423.
  • Junge, T., Classen, N., Schaffer, A., and Schmidt, B. (2012). Fate of the veterinary antibiotic 14C-difloxacin in soil including simultaneous amendment of pig manure with the focus on non-extractable residues. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 47, 858–868.
  • Junge, T., Meyer, K.C., Ciecielski, K., Adams, A., Schaffer, A., and Schmidt, B. (2011). Characterization of non-extractable 14C- and 13C-sulfadiazine residues in soil including simultaneous amendment of pig manure. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 46, 137–149.
  • Kah, M., and Brown, C.D. (2007). Changes in pesticide adsorption with time at high soil to solution ratios. Chemosphere, 68, 1335–1343.
  • Kästner, M. (2000). “Humification” process of formation of refractory soil organic matter. In H.J. Rehm, G. Reed, A. Pühler, and P. Stadler (Eds.), Biotechnology (pp. 89–125). Wiley-VCH: Weinheim.
  • Kästner, M., and Hofrichter, M. (2001). Biodegradation of humic substances. In A. Steinbüchel and M. Hofrichter (Eds.), Biopolymers Volume 1 – Lignin, humic substances and coal (pp. 350–378). Wiley-VCH: Weinheim.
  • Kästner, M., and Richnow, H.H. (2001). Formation of residues of organic pollutants within the soil matrix – mechanisms and stability. In R. Stegmann, G. Brunner, W. Calmano, and G. Matz (Eds.), Treatment of contaminated soil (pp. 219–251). Berlin: Springer.
  • Kastner, M., Streibich, S., Beyrer, M., Richnow, H.H., and Fritsche, W. (1999). Formation of bound residues during microbial degradation of [14C]anthracene in soil. Applied and Environmental Microbiology, 65, 1834–1842.
  • Katayama, A., Bhula, R., Burns, G.R., Carazo, E., Felsot, A., Hamilton, D., Harris, C., Kim, Y.-H., Kleter, G., Ködel, W., Linders, J., Peijnenburg, J.G. M. W., Sabljic, A., Stephenson, R.G., Racke, D.K., Rubin, B., Tanaka, K., Unsworth, J., and Wauchope, R.D. (2010). Bioavailability of xenobiotics in the soil environment. In D.M. Whitacre (Ed.), Reviews of environmental contamination and toxicology (pp. 1–86). Springer: New York.
  • Kaufmann, D.D., and Blake, J. (1973). Microbial degradation of several acetamide, acylanilide, carbetamide, toluidine and urea pesticides. Soil Microbiology and Biochemistry, 5, 297–308.
  • Kaur, A., Chaudhary, A., Kaur, A., Choudhary, R., and Kaushik, R. (2005). Phospholipid fatty acid – a bioindicator of environment monitoring and assessment in soil ecosystem. Current Science, 89, 1103–1112.
  • Kelleher, B.P., and Simpson, A.J. (2006). Humic substances in soils: Are they really chemically distinct? Environmental Science & Technology, 40, 4605–4611.
  • Kelsey, J.W., Kottler, B.D., and Alexander, M. (1997). Selective chemical extractants to predict bioavailability of soil-aged organic chemicals. Environmental Science & Technology, 31, 214–217.
  • Khan, S.U. (1991). Bound residues. In R. Grover and A.J. Cessna (Eds.), Environmental chemistry of herbicides (pp. 265–279). CRC Press: Boca Raton, FL, USA.
  • Khan, S.U., and Dupont, S. (1987). Bound pesticide residues and their bioavailability. In R. Greenhalgh and T.R. Roberts (Eds.), Pesticide science and technology (pp. 417–420). Blackwell Scientific Publications: Oxford.
  • Khan, S.U., and Ivarson, K.C. (1981). Microbiological release of unextracted (bound) residues from an organic soil treated with prometryn. Journal of Agricultural and Food Chemistry, 29, 1301–1303.
  • Kindler, R., Miltner, A., Richnow, H.H., and Kastner, M. (2006). Fate of gram-negative bacterial biomass in soil – mineralization and contribution to SOM. Soil Biology & Biochemistry, 38, 2860–2870.
  • Kindler, R., Miltner, A., Thullner, M., Richnow, H.H., and Kastner, M. (2009). Fate of bacterial biomass derived fatty acids in soil and their contribution to soil organic matter. Organic Geochemistry, 40, 29–37.
  • Klausmeyer, T. (2011). Effect of microorganisms and organo-clay complexes on the formation of non-extractable residues of 14C-nonylphenol and 14C-MCPA in soil (PhD thesis). RWTH: Aachen.
  • Kleber, M., Jian-Ping, H., and Stahr, K. (1998). Microbial biomass C- and N-dynamics in grassland soils amended with liquid manure. Zeitschrift Fur Pflanzenernahrung Und Bodenkunde, 161, 87–92.
  • Kleber, M., Sollins, P., and Sutton, R. (2007). A conceptual model of organo-mineral interactions in soils: Self-assembly of organic molecular fragments into zonal structures on mineral surfaces. Biogeochemistry, 85, 9–24.
  • Koch, A.L. (1990). Diffusion. The crucial process in many aspects of the biology of bacteria. Advances in Microbial Ecology, 11, 37–70.
  • Kögel-Knabner, I. (2002). The macromolecular organic composition of plant and microbial residues as inputs to soil organic matter. Soil Biology & Biochemistry, 34, 139–162.
  • Kramer, R.W., Kujawinsku, E.B., Zang, X., Green-Church, K.B., Jones, R.B., Freitas, M.A., and Hatcher, P.G. (2001). Studies of the structure of humic substances by electrospray ionization coupled to a quadrupole-time of flight (Qq-TOF) mass spectrometer. In E.A. Ghabbour and G. Davies (Eds.), Humic substances: Structures, models and functions (pp. 95–107). Royal Society of Chemistry: Cambridge.
  • Krebs, H.A. (1941). Carbon dioxide assimilation in heterotrophic organisms. Nature, 147, 560–563.
  • Kronimus, A., Schwarzbauer, J., and Ricking, M. (2006). Analysis of non-extractable DDT-related compounds in riverine sediments of the Teltow Canal, Berlin, by pyrolysis and thermochemolysis. Environmental Science & Technology, 40, 5882–5890.
  • Kubiak, R., Führ, F., and Mittelstaedt, W. (1990). Comparative studies on the formation of bound residues in soil in outdoor and laboratory experiments. International Journal of Environmental Analytical Chemistry, 39, 47–57.
  • Lamshoft, M., Sukul, P., Zuhlke, S. and Spiteller, M. (2010). Behaviour of C-14-sulfadiazine and C-14-difloxacin during manure storage. Science of the Total Environment, 408, 1563–1568.
  • Lerch, T.Z., Dignac, M.F., Nunan, N., Bardoux, G., Barriuso, E., and Mariotti, A. (2009a). Dynamics of soil microbial populations involved in 2,4-D biodegradation revealed by FAME-based Stable Isotope Probing. Soil Biology & Biochemistry, 41, 77–85.
  • Lerch, T.Z., Dignac, M.F., Nunan, N., Barriuso, E., and Mariotti, A. (2009b). Ageing processes and soil microbial community effects on the biodegradation of soil 13C-2,4-D nonextractable residues. Environmental Pollution, 157, 2985–2993.
  • Liste, H.H., and Alexander, M. (2002). Butanol extraction to predict bioavailability of PAHs in soil. Chemosphere, 46, 1011–1017.
  • Loiseau, L., and Barriuso, E. (2002). Characterization of the atrazine's bound (nonextractable) residues using fractionation techniques for soil organic matter. Environmental Science & Technology, 36, 683–689.
  • Loos, M., Krauss, M., and Fenner, K. (2012). Pesticide nonextractable residue formation in soil: Insights from inverse modelling of degradation time series. Environmental Science & Technology, 46, 9830–9837.
  • Macalady, D.L., Tratnyek, P.G., and Wolfe, N.L. (1989). Influences of natural organic matter on the abiotic hydrolysis of organic contaminants in aqueous systems. ACS Symposium Series, 219, 323–332.
  • Madigan, M.T., Martinki, J., and Parker, J. (2011). Biology of microorganisms (international student ed.). Pearson: San Francisco, CA, USA.
  • Maia, C.M. B. F., Piccolo, A., and Mangrich, A.S. (2008). Molecular size distribution of compost-derived humates as a function of concentration and different counterions. Chemosphere, 73, 1162–1166.
  • Marchal, G., Smith, K.E. C., Rein, A., Winding, A., Trapp, S., and Karlson, U.G. (2012). Comparing the desorption and biodegradation of low concentrations of phenanthrene sorbed to activated carbon, biochar and compost. Chemosphere, 90, 1767–1778.
  • Marschner, B., Brodowski, S., Dreves, A., Gleixner, G., Gude, A., Grootes, P.M., Hamer, U., Heim, A., Jandl, G., Ji, R., Kaiser, K., Kalbitz, K., Kramer, C., Leinweber, P., Rethemeyer, J., Schaeffer, A., Schmidt, M.W. I., Schwark, L., and Wiesenberg, G.L. B. (2008). How relevant is recalcitrance for the stabilization of organic matter in soils? Journal of Plant Nutrition and Soil Science, 171, 91–110.
  • Martins, M.R., Angers, D.A., and Cora, J.E. (2012). Co-accumulation of microbial residues and particulate organic matter in the surface layer of a no-till Oxisol under different crops. Soil Biology & Biochemistry, 50, 208–213.
  • Matthies, M., Witt, J., and Klasmeier, J. (2008). Determination of soil biodegradation half-lives from simulation testing under aerobic laboratory conditions: A kinetic model approach. Environmental Pollution, 156, 99–105.
  • Mayer, P., Fernqvist, M.M., Christensen, P.S., Karlson, U., and Trapp, S. (2007). Enhanced diffusion of polycyclic aromatic hydrocarhons in artificial and natural aqueous solutions. Environmental Science & Technology, 41, 6148–6155.
  • Michal, G. (1999). Biochemical pathways. Spektrum Akademischer Verlag GmbH: Heidelberg.
  • Miltner, A., Bombach, P., Schmidt-Brücken, B., and Kästner, M. (2012). SOM genesis: Microbial biomass a significant source. Biogeochemistry, 111, 41–55.
  • Miltner, A., Kindler, R., Knicker, H., Richnow, H.H., and Kastner, M. (2009). Fate of microbial biomass-derived amino acids in soil and their contribution to soil organic matter. Organic Geochemistry, 40, 978–985.
  • Miltner, A., Kopinke, F.D., Kindler, R., Selesi, D.E., Hartmann, A., and Kastner, M. (2005). Non-phototrophic CO2 fixation by soil microorganisms. Plant and Soil, 269, 193–203.
  • Miltner, A., Richnow, H.H., Kopinke, F.D., and Kastner, M. (2004). Assimilation of CO2 by soil microorganisms and transformation into soil organic matter. Organic Geochemistry, 35, 1015–1024.
  • Miltner, A., and Zech, W. (1998). Beech leaf litter lignin degradation and transformation as influenced by mineral phases. Organic Geochemistry, 28, 457–463.
  • Mordaunt, C.J., Gevao, B., Jones, K.C., and Semple, K.T. (2005). Formation of non-extractable pesticide residues: Observations on compound differences, measurement and regulatory issues. Environmental Pollution, 133, 25–34.
  • Mortland, M.M. (1986). Mechanisms of adsorption of non-humic organic species by clays. In W.L. Huang and M. Schnitzer (Eds.), Interaction of soil minerals with natural organics and microbes (pp. 59–75). SSSA special publication: Madison, WI, USA.
  • Mugo, S.M., and Bottaro, C.S. (2004). Characterization of humic substances by matrix-assisted laser desorption/ionization time-of-flight mass spectrometry. Rapid Communications in Mass Spectrometry, 18, 2375–2382.
  • Muller, K., Magesan, G.N., and Bolan, N.S. (2007). A critical review of the influence of effluent irrigation on the fate of pesticides in soil. Agriculture Ecosystems & Environment, 120, 93–116.
  • Nebbioso, A., and Piccolo, A. (2012). Advances in humeomics: Enhanced structural identification of humic molecules after size fractionation of a soil humic acid. Analytica Chimica Acta, 720, 77–90.
  • Neilson, A.H., Allard, A.S., Hynning, P.A., and Remberger, M. (1991). Distribution, fate and persistence of organochlorine compounds formed during production of bleached pulp. Toxicological and Environmental Chemistry, 30, 3–41.
  • Noordkamp, E.R., Grotenhuis, J.T. C., and Rulkens, W.H. (1997). Selection of an efficient extraction method for the determination of polycyclic aromatic hydrocarbons in contaminated soil and sediment. Chemosphere, 35, 1907–1917.
  • Northcott, G.L., and Jones, K.C. (2000). Experimental approaches and analytical techniques for determining organic compound bound residues in soil and sediment. Environmental Pollution, 108, 19–43.
  • Nowak, K.M., Girardi, C., Miltner, A., Gehre, M., Schäffer, A., and Kästner, M. (2013). Contribution of microorganisms to non-xtractable residue formation during biodegradation of ibuprofen in soil. Science of the Total Environment, 445–446, 377–384.
  • Nowak, K.M., Miltner, A., Gehre, M., Schaffer, A., and Kastner, M. (2011). Formation and fate of bound residues from microbial biomass during 2,4-D degradation in soil. Environmental Science & Technology, 45, 999–1006.
  • NRC (National Research Council). (2002). Bioavailability of contaminants in soils and sediments: Processes, tools and applications. National Academic Press: Washington, DC.
  • Oades, J.M. (1995). An overview of processes affecting the cycling of organic carbon in soils. Wiley: New York.
  • Or, D., Smets, B.F., Wraith, J.M., Dechesne, A., and Friedman, S.P. (2007). Physical constraints affecting bacterial habitats and activity in unsaturated porous media – a review. Advances in Water Resources, 30, 1505–1527.
  • Palomo, M., and Bhandari, A. (2005). Time-dependent sorption-desorption behavior of 2,4-dichlorophenol and its polymerization products in surface soils. Environmental Science & Technology, 39, 2143–2151.
  • Palomo, M., and Bhandari, A. (2006). Impact of aging on the formation of bound residues after peroxidase-mediated treatment of 2,4-DCP contaminated soils. Environmental Science & Technology, 40, 3402–3408.
  • Paul, E.A., and Clark, F.E. (1996). Soil microbiology and biochemistry. Academic Press: San Diego, CA, USA.
  • Pelz, O., Cifuentes, L.A., Hammer, B.T., Kelley, C.A., and Coffin, R.B. (1998). Tracing the assimilation of organic compounds using δ13C analysis of unique amino acids in the bacterial peptidoglycan cell wall. FEMS Microbiology Ecology, 25, 229–240.
  • Piccolo, A., Conte, P., Cozzolino, A., and Paci, M. (2001). Combined effects of an oxidative enzyme and dissolved humic substances on 13C-labelled 2,4-D herbicide as revealed by high-resolution C-13 NMR spectroscopy. Journal of Industrial Microbiology & Biotechnology, 26, 70–76.
  • Pignatello, J.J. (1989). Sorption dynamics of organic compounds in soils and sediments. In B.L. Sawhney and B.K. Brown (Eds.), Reactions and movements of organic chemicals in soil (pp. 45–79). SSSA and ASA Publisher: Madison, WI, USA.
  • Pignatello, J.J., and Xing, B.S. (1996). Mechanisms of slow sorption of organic chemicals to natural particles. Environmental Science & Technology, 30, 1–11.
  • Potts, M. (1994). Desiccation tolerance of prokaryotes. Microbiological Reviews, 58, 755–805.
  • Printz, H., Burauel, P., and Führ, F. (1995). Effect of organic amendment on degradation and formation of bound residues of methabenzthiazuron in soil under constant climatic conditions. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 30, 435–456.
  • Racke, K.D., and Lichtenstein, E.P. (1985). Effects of soil microorganisms on the release of bound 14C residues from soils previously treated with [14C] parathion. Journal of Agricultural and Food Chemistry, 33, 938–943.
  • Reichenberg, F., and Mayer, P. (2006). Two complementary sides of bioavailability: Accessibility and chemical activity of organic contaminants in sediments and soils. Environmental Toxicology and Chemistry, 25, 1239–1245.
  • Reid, B.J., Jones, K.C., and Semple, K.T. (2000). Bioavailability of persistent organic pollutants in soils and sediments – a perspective on mechanisms, consequences and assessment. Environmental Pollution, 108, 103–112.
  • Rice, P.J., Anderson, T.A., and Coats, J.R. (2002). Degradation and persistence of metolachlor in soil: Effects of concentration, soil moisture, soil depth, and sterilization. Environmental Toxicology and Chemistry, 21, 2640–2648.
  • Richnow, H.H., Annweiler, E., Koning, M., Luth, J.C., Stegmann, R., Garms, C., Francke, W., and Michaelis, W. (2000). Tracing the transformation of labelled [1-13C]phenanthrene in a soil bioreactor. Environmental Pollution, 108, 91–101.
  • Richnow, H.H., Eschenbach, A., Mahro, B., Kastner, M., Annweiler, E., Seifert, R., and Michaelis, W. (1999). Formation of nonextractable soil residues: A stable isotope approach. Environmental Science & Technology, 33, 3761–3767.
  • Richnow, H.H., Eschenbach, A., Mahro, B., Seifert, R., Wehrung, P., Albrecht, P., and Michaelis, W. (1998). The use of 13C-labelled polycyclic aromatic hydrocarbons for the analysis of their transformation in soil. Chemosphere, 36, 2211–2224.
  • Richnow, H.H., Seifert, R., Hefter, J., Kastner, M., Mahro, B., and Michaelis, W. (1994). Metabolites of xenobiotica and mineral oil constituents linked to macromolecular organic matter in polluted environments. Organic Geochemistry, 22, 671–681.
  • Richnow, H.H., Seifert, R., Hefter, J., Link, M., Francke, W., Schaefer, G., and Michaelis, W. (1997). Organic pollutants associated with macromolecular soil organic matter: Mode of binding. Organic Geochemistry, 26, 745–758.
  • Riefer, P., Klausmeyer, T., Adams, A., Schmidt, B., Schaeffer, A., and Schwarzbauer, J. (2003). Incorporation mode of a branched nonylphenol isomer in soil derived organo-clay complexes during a 180-d incubation. Environmental Science & Technology. 47, 7155–7162.
  • Riefer, P. (2011). Influence of microbial products on the structure-chemistry and chemodynamics of covalenty immobilised residues of xenobiotics in soil derived organo-clay complexes. RWTH: Aachen.
  • Riefer, P., Klausmeyer, T., Schaffer, A., Schwarzbauer, J., and Schmidt, B. (2011a). Distribution, fate and formation of non-extractable residues of a nonylphenol isomer in soil with special emphasis on soil derived organo-clay complexes. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 46, 394–403.
  • Riefer, P., Klausmeyer, T., Schwarzbauer, J., Schaffer, A., Schmidt, B., and Corvini, P.F. X. (2011b). Rapid incorporation and short-term distribution of a nonylphenol isomer and the herbicide MCPA in soil-derived organo-clay complexes. Environmental Chemistry Letters, 9, 411–415.
  • Riefer, P., Schwarzbauer, J., Schäffer, A., Klausmeyer, T., and Schmidt, B. (2011c). First evidence for a stereoselective incorporation of nonylphenol diastereomers in soil-derived organo-clay complexes. Environmental Chemistry Letters, 9, 293–299.
  • Rillig, M.C., Caldwell, B.A., Wosten, H.A. B., and Sollins, P. (2007). Role of proteins in soil carbon and nitrogen storage: Controls on persistence. Biogeochemistry, 85, 25–44.
  • Rippen, G. (1990). Handbuch Umweltchemikalien – Stoffdaten – Prüfverfahren – Vorschriften. Landsberg am Lech: ecomed Verlagsgesellschaft.
  • Roberts, T.R. (1984). Non-extractable pesticide residues in soils and plants. Pure and Applied Chemistry, 56, 945–956.
  • Robertson, B.K., and Alexander, M. (1998). Sequestration of DDT and dieldrin in soil: Disappearance of acute toxicity but not the compounds. Environmental Toxicology and Chemistry, 17, 1034–1038.
  • Santruckova, H., Bird, M.I., Elhottova, D., Novak, J., Picek, T., Simek, M., and Tykva, R. (2005). Heterotrophic fixation of CO2 in soil. Microbial Ecology, 49, 218–225.
  • Schaeffer, A., Hollert, H., Ratte, H.T., Ross-Nickoll, M., Filser, J., Matthies, M., Oehlmann, J., Scheringer, M., Schulz, R., and Seitz, A. (2009). An indispensable asset at risk: Merits and needs of chemicals-related environmental sciences. Environmental Science and Pollution Research, 16, 410–413.
  • Schaumann, G.E., and Bertmer, M. (2008). Do water molecules bridge soil organic matter molecule segments? European Journal of Soil Science, 59, 423–429.
  • Schiavon, M. (1988). Studies of the movement and the formation of bound residues of atrazine, of its chlorinated derivatives, and of hydroxyatrazine in soil using 14C-ring-labeled compounds under outdoor conditions. Ecotoxicology and Environmental Safety, 15, 55–61.
  • Schmidt, B., Ebert, J., Lamshoft, M., Thiede, B., Schumacher-Buffel, R., Ji, R., Corvini, P.F. X., and Schaffer, A. (2008). Fate in soil of C-14-sulfadiazine residues contained in the manure of young pigs treated with a veterinary antibiotic. Journal of Environmental Science and Health Part B-Pesticides Food Contaminants and Agricultural Wastes, 43, 8–20.
  • Schmidt, S.K., and Alexander, M. (1985). Predicting threshold concentrations of organic substrates for bacterial growth. Journal of Theoretical Biology, 114, 1–8.
  • Schnitzer, M. (1978). Humic substances: Chemistry and reactions. In M. Schnitzer and S.U. Khan (Eds.), Soil organic matter. Elsevier: Amsterdam.
  • Schnitzer, M.A. (2000). Lifetime perspective on the chemistry of soil organic matter. In D.L. Sparks (Ed.), Advances in agronomy (pp. 1–58). Academic Press: San Diego, CA, USA.
  • Scholes, M.C., Powlson, D., and Tian, G.L. (1997). Input control of organic matter dynamics. Geoderma, 79, 25–47.
  • Scholes, R.J., and Scholes, M.C. (1995). The effect of land use on nonliving organic matter in the soil. In R.G. Zepp and C. Sonntag (Eds.), Role of nonliving organic matter in the earth's carbon cycle (pp. 209–226). John Wiley & Sons: Chichester.
  • Schulten, H.R. (1999). Analytical pyrolysis and computational chemistry of aquatic humic substances and dissolved organic matter. Journal of Analytical and Applied Pyrolysis, 49, 385–415.
  • Schulze, E.D., and Freibauer, A. (2005). Environmental science – carbon unlocked from soils. Nature, 437, 205–206.
  • Schurig, C., Smittenberg, R., Berger, J., Kraft, F., Woche, S., Goebel, M.O., Heipieper, H.J., Miltner, A., and Kästner, M. (2012). Microbial cell-envelope fragments and the formation of soil oragnic matter – a case study from a glacier forefield. Biogeochemistry, 113, 595–612.
  • Semple, K.T., Doick, K.J., Jones, K.C., Burauel, P., Craven, A., and Harms, H. (2004). Defining bioavailability and bioaccessibility of contaminated soil and sediment is complicated. Environmental Science & Technology, 38, 228a–231a.
  • Semple, K.T., Doick, K.J., Wick, L.Y., and Harms, H. (2007). Microbial interactions with organic contaminants in soil: Definitions, processes and measurement. Environmental Pollution, 150, 166–176.
  • Semple, K.T., Morriss, A.W. J., and Paton, G.I. (2003). Bioavailability of hydrophobic organic contaminants in soils: Fundamental concepts and techniques for analysis. European Journal of Soil Science, 54, 809–818.
  • Senesi, N. (1992). Binding mechanisms of pesticides to soil humic substances. Science of the Total Environment, 123, 63–76.
  • Senesi, N., and Chen, Y. (1989). Interactions of toxic chemicals with humic substances. In Z. Gerstl, Y. Chen, and U. Mingelgrin (Eds.), Tooxic organic chemicals in porous media (pp. 37–90). Springer-Verlag: Berlin.
  • Shaw, L.J., Beaton, Y., Glover, L.A., Killham, K., and Meharg, A.A. (1999). Re-inoculation of autoclaved soil as a non-sterile treatment for xenobiotic sorption and biodegradation studies. Applied Soil Ecology, 11, 217–226.
  • Shchegolikhina, A., Schulz, S., and Marschner, B. (2012). Interacting effects of cation saturation and drying, freezing, or aging on the extractability of nonylphenol and phenanthrene from a sandy soil. Journal of Soils and Sediments, 12, 1280–1291.
  • Simpson, A.J., Simpson, M.J., Smith, E., and Kelleher, B.P. (2007). Microbially derived inputs to soil organic matter: Are current estimates too low? Environmental Science & Technology, 41, 8070–8076.
  • Sims, J.L., Sims, R.C., and Matthews, J.E. (1990). Approach to bioremediation of contaminated soil. Hazardous Waste & Hazardous Materials, 7, 117–149.
  • Smolen, J.M., and Stone, A.T. (1998). Metal (hydr)oxide surface catalyzed hydrolysis of chlorpyrifos-methyl, chlorpyrifos-methyl oxon, and paraoxon. Soil Science Society of America Journal, 62, 636–643.
  • Sollins, P., Homann, P., and Caldwell, B.A. (1996). Stabilization and destabilization of soil organic matter: Mechanisms and controls. Geoderma, 74, 65–105.
  • Stein, S., Selesi, D., Schilling, R., Pattis, I., Schmid, M., and Hartmann, A. (2005). Microbial activity and bacterial composition of H2-treated soils with net CO2 fixation. Soil Biology & Biochemistry, 37, 1938–1945.
  • Stenson, A.C., Landing, W.M., Marshall, A.G., and Cooper, W.T. (2002). Ionization and fragmentation of humic substances in electrospray ionization Fourier transform-ion cyclotron resonance mass spectrometry. Analytical Chemistry, 74, 4397–4409.
  • Stevenson, F.J. (1982). Methods of soil analysis, Part 2. Chemical and microbiological properties. In A.L. Page (Ed.), Agronomy: A series of monographs (pp. XXIV+1159P). American Society of Agronomy, Soil Science of America: Madison, WI, USA.
  • Stevenson, F.J. (1994). Humus chemistry: Genesis, composition, reaction. John Wiley & Sons: New York.
  • Stokes, J.D., Paton, G.I., and Semple, K.T. (2005). Behaviour and assessment of bioavailability of organic contaminants in soil: Relevance for risk assessment and remediation. Soil Use and Management, 21, 475–486.
  • Stolpe, N.B., and Shea, P.J. (1995). Alachlor and atrazine degradation in a Nebraska soil and underlying sediments. Soil Science, 160, 359–370.
  • Stott, D.E., Kassim, G., Jarrell, W.M., Martin, J.P., and Haider, K. (1983). Stabilization and incorporation into biomass of specific plant carbons during biodegradation in soil. Plant and Soil, 70, 15–26.
  • Struthers, J.K., Jayachandran, K., and Moorman, T.B. (1998). Biodegradation of atrazine by Agrobacterium radiobacter J14a and use of this strain in bioremediation of contaminated soil. Applied and Environmental Microbiology, 64, 3368–3375.
  • Styrishave, B., Mortensen, M., Krogh, P.H., Andersen, O., and Jensen, J. (2008). Solid-phase microextraction (SPME) as a tool to predict the bioavailability and toxicity of pyrene to the springtail, Folsomia candida, under various soil conditions. Environmental Science & Technology, 42, 1332–1336.
  • Sutton, R., and Sposito, G. (2005). Molecular structure in soil humic substances: The new view. Environmental Science & Technology, 39, 9009–9015.
  • ter Laak, T.L., ter Bekke, M.A., and Hermens, J.L. M. (2009). Dissolved organic matter enhances transport of PAHs to aquatic organisms. Environmental Science & Technology, 43, 7212–7217.
  • Theng, B.K. G. (1982). Clay-activated organic interactions. In H. van Olphen and F. Veniale (Eds.), Developments in sedimentology (pp. 197–238). Elsevier: Amsterdam.
  • Tisdall, J.M. (1996). Formation of soil aggregates and accumulation of soil organic matter. In M.R. Carter and B.A. Stewart (Eds.), Structure and organic matter storage in agricultural soils (pp. 57–96). CRC Press: Boca Raton, FL, USA.
  • Trapp, S. (2012). Predictive model for PAH degradation and residue formation related to bioavailability. Retrieved from http://homepage.env.dtu.dk/stt/
  • Trapp, S., Franco, A., and Mackay, D. (2010). Activity-Based concept for transport and partitioning of ionizing organics. Environmental Science & Technology, 44, 6123–6129.
  • Trapp, S., Ücisik, A.S., DelChicca Romano, P., and Larsen, M. (2007). The role of plants and bacteria in phytoremediation – kinetic aspects. In H.J. Heipieper (Ed.), Bioremediation of soils contaminated with aromatic compounds (pp. 41–49). NATO Sciences Series, IV Earth and Environmenal Sciences. Springer: Dordrecht.
  • Tuxen, N., De Liptay, J.R., Albrechtsen, H.-J., Aamand, J., and Bjerg, P.L. (2002). Effect of exposure history on microbial herbicide degradation in an aerobic aquifer affected by a point source. Environmental Science & Technology, 36, 2205–2212.
  • Uyttebroek, M., Ortega-Calvo, J.J., Breugelmans, P., and Springael, D. (2006). Comparison of mineralization of solid-sorbed phenanthrene by polycyclic aromatic hydrocarbon (PAH)-degrading Mycobacterium spp. and Sphingomonas spp. Applied Microbiology and Biotechnology, 72, 829–836.
  • van Hamme, J.D. (2004). Bioavailability and biodegradation of organic pollutants – a microbial perspective. In A. Singh and O.P. Ward (Eds.), Soil biology, volume 2: Biodegradation and bioremediation (pp. 37–56). Springer Verlag: Berlin.
  • van Uden, N. (1967). Transport-limited growth in the chemostat and its competitive inhibition: A theoretical treatment. Archiv für Mikrobiologie, 58, 145–154.
  • Verstraete, W. and Devliegher, W. (1996). Formation of non-bioavailable organic residues in soil: Perspectives for site remediation. Biodegradation, 7, 471–485.
  • Vestal, J.R., and White, D.C. (1989). Lipid analysis in microbial ecology – quantitative approaches to the study of microbial communities. Bioscience, 39, 535–541.
  • Vinther, F.P., Eiland, F., Lind, A.M., and Elsgaard, L. (1999). Microbial biomass and numbers of denitrifiers related to macropore channels in agricultural and forest soils. Soil Biology & Biochemistry, 31, 603–611.
  • Volkering, F., Breure, A.M., Sterkenburg, A., and Vanandel, J.G. (1992). Microbial degradation of polycyclic aromatic hydrocarbons – effect of substrate availability on bacterial growth kinetics. Applied Microbiology and Biotechnology, 36, 548–552.
  • von Luetzow, M., Kögel-Knabner, I., Ludwig, B., Matzner, E., Flessa H., Ekschmitt, K., Guggenberger, G., Marschner, B., and Kalbitz, K. (2008). Stabilization mechanisms of organic matter in four temperate soils: Development and application of a conceptual model. Journal of Plant Nutrition and Soil Science, 171, 111–124.
  • Wais, A. (1998). Non-extractable residues of organic xenobiotics in soils – a review. In F. Führ and H. Ophoff (Eds.), Pesticide bound residues in soil (pp. 5–17). Wiley-VCH: Weinheim.
  • Waldman, M., and Shevah, Y. (1993). Biodegradation and leaching of pollutants – monitoring aspects. Pure and Applied Chemistry, 65, 1595–1603.
  • Warren, N., Allan, I.J., Carter, J.E., House, W.A., and Parker, A. (2003). Pesticides and other micro-organic contaminants in freshwater sedimentary environments – a review. Applied Geochemistry, 18, 159–194.
  • Weber, W.J., and Huang, W.L. (1996). A distributed reactivity model for sorption by soils and sediments.4. Intraparticle heterogeneity and phase-distribution relationships under nonequilibrium conditions. Environmental Science & Technology, 30, 881–888.
  • Weiss, M., Geyer, R., Gunther, T., and Kaestner, M. (2004a). Fate and stability of 14C-labeled 2,4,6-trinitrotoluene in contaminated soil following microbial bioremediation processes. Environmental Toxicology and Chemistry, 23, 2049–2060.
  • Weiss, M., Geyer, R., Russow, R., Richnow, H.H., and Kastner, M. (2004b). Fate and metabolism of [15N]2,4,6-trinitrotoluene in soil. Environmental Toxicology and Chemistry, 23, 1852–1860.
  • White, J.L. (1976). Clay-pesticide interaction. In D.D. Kaufmann, G.G. Still, G.D. Paulson, and S.K. Bandal (Eds.), Bound and conjugated pesticide residues (pp. 208–218). ACS Symposium, Oxford University Press: Oxford, UK.
  • Wick, L.Y., Colangelo, T., and Harms, H. (2001). Kinetics of mass transfer-limited bacterial growth on solid PAHs. Environmental Science & Technology, 35, 354–361.
  • Wolfe, N.L., Mingelgrin, U., and Miller, G.C. (1990). Abiotic transformations in water sediments and soil. In H.H. Cheng (Ed.), Pesticides in the soil environment: Processes, impacts, and modelling (pp. XXIII+530P). . SSSA Book Series No. 2. Soil Science Society of America: Madison, WI, USA.
  • Wollenweber, J., Schwarzbauer, J., Littke, R., Wilkes, H., Armstroff, A., and Horsfield, B. (2006). Characterisation of non-extractable macromolecular organic matter in Palaeozoic coals. Palaeogeography, Palaeoclimatology, Palaeoecology, 240, 275–304.
  • Xu, F.X., and Bhandari, A. (2003a). Retention and distribution of 1-naphthol and naphthol polymerization products on surface soils. Journal of Environmental Engineering–ASCE, 129, 1041–1050.
  • Xu, F.X., and Bhandari, A. (2003b). Retention and extractability of phenol, cresol, and dichlorophenol exposed to two surface soils in the presence of horseradish peroxidase enzyme. Journal of Agricultural and Food Chemistry, 51, 183–188.
  • Yaron, B., Dror, I., and Berkowitz, B. (2010). Contaminant geochemistry-a new perspective. Naturwissenschaften, 97, 1–17.
  • Yee, D., Weinberger, P., and Khan, S.U. (1985). Release of soil-bound prometryne residues under different Soil-pH and nitrogen fertilizer regimes. Weed Science, 33, 882–887.
  • Zech, W., Senesi, N., Guggenberger, G., Kaiser, K., Lehmann, J., Miano, T.M., Miltner, A., and Schroth, G. (1997). Factors controlling humification and mineralization of soil organic matter in the tropics. Geoderma, 79, 117–161.
  • Zelles, L. (1999). Fatty acid patterns of phospholipids and lipopolysaccharides in the characterisation of microbial communities in soil: A review. Biology and Fertility of Soils, 29, 111–129.
  • Zepp, R.G., Baughman, G.L., and Schlotzhauer, P.F. (1981a). Comparison of photochemical behavior of various humic substances in water. 2. Photosensitized oxygenations. Chemosphere, 10, 119–126.
  • Zepp, R.G., Baughman, G.L., and Schlotzhauer, P.F. (1981b). Comparison of photochemical behavior of various humic substances in water. 1. Sunlight induced reactions of aquatic pollutants photosensitized by humic substances. Chemosphere, 10, 109–117.
  • Ziechmann, W. (1994). Humic substances (225 pp). Bibliographisches Institut Wissenschaftsverlag: Mannheim.
  • Zielke, R.C., Pinnavaia, T.J. and Mortland, M.M. (1989). Adsorption reactions of selected organic moleculares on clay mineral surface. In B.L. Sawhney and B.K. Brown (Eds.), Reactions and movement of organic chemicals in soils (pp. 81–97). SSSA Special Publication: Madison, WI, USA.
  • Zunino, H., Borie, F., Aguilera, S., Martin, J.P., and Haider, K. (1982). Decomposition of C-14-labeled glucose, plant and microbial products and phenols in volcanic ash-derived soils of Chile. Soil Biology & Biochemistry, 14, 37–43.

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