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ARTICLE

Interaction between soil water saturation and toxic element accumulation in woody plants (Freiberg region, Germany)

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References

  • Zandalinas, S.I., Fritschi, F.B. and Mittler, R., 2021, Global warming, climate change, and environmental pollution: Recipe for a multifactorial stress combination disaster. Trends in Plant Science 26(6), 588–599. doi: 10.1016/j.tplants.2021.02.011
  • Khan, S., Naushad, M., Lima, E.C., Zhang, S., Shaheen, S.M. and Rinklebe, J., 2021, Global soil pollution by toxic elements: Current status and future perspectives on the risk assessment and remediation strategies – a review. Journal of Hazardous Materials 417, 126039. doi: 10.1016/j.jhazmat.2021.126039
  • Albrecht, A., Galinsky, B., Lehmann, L., Prüß, P., Schreck, M. and Wiche, O., 2021, Biogeochemische Charakterisierung von oberflächennahen Substratschichten und ausgewählten Pflanzenarten auf der Spülhalde Münzbachtal [Biogeochemical characterization of surface substrates and selected plant species on the Spülhalde Münzbachtal]. Freiberg Ecology Online 8, 19–32.
  • Wiche, O., Zertani, V., Hentschel, W., Achtziger, R. and Midula, P., 2017, Germanium and rare earth elements in topsoil and soil-grown plants on different land use types in the mining area of Freiberg (Germany). Journal of Geochemical Exploration 175, 120–129. doi: 10.1016/j.gexplo.2017.01.008
  • Wiche, O., Dreier, F., Ehrhardt, A., Gerisch, M.K., Jodoin, R., Keßler, S., Mißfeldt, T., Röder, M., Rumberg, C., Schulte, M.G. and Westhäuser, E., 2018, Mobility of potentially toxic elements in surface substrates of the Spülhalde Davidschacht, Freiberg and their displacement into adjacent areas. Freiberg Ecology Online 4, 1–19.
  • Stefan, T., Drechsel, M., Kratz, F., Kreißig, M., Säuberlich, A., Schaefer, J., Wiedener, W., Asch, R. and Wiche, O., 2022, Potentially toxic trace elements in soils and plants collected in allotment gardens of Freiberg. Freiberg Ecology Online 10, 30–54.
  • Mykolenko, S., Liedienov, V., Kharytonov, M., Makieieva, N., Kuliush, T., Queralt, I., Marguí, E., Hidalgo, M., Pardini, G. and Gispert, M., 2018, Presence, mobility and bioavailability of toxic metal(oids) in soil, vegetation and water around a Pb-Sb recycling factory (Barcelona, Spain). Environmental Pollution 237, 569–580. doi: 10.1016/j.envpol.2018.02.053
  • Panda, S., Upadhyay, R. and Nath, S., 2010, Arsenic stress in plants. Journal of Agronomy and Crop Science 196, 161–174. doi: 10.1111/j.1439-037X.2009.00407.x
  • Kabata-Pendias, A. and Pendias, H., 2001, Trace Elements in Soils and Plants, 3rd ed. (Boca Raton: CRC Press).
  • Marschner, H., 1995, Mineral Nutrition of Higher Plants (London: Academic Press).
  • Bauke, S.L., Amelung, W., Bol, R., Brandt, L., Brüggemann, N., Kandeler, E., Meyer, N., Or, D., Schnepf, A., Schloter, M., Schulz, S., Siebers, N., Sperber, C. and Vereecken, H., 2022, Soil water status shapes nutrient cycling in agroecosystems from micrometer to landscape scales. Journal of Plant Nutrition and Soil Science 185, 773–792. doi: 10.1002/jpln.202200357
  • Kniuipytė, I., Dikšaitytė, A., Praspaliauskas, M., Pedišius, M. and Žaltauskaitė, J., 2023, Oil seed rape (Brassica napus L.) potential to remediate Cd contaminated soil under different soil water content. Journal of Environmental Management 325(A), 116627. doi: 10.1016/j.jenvman.2022.116627
  • Lovynska, V., Sytnyk, S., Holoborodko, K., Ivanko, I., Buchavyi, Y. and Alekseeva, N., 2022, Study on accumulation of heavy metals by green plantations in the conditions of industrial cities. Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu 6, 117–122. doi: 10.33271/nvngu/2022-6/117
  • Rausch, G., Аchtziger, R. and Richert, E., 2019, Erfolgskontrolle von Biotopmanagement maßnahmen zur Etablierung von Heidestandorten auf einer Hochspannungstrasse im Stadtwald Freibergs [Monitoring the success of biotope management measures for the establishment of heathland sites on a high-voltage line in Freiberg’s municipal forest]. Freiberg Ecology Online 5, 1–12.
  • Richert, E., Gabler, L., Kunz, L., Döring, S., Schaefer, J. and Achtziger, R., 2022, Veränderungen der Biotop-und Strukturtypenausstattung des Fürstenwaldes bei Freiberg (Sachsen) zwischen 2005 und 2020 [Changes in the biotope and structure type composition of the Fuerstenwald near Freiberg (Saxony) between 2005 and 2020]. Freiberg Ecology Online 10, 90–107.
  • Liu, Q., Hao, Y., Stebler, E., Tanaka, N. and Zou, C., 2017, Impact of plant functional types on coherence between precipitation and soil moisture: A wavelet analysis. Geophysical Research Letters 44(24), 197–207. doi: 10.1002/2017gl075542
  • Midula, P., Wiche, O., Wiese, P. and Andráš, P., 2017, Concentration and bioavailability of toxic trace elements, germanium, and rare earth elements in contaminated areas of the Davidschacht dump-field in Freiberg (Saxony). Freiberg Ecology Online 2, 101–112.
  • Richert, E., Aufsfeld, P. and Olias, M., 2017, Biotop-typenausstattung der Spülhalde Davidschacht in Freiberg [Biotope types at the Davidschacht waste rock pile in Freiberg]. Freiberg Ecology Online 2, 18–36.
  • Fritz, E. and Jahns, C., 2017, Die Spülhalde Davidschacht in Freiberg – Geschichte, Umweltproblematik und geplante Sanierung [The Davidschacht tailings dump in Freiberg - history, environmental problems and planned remediation]. Freiberg Ecology Online 2, 4–17.
  • Deutscher Wetterdienst, Climate data for direct download. Available online at: https://www.dwd.de/EN/ourservices/cdc/cdc_ueberblick-klimadaten_en.html (accessed 6 April 2023).
  • Maxwell, R., 2013, A terrain-following grid transform and preconditioner for parallel, large-scale, integrated hydrologic modelling. Advances in Water Recourses 53, 109–117. doi: 10.1016/j.advwatres.2012.10.001
  • Kuffour, N.O., Engdahl, N.B., Woodward, C.S., Condon, L.E., Kollet, S. and Maxwell, R., 2020, Simulating coupled surface–subsurface flows with ParFlow v3.5.0: Capabilities, applications, and ongoing development of an open-source, massively parallel, integrated hydrologic model. Geoscientific Model Development 13, 1373–1397. doi: 10.5194/gmd-13-1373-2020
  • Belleflamme, A., Goergen, K., Wagner, N., Kollet, S., Bathiany, S., El Zohbi, J., Rechid, D., Vanderborght, J. and Vereecken, H., 2023, Hydrological forecasting at impact scale: The integrated ParFlow hydrological model at 0.6 km for climate resilient water resource management over Germany. Frontiers in Water 5, 1183642. doi: 10.3389/frwa.2023.1183642
  • Abrams, M., Crippen, R. and Fujisada, H., 2020, ASTER Global Digital Elevation Model (GDEM) and ASTER Global Water Body Dataset (ASTWBD). Remote Sensing 12(7), 1156. doi: 10.3390/rs12071156
  • Yamazaki, D., Ikeshima, D., Sosa, J., Bates, P., Allen, G. and Pavelsky, T., 2019, MERIT hydro: A High-Resolution Global Hydrography Map Based on Latest Topography Dataset. Water Resources Research 55, 5053–5073. doi: 10.1029/2019WR024873
  • Hengl, T., de Jesus, J., Heuvelink, G., Gonzalez, M., Kilibarda, M., Blagotić, A., Shangguan, W., Wright, M., Geng, X., Bauer-Marschallinger, B., Guevara, M., Vargas, R., MacMillan, R., Batjes, N., Leenaars, J., Ribeiro, E., Wheeler, I., Mantel, S., Kempen, B. and Bond-Lamberty, B., 2017, SoilGrids250m: Global gridded soil information based on machine learning. PLoS One 12(2), e0169748. doi: 10.1371/journal.pone.0169748
  • Schaap, M.G., Leij, F.G. and van Genuchten, M.T., 2001, ROSETTA: A computer program for estimating soil hydraulic parameters with hierarchical pedotransfer functions. Journal of Hydrology 251(3–4), 163–176. doi: 10.1016/S0022-1694(01)00466-8
  • Duscher, K., Günther, A., Richts, A., Clos, P., Philipp, U. and Struckmeier, W., 2015, As camadas SIG do “Mapa Hidrogeológico Internacional da Europa 1:1,500,000” em formato vetorial. Hydrogeology Journal 23(8), 1867–1875. doi: 10.1007/s10040-015-1296-4
  • Langanke, T., Steidl, M., Schleicher, C. and Sannier, C., 2016, Copernicus land monitoring service – high resolution layer imperviousness: Product specifications document, European Environment Agency. Available online at: https://land.copernicus.eu/user-corner/technical-library/hrl-imperviousness-technical-document-prod-2015 (accessed 17 May 2023).
  • Ullrich, S., Ramsey, M.H. and Helios-Rybicka, E., 1999, Total and exchangeable concentrations of heavy metals in soils near bytom, an area of Pb/Zn mining and smelting in upper silesia, Poland. Applied Geochemistry 14(2), 187–196. doi: 10.1016/S0883-2927(98)00042-0
  • Alfassi, Z. and Wai, C.M., 1991, Preconcentration Techniques for Trace Elements (Boca Raton: CRC Press).
  • Krachler, M., Mohl, C., Emons, H. and Shotyk, W., 2002, Influence of digestion procedures on the determination of rare earth elements in peat and plant samples by USN-ICP-MS. Journal of Analytical Atomic Spectrometry 17(8), 844–851. doi: 10.1039/B200780K
  • Bitterli, C., Bañuelos, G. and Schulin, R., 2010, Use of transfer factors to characterize uptake of selenium by plants. Journal of Geochemical Exploration 107(2), 206–216. doi: 10.1016/j.gexplo.2010.09.009
  • Warrick, A.W. and Nielsen, D.R., 1980, Spatial variability of soil physical properties in the field. In: D. Hillel (Ed.) Applications of Soil Physics (New York: Academic Press). doi: 10.1016/B978-0-12-348580-9.50018-3
  • Han, F.X., Banin, A. and Triplett, G.B., 2001, Redistribution of heavy metals in arid-zone soils under a wetting-drying cycle soil moisture regime. Soil Science 166(1), 18–28. doi: 10.1097/00010694-200101000-00005
  • Sahraoui, H. and Hachicha, M., 2017, Effect of soil moisture on trace elements concentrations using portable X-Ray Fluorescence spectrometer. Revue des Sciences Fondamentales Appliquées 9(1), 468–484. doi: 10.4314/jfas.v9i1.26
  • Hegade, R.R., Chethanakumara, M.V. and Krishnamurthy, S.V.B., 2023, Influence of soil organic carbon, water holding capacity, and moisture content on heavy metals in rice paddy soils of western ghats of India. Water, Air, and Soil Pollution 234(3), 192. doi: 10.1007/s11270-023-06186-y
  • Van Den Berg, G.A., Loch, J.P.G. and Winkels, H.J., 1998, Effect of hydrological conditions on the mobility of heavy metals in soils of a freshwater estuary in the Netherlands. Water, Air, and Soil Pollution 102(3/4), 377–388. doi: 10.1023/A:1004920700598
  • McBride, M.B., 1994, Environmental Chemistry of Soils (London: Oxford University Press), pp. 127–333.
  • Iu, K.L., Pulford, I.D. and Duncan, H.J., 1981, Influence of waterlogging and lime or organic matter additions on the distribution of trace metals in an acid soil: I. Manganese and iron. Plant and Soil 59(2), 317–326. doi: 10.1007/BF02184204
  • Vyslužilová, M., Tlustoš, J. and Száková, J., 2003, Cadmium and zinc phytoextraction potential of seven clones of Salix spp. Planted on heavy metal contaminated soil. Soil and Environment 49(12), 542. doi: 10.17221/4191-PSE
  • Wislocka, M., Krawczyk, J., Klink, A. and Morrison, L., 2006, Bioaccumulation of heavy metals by selected plant species from uranium mining dumps in the sudety mts., Poland. Polish Journal of Environmental Studies 15(5), 811–818.
  • Baldantoni, D., Cicatelli, A., Bellino, A. and Castiglione, S., 2014, Different behaviors in phytoremediation capacity of two heavy metal tolerant poplar clones in relation to iron and other trace elements. Journal of Environmental Management 146, 94–99. doi: 10.1016/j.jenvman.2014.07.045
  • Tőzsér, D., Horváth, R., Simon, E. and Magura, T., 2023, Heavy metal uptake by plant parts of populus species: A meta-analysis. Environmental Science and Pollution Research 30(26), 69416–69430. doi: 10.1007/s11356-023-27244-2
  • Kocon, A. and Jurga, B., 2017, The evaluation of growth and phytoextraction potential of Miscanthus × Giganteus and Sida hermaphrodita on soil contaminated simultaneously with Cd, Cu, Ni, Pb, and Zn. Environmental Science and Pollution Research 24(5), 4990–5000. doi: 10.1007/s11356-016-8241-5
  • Azizi, M., Faz, A., Zornoza, R., Martinez-Martinez, S. and Acosta, J., 2023, Phytoremediation potential of native plant species in mine soils polluted by metal(loid)s and rare earth elements. Plants 12(6), 1219. doi: 10.3390/plants12061219
  • Tyler, G. and Olsson, T., 2001, Plant uptake of major and minor mineral elements as influenced 637 by soil acidity and liming. Plant and Soil 230(2), 307–321. 638. doi: 10.1023/A:1010314400976
  • Appenroth, K.J., 2010, Definition of «heavy metals» and their role in biological systems. In: I. Shemareti and A. Varma (Eds) Soil Biology (Luxenbourg: Springer), pp. 19–29. doi: 10.1007/978-3-642-02436-8_2.
  • Wang, K., Qiao, Y., Zhang, H., Yue, S., Li, H., Ji, X. and Liu, L., 2018, Bioaccumulation of heavy metals in earthworms from field contaminated soil in a subtropical area of China. Ecotoxicology & Environmental Safety 148, 876–883. doi: 10.1016/j.ecoenv.2017.11.058
  • Mrak, T., Grašiˇc, B., Prislan, P., Griˇcar, J., Laznik, Ž. and Voglar, G.E., 2023, Soil contamination with potentially toxic elements and root herbivory: Effects on root surface area and stem secondary xylem of young common beech (Fagus sylvatica L.). Acta Physiology Plant 45(2), 23. doi: 10.1007/s11738-022-03495-3
  • Mortensen, L.H., Rønn, R. and Vestergard, M., 2018, Bioaccumulation of cadmium in soil organisms – with focus on wood ash application. Ecotoxicology & Environmental Safety 156(30), 452–462. doi: 10.1016/j.ecoenv.2018.03.018
  • Gao, T., Wang, H., Li, C., Zuo, M., Wang, X., Liu, Y., Yang, Y., Xu, D., Liu, Y. and Fang, X., 2022, Effects of heavy metal stress on physiology, hydraulics, and anatomy of three desert plants in the Jinchang mining area, China. International Journal of Environmental Research and Public Health 19(23), 15873. doi: 10.3390/ijerph192315873
  • Abbas, G., Murtaza, B., Bibi, I., Shahid, M., Niazi, N.K., Khan, M.I., Amjad, M., Hussain, M. and Tahir, N., 2018, Arsenic uptake, toxicity, detoxification, and speciation in plants: Physiological, biochemical, and molecular aspects. International Journal of Environmental Research and Public Health 15(1), 59. doi: 10.3390/ijerph15010059
  • Tack, F. and Verloo, M.G., 1995, Chemical speciation and fractionation in soil and sediment heavy metal analysis: A review. International Journal of Environmental Analytical Chemistry 59(2), 225–238. doi: 10.1080/03067319508041330
  • Wiche, O. and Heilmeier, H., 2016, Germanium (Ge) and Rare Earth Element (REE) accumulation in selected energy crops cultivated on two different soils. Minerals Engineering 92, 208–215. doi: 10.1016/j.mineng.2016.03.023
  • Zheng, S.A. and Zhang, M.K., 2011, Effect of moisture regime on the redistribution of heavy metals in paddy soil. Journal of Environmental Sciences 23(3), 434–443. doi: 10.1016/s1001-0742(10)60428-7
  • Angle, J.S., Baker, A.J., Whiting, S.N. and Chaney, R.L., 2003, Soil moisture effects on uptake of metals by thlaspi, alyssum, and berkheya. Plant and Soil Journal 256(2), 325–332. doi: 10.1023/A:1026137624250

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