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Research Article

Assessing bioavailable fraction and bioconcentration factors of Cd and Zn in young silage maize under different P fertilization and crop rotation

ORCID Icon, ORCID Icon, , ORCID Icon & ORCID Icon
Pages 377-387 | Received 12 Jul 2021, Accepted 06 Oct 2021, Published online: 20 Oct 2021

References

  • Statistisches Bundesamt. Ackerland nach Hauptnutzungsarten und Kulturarten: Feldfrüchte und Grünland; 2020.
  • FNR. Bioenergy in Germany Fact and Figures 2020; 2019.
  • Niño-Savala AG, Zhuang Z, Ma X, et al. Cadmium pollution from phosphate fertilizers in arable soils and crops: an overview. Front Agric Sci Eng. 2019;6(4):419.
  • Drissi S, Houssa A, Bamouh A, et al. Effect of zinc-phosphorus interaction on corn silage grown on sandy soil. Agriculture. 2015;5(4):1047–1059.
  • Bracher C, Frossard E, Bigalke M, et al. Tracing the fate of phosphorus fertilizer derived cadmium in soil-fertilizer-wheat systems using enriched stable isotope labeling. Environ Pollut. 2021;287:117314.
  • Alloway BJ. Soil factors associated with zinc deficiency in crops and humans. Environ Geochem Health. 2009;31(5):537–548.
  • Gupta N, Ram H, Kumar B. Mechanism of Zinc absorption in plants: uptake, transport, translocation and accumulation. Rev Environ Sci Bio/Technol. 2016;15(1):89–109.
  • Khan MA, Khan S, Khan A, et al. Soil contamination with cadmium, consequences and remediation using organic amendments. Sci Total Environ. 2017;601-602:1591–1605.
  • Bashir S, Bakhsh Gulshan A, Iqbal J, et al. Comparative role of animal manure and vegetable waste induced compost for polluted soil restoration and maize growth. Saudi J Biol Sci. 2021;28(4):2534–2539.
  • Kabata-Pendias A, Szteke B. Trace elements in abiotic and biotic environments: cadmium [Cd, 48]; Zinc [Zn, 30]. Boca Raton: CRC Press; 2015.
  • Zhuang Z, Niño-Savala AG, Mi Z-D, et al. Cadmium accumulation in wheat and maize grains from China: interaction of soil properties, novel enrichment models and soil thresholds. Environ Pollut. 2021;275:116623.
  • Adamo P, Agrelli D, Zampella M. Chemical speciation to assess bioavailability, bioaccessibility and geochemical forms of potentially toxic metals (PTMs) in polluted soils. de Vivo B, Belkin HE, Lima A editors, Environmental geochemistry: site characterization, data analysis and case histories 2nd, Amsterdam, the Netherlands: Elsevier, 2018. 153–194. DOI:https://doi.org/10.1016/B978-0-444-63763-5.00010-0
  • Deutsches Institut für Normung e.V. DIN ISO 19730 Bodenbeschaffenheit – extraktion von Spurenelementen aus Böden mit Ammoniumnitratlösung (ISO 19730:2008); Berlin: Beuth Verlag GmbH, 2009.
  • Degryse F, Smolders E, Zhang H, et al. Predicting availability of mineral elements to plants with the DGT technique: a review of experimental data and interpretation by modelling. Environ Chem. 2009;6(3):198.
  • Li C, Ding S, Yang L, et al. Diffusive gradients in thin films: devices, materials and applications. Environ Chem Lett. 2019;17(2):801–831.
  • Pérez AL, Anderson KA. DGT estimates cadmium accumulation in wheat and potato from phosphate fertilizer applications. Sci Total Environ. 2009;407(18):5096–5103.
  • Yao Y, Sun Q, Wang C, et al. The combination of DGT technique and traditional chemical methods for evaluation of cadmium bioavailability in contaminated soils with organic amendment. Int J Environ Res Public Health. 2016;13:6.
  • Grüter R, Costerousse B, Mayer J, et al. Long-term organic matter application reduces cadmium but not zinc concentrations in wheat. Sci Total Environ. 2019;669:608–620.
  • Luo H, Du P, Shi J, et al. DGT methodology is more sensitive than conventional extraction strategies in assessing amendment-induced soil cadmium availability to rice. Sci Total Environ. 2021;760:143949.
  • Retamal-Salgado J, Hirzel J, Walter I, et al. Bioabsorption and bioaccumulation of cadmium in the straw and grain of maize (Zea mays L.) in growing soils contaminated with cadmium in different environment. Int J Environ Res Public Health. 2017;14(11):1399.
  • Ramana S, Tripathi AK, Kumar A, et al. Evaluation of Furcraea foetida (L.)Haw. for phytoremediation of cadmium contaminated soils. Environ Sci Pollut Res Int. 2021;28(11):14177–14181.
  • Wang S, Wu W, Liu F, et al. Accumulation of heavy metals in soil-crop systems: a review for wheat and corn. Environ Sci Pollut Res Int. 2017;24(18):15209–15225.
  • Ulrich AE. Cadmium governance in Europe’s phosphate fertilizers: not so fast? Sci Total Environ. 2019;650(Pt 1):541–545.
  • Deutsches Institut für Normung e.V. DIN ISO 11466: 1997-06Bodenbeschaffenheit - Extraktion in Königswasser löslicher Spuren elemente; Berlin: Beuth Verlag GmbH, 1997.
  • VDLUFA. Methodenbuch VII Umweltanalytik. 4th ed. Darmstadt: VDLUFA-Verl; 2011.
  • Bashir S, Salam A, Chhajro MA, et al. Comparative efficiency of rice husk-derived biochar (RHB) and steel slag (SS) on cadmium (Cd) mobility and its uptake by Chinese cabbage in highly contaminated soil. Int J Phytoremediation. 2018;20(12):1221–1228.
  • Yao Y, Sun Q, Wang C, et al. Evaluation of organic amendment on the effect of cadmium bioavailability in contaminated soils using the DGT technique and traditional methods. Environ Sci Pollut Res Int. 2017;24(9):7959–7968.
  • DGT research Ltd. LSNM-NP Loaded DGT device for metals (A) in solution; 2019.
  • Devillers D, Buzier R, Charriau A, et al. Improving elution strategies for Chelex®-DGT passive samplers. Anal Bioanal Chem. 2017;409(30):7183–7189.
  • Sarwar N, Malhi SS, Zia MH, et al. Role of mineral nutrition in minimizing cadmium accumulation by plants. J Sci Food Agric. 2010;90(6):925–937.
  • Soriano-Disla JM, Gómez I, Navarro-Pedreño J, et al. The transfer of heavy metals to barley plants from soils amended with sewage sludge with different heavy metal burdens. J Soils Sediments. 2014;14(4):687–696.
  • Malik KM, Khan KS, Rukh S, et al. Immobilization of Cd, Pb and Zn through organic amendments in wastewater irrigated soils. Sustainability. 2021;13(4):2392.
  • Yan F, Schubert S, Mengel K. Soil pH changes during legume growth and application of plant material. Biol Fertili Soils. 1996;23(3):236–242.
  • Römkens P, Rietra R, Kros H, et al. 2018 Impact of cadmium levels in fertilisers on cadmium accumulation in soil and uptake by food crops: Report 2883.
  • Molina-Roco M, Escudey M, Antilén M, et al. Distribution of contaminant trace metals inadvertently provided by phosphorus fertilisers: movement, chemical fractions and mass balances in contrasting acidic soils. Environ Geochem Health. 2018;40(6):2491–2509.
  • LUFA. Vorsorge-, Prüf-und Maßnahmenwerte für Boden gemäß Bundes-Bodenschutz-und Altlastenverordnung (BBodSchV); 1999.
  • Liu G, Tao L, Liu X, et al. Heavy metal speciation and pollution of agricultural soils along Jishui River in non-ferrous metal mine area in Jiangxi Province, China. J Geochem Explor. 2013;132:156–163.
  • Ilyin I, Travnikov O, Schütze G, et al. Country-scale assessment of heavy metal pollution: a case study for Germany. Technical Report 1/2020; 2020.
  • Mousavi SR. Zinc in crop production and interaction with phosphorus. Aust J Basic Appl Sci. 2011;5(9):1503–1509.
  • European Parliament. Directive 2002/32/EC of the European Parliament and of the Council on undesirable substances in animal feed (Annex I); Brussels, Belgium, 2013.
  • Chien SH, Menon RG. Dilution effect of plant biomass on plant cadmium concentration as induced by application of phosphate fertilizers. Rodriguez-Barrueco C editor. Fertilizers and environment. Springer Netherlands: Dordrecht. 1996. 437–442. DOI:https://doi.org/10.1007/978-94-009-1586-2_74
  • Lux A, Martinka M, Vaculík M, et al. Root responses to cadmium in the rhizosphere: a review. J Exp Bot. 2011;62(1):21–37.
  • Bogdanovic D, Ubavic M, Cuvardic M. Effect of phosphorus fertilization on Zn and Cd contents in soil and corn plants. Nutr Cycling Agroecosyst. 1999;54(1):49–56.
  • Płaza A, Gąsiorowska B, Rzążewska E. Heavy metal content in the green fodder of field pea/oat mixtures destined for cattle feed. Environ Monit Assess. 2019;191(11):680.
  • Dai Y, Nasir M, Zhang Y, et al. Comparison of DGT with traditional methods for assessing cadmium bioavailability to Brassica chinensis in different soils. Sci Rep. 2017;7(1):14206.
  • Meers E, Samson R, Tack F, et al. Phytoavailability assessment of heavy metals in soils by single extractions and accumulation by Phaseolus vulgaris. Environ Exp Bot. 2007;60(3):385–396.
  • Sönmez O, Pierzynski G, Kaya C, et al. The effects of phosphorus addition on phytoavailability of zinc by diffusive gradients in thin films (DGT). Turk J Agric For. 2016;40:379–385.
  • Mirecki N, Agič R, Ljubomir Š, et al. Transfer factor as indicator of heavy metals content in plants. Fresenius Environ Bull. 2015;24:4212–4219.