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2018 | 27 | 2 |

Tytuł artykułu

Using Jerusalem artichoke to extract heavy metals from municipal sewage sludge amended soil

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The aim of our research was to assess the effectiveness of phytoextraction of heavy metals from sewage sludge by ‘Rubik’ and ‘Albik’ varieties of Jerusalem artichoke. The 6-year field experiment involved four levels of fertilization with sewage sludge at doses of 0, 10, 20, 40, and 60 Mg DM sludge ∙ ha⁻¹. The research evaluated the amount of Jerusalem artichoke yield as well as the uptake and use of heavy metals by the Jerusalem artichoke varieties. It was established that increasing doses of sewage sludge had significantly increased the yield of the Jerusalem artichoke varieties. Increasing doses of sewage sludge also had a significant effect on the increase in the content of heavy metals in aboveground parts of plants. The highest heavy metal uptake with the yield of the Jerusalem artichoke varieties was observed at a dose of 60 Mg DM ∙ ha⁻¹. Among the tested varieties of Jerusalem artichoke, Albik had higher yield, higher content and uptake of heavy metals, and greater recovery of these elements as compared to Rubik. Therefore, based on the obtained research results, Albik can be recommended for phytosequestration of heavy metals from sewage sludge amended soil.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

27

Numer

2

Opis fizyczny

p.513-527,fig.,ref.

Twórcy

  • Department of Agricultural and Environmental Chemistry, University of Agriculture in Krakow, 31-120 Krakow, Poland
autor
  • Department of Industrial and Medicinal Plants, University of Life Sciences in Lublin, 20-950 Lublin, Poland
  • Institute of Soil Science, Environment Engineering and Management, University of Life Sciences in Lublin, 20-950 Lublin, Poland
autor
  • Institute of Plant Production, University of Agriculture in Krakow, 31-120 Krakow, Poland
autor
  • Institute of Agricultural Engineering and Informatics, University of Agriculture in Krakow, 30-149 Krakow, Poland

Bibliografia

  • 1. KIM R.Y., YOON J.K., KIM T.S., YANG J.E., OWENS G., KIM K.R. Bioavailability of heavy metals in soils: definitions and practical implementation – a critical review. Environmental Geochemistry Health, 37, 1041, 2015.
  • 2. MAESTRI E., MARMIROLI M., VISIOLI G., MARMIROLI N. Metal tolerance and hyperaccumulation: Costs and trade-offs between traits and environment. Environmental and Experimental Botany, 68, 1, 2010.
  • 3. CUI S., ZHOU Q., CHAO L. Potential hyperaccumulation of Pb, Zn, Cu and Cd in endurant plants distributed in an old smeltery, northeast China. Environmental Geology, 51 (6), 1043, 2007.
  • 4. DICKINSON N.M., BAKER A.J.M., DORONILA A., LAIDLAW S., REEVES R.D. Phytoremediation of inorganics: realism and synergies. International Journal of Phytoremediation, 11 (2), 97, 2009.
  • 5. ANTONKIEWICZ J., KOŁODZIEJ B., BIELIŃSKA E. The use of reed canary grass and giant miscanthus in the phytoremediation of municipal sewage sludge. Environmental Science and Pollution Research, 23 (10), 9505, 2016.
  • 6. SHI G., CAI Q. Cadmium tolerance and accumulation in eight potential energy crops. Biotechnology Advances, 27 (5), 555, 2009.
  • 7. ZHANG X., XIA H., LI Z., ZHUANG P., GAO B. Potential of four forage grasses in remediation of Cd and Zn contaminated soils. Bioresoource Technology, 101, 2063, 2010.
  • 8. TERZIĆ S., ATLAGIĆ J., MAKSIMOVIĆ I., ZEREMSKI T., ZORIĆ M., MIKLIČ V., BALALIĆ I. Genetic variability for concentrations of essential elements in tubers and leaves of Jerusalem artichoke (Helianthus tuberosus L.). Scienta Horticulturae, 136, 135, 2012.
  • 9. YANG L., HE Q.S., CORSCADDEN K., UDENIGWE C.C. The prospects of Jerusalem artichoke in functional food ingredients and bioenergy production. Biotechnology Reports, 5, 77, 2015.
  • 10. BALDINI M., DANUSO F., TURI M., VANNOZZI G.P. Evaluation of new clones of Jerusalem artichoke (Helianthus tuberosus L.) for inulin and sugar yield from stalks and tubers. Industrial Crops and Products, 19 (1), 25, 2004.
  • 11. PAKARINEN A., MAIJALA P., STODDARD F.L., SANTANEN A., TUOMAINEN P., KYMÄLÄINEN M., VIIKARI L. Evaluation of annual bioenergy crops in the boreal zone for biogas and ethanol production. Biomass and Bioenergy, 35, 7, 3071, 2011.
  • 12. KIM S., KIM C.H. Evaluation of whole Jerusalem artichoke (Helianthus tuberosus L.) for consolidated bioprocessing ethanol production. Renewable Energy, 65, 83, 2014.
  • 13. MA X.M., HANG L.H., SHAO H.B., XU G., HANG F., NI F.T., BRESTIC M. Jerusalem artichoke (Helianthus tuberosus), a medicinal salt-resistant plant has high adaptability and multiple-use values. Journal of Medicinal Plants Research, 5, 8, 1272, 2011.
  • 14. WILLSCHER S., JABLONSKI L., FONA Z., RAHMI R., WITTIG J. Phytoremediation experiments with Helianthus tuberosus under different pH and heavy metal soil concentrations. Hydrometallurgy, 168, 153, 2017.
  • 15. JASIEWICZ C., ANTONKIEWICZ J. Heavy metals extraction by Jerusalem artichoke (Helianthus tuberosus L.) from soils contaminated with heavy metals. Ecological Chemistry and Engineering, 9 (4), 379, 2002.
  • 16. REGULATION. Regulation of the Minister of the Natural Environment on municipal sewage sludge dated 6 February 2015. (Rozporządzenie Ministra Środowiska z dnia 6 lutego 2015 r. w sprawie komunalnych osadów ściekowych. Dz. U. RP, Poz. 257). Journal of Laws of Poland, Item 257, 2015 [In Polish].
  • 17. SMITH S.R. A critical review of the bioavailability and impacts of heavy metals in municipal solid waste composts compared to sewage sludge. Environment International, 35, 142, 2009.
  • 18. KELESSIDIS A., STASINAKIS A.S. Comparative study of the methods used for treatment and final disposal of sewage sludge in European countries. Waste Management, 32 (6), 1186, 2012.
  • 19. TELLA M., DOELSCH E., LETOURMY P., CHATAING S., CUOQ F., BRAVIN M.N., SAINT MACARY H. Investigation of potentially toxic heavy metals in different organic wastes used to fertilize market garden crops. Waste Management, 33 (1), 184, 2013.
  • 20. BORKOWSKA H., JACKOWSKA I., PIOTROWSKI J., STYK B. Suitability of cultivation of some perennial plant species on sewage sludge. Polish Journal of Environmental Studies, 10 (5), 379, 2001.
  • 21. CHEN L., LONG X.H., ZHANG Z.H. ZHENG X.T., RENGEL Z., LIU Z.P. Cadmium accumulation and translocation in two Jerusalem artichoke (Helianthus tuberosus L.) cultivars. Pedosphere, 21 (5), 573, 2011.
  • 22. KORZENIOWSKA J., STANISŁAWSKA-GLUBIAK E. Phytoremediation potential of Miscanthus x giganteus and Spartina pectinata in soil contaminated with heavy metals. Environmental Science and Pollution Research, 22 (15), 11648, 2015.
  • 23. LAIDLAW S.W., BAKER A.J.M., GREGORY D., ARNDT S.K. Irrigation water quality in fluences heavy metal uptake by willows in biosolids. Journal of Environmental Management, 155, 31, 2015.
  • 24. POLISH SOIL CLASSIFICATION. (Systematyka gleb Polski). Soil Science Annual, 62 (3), 1, 2011 [in Polish].
  • 25. SOIL SURVEY STAFF. Keys to Soil Taxonomy, 12th ed. USDA-Natural Resources Conservation Service, Washington, D.C., 360, 2014.
  • 26. WRB. 2015. World Reference Base for Soil Resources 2014, update 2015. International soil classification system for naming soils and creating legends for soil maps. World Soil Resources Reports No. 106. FAO, Rome.
  • 27. REGULATION. Regulation of the Minister of the Natural Environment on soil quality and earth quality dated 9 September 2002. (Rozporządzenie Ministra Środowiska z dnia 9 września 2002 r. w sprawie standardów jakości gleby oraz standardów jakości ziemi. Dz. U. RP, Nr 165, poz. 1359). Journal of Laws of Poland, No 165, Item 1359, 2002 [In Polish].
  • 28. WASTE CATALOGUE. 2014. Regulation of the Minister of the Natural Environment on catalog of wastes dated 9 December 2014. (Rozporządzenie Ministra Środowiska z dnia 9 grudnia 2014 r. w sprawie katalogu odpadów. Dz. U. RP, Poz. 1923). Journal of Laws of Poland, Item 1923, 2014 [In Polish].
  • 29. KOŁODZIEJ B., ANTONKIEWICZ J., SUGIER D. Miscanthus × giganteus as a biomass feedstock grown on municipal sewage sludge. Industrial Crops and Products, 81, 72-82, 2016.
  • 30. OSTROWSKA A., GAWLIŃSKI S., SZCZUBIAŁKA Z. 1991. Methods of analysis and assessment of soil and plant properties. A Catalgoue. (Metody analizy i oceny właściwości gleb i roślin. Katalog). Publisher: Institute of Environmental Protection – National Research Institute, Warsaw, 334, 1991 [in Polish].
  • 31. KUSZNIEREWICZ B., BĄCZEK-KWINTA R., BARTOSZEK A., PIEKARSKA A., HUK A., MANIKOWSKA A., ANTONKIEWICZ J., NAMIEŚNIK J., KONIECZKA P. The dose-dependent influence of zinc and cadmium contamination of soil on their uptake and glucosinolate content in white cabbage (Brassica Oleracea var. Capitata F. Alba). Environmental Toxicology and Chemistry, 31 (11), 2482, 2012.
  • 32. JONES J.B.JR., CASE V.V. Sampling, Handling, and Analyzing Plant Tissue Samples. In RL Westerman, ed, Soil Testing and Plant Analysis, Ed 2. SSSA Book Series, No. 3. Soil Science Society of America, Madison, WI, 389, 1990.
  • 33. THALMANN A. Zur methodik der bestimmung der Dehydrogenaseaktivit~tt im Boden mittels Triphenyltetrazoliumchlorid (TTC). Landwirtsch Forsch, 21, 249, 1968.
  • 34. TABATABAI M.A., BREMNER J.M. Use of p-nitrophenyl phosphate for assay of soil phosphatase activity. Soil Biology and Biochemistry, 1 (4), 301, 1969.
  • 35. ZANTUA M.I., BREMNER J.M. Comparison of methods of assaying urease activity in soils. Soil Biology and Biochemistry, 7 (4-5), 291, 1975.
  • 36. LADD J.N., BUTLER J.H.A. Short-term assays of soil proteolytic enzyme activities using proteins and dipeptide derivatives as substrates. Soil Biology and Biochemistry, 4 (1), 19, 1972.
  • 37. ZHANG Z.G., YAO D.X., ZHENG Y.H., GAO L.M. The phytoremediation potential of six compositae plants to soil pollution of heavy metal in coal mine collapse and reclaimed area. Journal of China Coal Society, 10. (B) Chemistry/Metallurgy/ Environment/ Mine Industry, http://en.cnki.com.cn/Article_en/CJFDTOTAL-MTXB201010033.htm 2010.
  • 38. JOHNSON G.A., WYSE D., SHEAFFER C.C. Yield of perennial herbaceous and woody biomass crops over time across three locations. Biomass and Bioenergy, 58, 267, 2013.
  • 39. ALVARENGA P., MOURINHA C., FARTO M., SANTOS T., PALMA P., SENGO J., MORAIS M.C., CUNHAQUEDA C. Sewage sludge, compost and other representative organic wastes as agricultural soil amendments: Benefits versus limiting factors. Waste Management, 40, 44, 2015.
  • 40. JOHANSSON E., PRADE T., ANGELIDAKI I., SVENSSON S.E., NEWSON W.R., GUNNARSSON I.B., HOVMALM H.P. Economically viable components from Jerusalem Artichoke (Helianthus tuberosus L.) in a biorefinery concept. International Journal of Molecular Science, 16, 8997, 2015.
  • 41. LONG X.H., SHAO H.B., LIU L., LIU L.P., LIU Z.P. Jerusalem artichoke: A sustainable biomass feedstock for biorefinery. Renewable and Sustainable Energy Reviews, 54, 1382, 2016.
  • 42. KAYS S.J., NOTTINGHAM S.F. Biology and chemistry of Jerusalem artichoke Helianthus tuberosus L. CRC Press, Taylor and Francis Group, Boca Raton - Abingdon - Oxon - New York 2008. 478, 2008.
  • 43. LI L., SHAO T., YANG H., CHEN M., GAO X., LONG X., SHAO H., LIU Z., RENGEL Z. The endogenous plant hormones and ratios regulate sugar and dry matter accumulation in Jerusalem artichoke in salt-soil. Science of the Total Environment, 578, 40, 2017.
  • 44. BACH V., KIDMOSE U., BJØRN G.K., EDELENBOS M. Effects of harvest time and variety on sensory quality and chemical composition of Jerusalem artichoke (Helianthus tuberosus) tubers. Food Chemistry, 133 (1), 82, 2012.
  • 45. LONG X., NI NI., LIU Z., RENGEL Z., JIANG X., SHAO H. Tissue fractions of cadmium in two hyperaccumulating Jerusalem artichoke genotypes. The Scientific World Journal, Article ID 421249: 6, 2014.
  • 46. SAWICKA B., NOAEMA A.H., HAMEED T.S., SKIBA D. Genotype and environmental variability of chemical elements in potato tubers. Acta Sci. Pol. Agricultura, 15 (3), 79, 2016.
  • 47. GIZIŃSKA-GÓRNA M., CZEKAŁA W., JÓŹWIAKOWSKI K., LEWICKI A., DACH J., MARZEC M., PYTKA A., JANCZAK D., KOWALCZYK-JUŚKO A. The possibility of using plants from hybrid constructed wetland wastewater treatment plant for energy purposes. Ecological Engineering, 95, 534, 2016.
  • 48. SAS-NOWOSIELSKA A., GALIMSKA-STYPA R., KUCHARSKI R., ZIELONKA U., MAŁKOWSKI U., GRAY L. Remediation aspect of microbial changes of plant rhizosphere in mercury contaminated soil. Environmental Monitoring Assessment, 137 (1), 101, 2008.
  • 49. LONG X., NI NI., WANG L., WANG X., WANG J., ZHANG Z., ZED R., LIU Z., SHAO H. Phytoremediation of Cadmium-Contaminated Soil by Two Jerusalem Artichoke (Helianthus tuberosus L.) Genotypes. Clean – Soil, Air, Water, 41 (2), 202, 2013.
  • 50. CIARKOWSKA K., GARGIULO L., MELE G. Natural restoration of soils on mine heaps with similar technogenic parent material: A case study of long-term soil evolution in Silesian-Krakow Upland Poland. Geoderma, 261, 141, 2016.
  • 51. MEDINA J., MONREAL C., BAREA J.M., ARRIAGADA C., BORIE F., CORNEJO P. Crop residue stabilization and application to agricultural and degraded soils: A review. Waste Management, 42, 41, 2015.
  • 52. WISZNIEWSKA A., HANUS-FAJERSKA E., MUSZYŃSKA E., CIARKOWSKA K. Natural organic amendments for improved phytoremediation of polluted soils: A review of recent progress. Pedosphere, 26 (1), 1, 2016.
  • 53. ONTL T.A., CAMBARDELLA C.A., SCHULTE L.A., KOLKA R.K. Factors influencing soil aggregation and particulate organic matter responses to bioenergy crops across a topographic gradient. Geoderma, 255-256, 1, 2015.
  • 54. YANG H., HU J., LONG X., LIU Z., RENGEL Z. Salinity altered root distribution and increased diversity of bacterial communities in the rhizosphere soil of Jerusalem artichoke. Scientific Reports, 6, 20687, 10, 2016.
  • 55. SAWICKA B., KALEMBASA D. Annual variability of some toxic element contents (Cd, Cr, Co, Ni, and Pb) and response of two Jerusalem Artichoke varieties to increasing nitrogen fertilizer at constant PK levels. Polish Journal of Environmental Studies, 22, 3, 861, 2013.

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Bibliografia

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