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Time-delayed effect of petroleum-derived products in soil and their bioremediation on plant – herbivore interaction

Treść / Zawartość
Identyfikatory
Warianty tytułu
PL
Następczy wpływ produktów ropopochodnych w glebie i ich bioremediacji na interakcję roślina – roślinożerca
Języki publikacji
EN
Abstrakty
EN
The aim of the study was to determine the time-delayed (after three years from the moment of soil pollution) effect of petroleum-derived products (PDPs) (petrol, diesel fuel and used engine oil) on the interaction between selected host plant (broad bean) and a herbivorous insect closely related to it (Sitona spp.). We assessed the condition of the plant exposed to pollutants (i.e. its growth and chemical composition), then we evaluated the attractiveness of the plant for both larvae and adults of the insect. The evaluation covered also the effect of bioremediation by using ZB-01 biopreparation. The results showed that after 3 years from soil contamination, engine oil and diesel fuel limited the feeding of adult sitona weevils while petrol caused increase in the attractiveness of plants for these insects. The PDPs negatively affected the growth of plants. The changes in element content depended on the type of pollutant. The biopreparation ZB-01 eliminated or reduced the differences caused by the presence of PDPs in the soil regarding the chemical composition of the host plant, and limited feeding by both the larvae and adult individuals of sitona weevils. The negative relationships between the contents of both some macroelements (Mg, S) and heavy metals (Zn, Ni), and feeding of imago of Sitona were observed. The obtained results indicate that PDPs remain for a long time in the environment and adversely affect not only the organisms directly exposed to the pollution – plants growing on polluted soil but also further links of the trophic chain, i.e. herbivores.
PL
Celem badań było określenie następczego (tj. po trzech latach od momentu zanieczyszczenia gleby) wpływu produktów ropopochodnych (benzyny, oleju napędowego i zużytego oleju silnikowego) na interakcję między wybraną rośliną (bób Vicia faba L.) i blisko z nią związanym owadem roślinożernym (oprzędzik – Sitona spp.). Oceniono stan rośliny narażonej na działanie poszczególnych zanieczyszczeń (tzn. jej wzrost i skład chemiczny), a następnie określono atrakcyjność rośliny zarówno dla larw, jak i postaci imaginalnych oprzędzików. Ocenie poddano również wpływ bioremediacji z użyciem biopreparatu ZB-01 na wymienione parametry. Stwierdzono, że po 3 latach od zanieczyszczenia gleby olej silnikowy i olej napędowy ograniczały żerowanie dorosłych oprzędzików, natomiast benzyna przeciwnie – spowodowała wzrost atrakcyjności roślin dla tych owadów. Ropopochodne negatywnie wpłynęły na wzrost roślin bobu, natomiast zawartość pierwiastków w roślinach była zróżnicowana i zależała od rodzaju zanieczyszczenia, na które były narażone. Biopreparat ZB-01 zniwelował lub wyraźnie zmniejszył różnice spowodowane obecnością ropopochodnych w glebie w odniesieniu do składu chemicznego roślin oraz ograniczył żerowanie zarówno larw, jak i dorosłych postaci Sitona spp. Zaobserwowano negatywne zależności pomiędzy zawartością zarówno niektórych makroelementów (Mg, S), jak i metali ciężkich (Zn, Ni) a żerowaniem imago oprzędzików. Uzyskane wyniki potwierdzają, że ropopochodne wykazują długotrwałe negatywne oddziaływanie na środowisko i wskazują, że mogą one niekorzystnie wpływać nie tylko na organizmy bezpośrednio narażone na zanieczyszczenia – rośliny rosnące na zanieczyszczonej glebie, ale także na dalsze ogniwa łańcucha troficznego, czyli roślinożerców.
Rocznik
Strony
71--81
Opis fizyczny
Bibliogr. 42 poz., tab., wykr.
Twórcy
autor
  • Department of Microbiology and Biomonitoring, University of Agriculture, Kraków, Poland
  • Department of Microbiology and Biomonitoring, University of Agriculture, Kraków, Poland
  • Department of Ecology, University of Silesia in Katowice, Poland
Bibliografia
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  • 16. Kaszycki, P., Pawlik, M., Petryszak, P. & Kołoczek, H. (2010). Aerobic process for in situ bioremediation of petroleumderived contamination of soil: a field study based on laboratory microcosm tests. Ecological Chemistry and Engineering A, 17, 4-5, pp. 405-414.
  • 17. Kaszycki, P., Pawlik, M., Petryszak, P. & Kołoczek, H. (2011). Ex situ bioremediation of soil polluted with oily waste: The use of specialized microbial consortia for process bioaugmentation. Ecological Chemistry and Engineering S, 18, 1, pp. 83-92.
  • 18. Kaszycki, P., Petryszak, P. & Supel, P. (2015). Bioremediation of a spent metalworking fluid with auto- and allochthonous bacterial consortia. Ecological Chemistry and Engineering S, 22, 2, pp. 285-299.
  • 19. Lizbeth, P.A., Liliana, M.B., Luis, I.D.J. & Manuel, S.Y.J. (2020). Soil polluted by waste motor oil: remediation by biostimulation. Journal of the Selva Andina Research Society, 11, 2, pp. 84-93.
  • 20. Lou, Y. & Baldwin, I.T. (2004). Nitrogen supply influences herbivoreinduced direct and indirect defenses and transcriptional responses in Nicotiana attenuate. Plant Physiology, 135, 1, pp. 496-506, DOI:10.1104/pp.104.040360.
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  • 25. Mauricio-Gutierrez, A., Machorro-Velazquez, R., Jimenez-Salgado, T., Vazquez-Cruz, C., Patricia Sanchez-Alonso, M. & Tapia-Hernandez, A. (2020). Bacillus pumilus and Paenibacillus lautus effectivity in the process of biodegradation of diesel isolated from hydrocarbons contaminated agricultural soils. Archives of Environmental Protection, 46, 4, pp. 59-69, DOI: 10.24425/aep.2020.135765.
  • 26. Odjegba, V.J. & Atebe, J.O. (2007). The effect of used engine oil on carbohydrate, mineral content and nitrate reductase activity of leafy vegetable (Amaranthus hybridus L.). Journal of Applied Sciences and Environmental Management, 11, 2, pp. 191-196, DOI: 10.4314/jasem.v11i2.55039.
  • 27. Ogboghodo, I.A., Iruaga, E.K., Osemwota, I.O. & Chokor, J.U. (2004). An assesment of the effect of crude oil pollution on soil properties, germination and growth of maize (Zea mays) using two crude types - Forcados Light and Escravos Light. Environmental Monitoring and Assessment 96, pp. 143-152, DOI: 10.1023/B:EMAS.0000031723.62736.24.
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  • 30. Rashid, M.M., Jahan, M. & Islam, K.S. (2016). Impact of nitrogen, phosphorus and potassium on Brown Plant hopper and tolerance of its host rice plants. Rice Science, 23, pp. 119-131, DOI: 10.1016/j.rsci.2016.04.001.
  • 31. Rosik-Dulewska, C., Ciesielczuk, T. & Krysinski, M. (2012). Organic pollutants in groundwater in the former airbase. Archives of Environmental Protection, 38, 1, pp. 27-34.
  • 32. Rusin, M., Gospodarek, J. & Nadgórska-Socha, A. (2015). The effect of petroleum-derived substances on the growth and chemical composition of Vicia faba L. Polish Journal of Environmental Studies, 24, 5, pp. 2157-2166, DOI: 10.15244/pjoes/41378.
  • 33. Rusin, M., Gospodarek, J., Nadgórska-Socha, A. & Barczyk, G. (2017). Effect of petroleum-derived substances on life history traits of black bean aphid (Aphis fabae Scop.) and on the growth and chemical composition of broad bean. Ecotoxicology, 26, pp. 308-319, DOI: 10.1007/s10646-017-1764-9.
  • 34. Schratzberger, M., Daniel, F., Wall, C.M., Kilbride, R., Macnaughton, S.J., Boyd, S.E., Rees, H.L., Lee, K. & Swannell, R.P.J. (2003). Response of estuarine meio-and macrofauna to in situ bioremediation of oil-contaminated sediment. Marine Pollution Bulletin, 46, 4, pp. 430-443, DOI:10.1016/S0025-326X(02)00465-4.
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  • 36. Thomine, S. & Lanquar, V. (2011). Iron Transport and Signaling in Plants. Transporters and Pumps in Plant Signaling, 7, pp. 99-131, DOI: 10.1007/978-3-642-14369-4_4.
  • 37. Tsutsumi, H., Hirota, Y. & Hirashima, A. (2000). Bioremediation on the shore after an oil spill from the Nakhodka in the Sea of Japan. II. Toxicity of a bioremediation agent with microbiological cultures in aquatic organisms. Marine Pollution Bulletin, 40, 4, pp. 315-319, DOI: 10.1016/S0025-326X(99)00219-2.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e68d8f54-fc6b-4ed8-b989-66efcddfe565
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