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Tytuł artykułu

Effects of host plant contaminated with heavy metals on the life history traits of aphids (Breyicoryne brassicae L.)

Autorzy
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Heavy metal contaminations can be considered as one of the serious environmental pollution and may have adverse effects on different organisms. This study was carried out to search how rearing the cabbage aphid (Brevicoryne brassicae L.) on heavy metal contaminated host plants affects aphid life history traits. The results revealed that both radish and cabbage host plants (Raphanus sativus L., Brassica oleracea L) contaminated separately with copper (Cu) and lead (Pb) have an important effects on life history traits of aphids. The life history traits such as fecundity (number of offspring produced per day) and fitness (intrinsic rate of population increase) were reduced about 30% when aphids were reared on contaminated host plants. However, no concise effects were found in case of development time (from birth to beginning of first reproduction). Reproduction potential of aphid population signficantly decreased and their mortality tended to be higher about 20 % on contaminated host plants. Cu and Pb had different impacts on life history traits of aphids living on the same host plant, and the same heavy metal had different effects on aphid life history traits across host plants. The uptake of Cu and Pb by cabbage aphids feeding on contaminated host plants affected life history traits due to direct toxity or reduced food quality of host plants. Results are discussed in the context of the possible effects of heavy metal pollution on herbivore-host plant relationships. This study indicates that aphid-host plant system has several advantages to study the heavy metal pollution effects on food chain in nature.
Rocznik
Strony
113--120
Opis fizyczny
Bibliogr. 16 poz.,Rys., tab.,
Twórcy
autor
  • Niğde University, Science and Arts Faculty, Department of Biology, 51100 Nigde, Turkey
  • Nigde University, Science and Arts Faculty, Department of Biology, 51100 Nigde, Turkey, ggorur@excite.com
Bibliografia
  • 1. Bagatto G., Shorthouse J.D. 1996 – Accumulation of Cu and Ni in successive stages of Lymantria dispar L. (Lymantriidae, Lepidoptera) near ore smelters at Sudbury, Ontario, Canada – Environ. Pollut. 92: 7–12.
  • 2. Crawford L.A., Hodkinson I.D., Lepp N.W. 1990 – The effects of feeding by the black bean aphid, Aphis fabae Scop. (Homoptera: Aphididae) on copper and cadmium accumulation in broad bean (Vicia faba L.) - Environ. Geochem. Hlth. 12: 245–251.
  • 3. Crawford L.A., Hodkinson I.D., Lepp N.W. 1995 – The effects of elevated hostplant copper and cadmium on the performance of the aphid Aphis fabae (Homoptera: Aphididae) – J. App. Ecol. 32: 528–535.
  • 4. Crawford L.A., Lepp N.W., Hodkinson I.D. 1996 – Accumulation and egestion of dietary copper and cadmium by the grasshopper Locusta migratoria R & F (Orthoptera: Acrididae) – Environ. Pollut. 92: 241–246.
  • 5. Culliney T.W., Pimentel D. 1986 – Effects of chemically contaminated sewage sludge on an aphid population – Ecology, 67: 1665–1669.
  • 6. Dixon A.F.G. 1973 – Biology of Aphids. Studies in Biology – Edward Arnold, London, 55 pp.
  • 7. Görür G. 2006 – Developmental instability in cabbage aphid (Brevicoryne brassicae) populations exposed to heavy metal accumulated host plants – Ecol. Indic. 6: 743–748.
  • 8. Hanson B., Lindblom S.D., Loeffer M.L., Pilon-Smits E.A.H. 2004 – Selenium protects plants from phloem-feeding aphids due to both deterrence and toxicity – New Phytol. 162: 655–662.
  • 9. Hughes M.K., Lepp N.W., Phipps D.W. 1980 – Aerial heavy metal pollution and terrestrial ecosystems – Adv. Ecolog. Res. 2: 218–327.
  • 10. Merrington G., Winder L., Green I. 1997 - The uptake of cadmium and zinc by the bird-cherry oat aphid Rhopalosiphium padi (Homoptera: Aphididae) feeding on wheat grown on sewage sludge amended agricultural soil – Environ. Pollut. 96: 111–114.
  • 11. Merrington G., Miller D., McLauglin M.J., Keller M.A. 2001 – Trophic barriers to fertilizer Cd bioaccumulation through the food chain: A case study using a plant-insect predator pathway – Arch. Environ. Cont.Tox. 41: 151–156.
  • 12. Smith S.R. 1996 – Agricultural Recyling of Sewage Sludge and the Environment – CAB International, Wallingford, UK, 90 pp.
  • 13. Viskari E.L., Kössi S., Holopainen J.K. 2000 – Norway spruce and spruce shoot aphid as indicatots of traffic pollution – Environ. Pollut. 107: 305–314.
  • 14. Winder L., Merrington G., Green I. 1999 - The tetratrophic transfer of Zn from the agricultural use of sewage sludge – Sci. Tot. Environ. 229: 73–81.
  • 15. Wyatt I.J., White P.F. 1977 – Simple estimation of intrinsic rates for aphids and tetranychid mites – J. App. Ecol. 14: 757–766.
  • 16. Zar J.H. 1996 – Biostatistical Analyses. Third edition – Prentice Hall, International Editions, USA, 662 pp.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BGPK-1617-6235
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