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2012 | 21 | 6 |

Tytuł artykułu

Antioxidative defense system in Pisum sativum roots exposed to heavy metals (Pb, Cu, Cd, Zn)

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Heavy metals (Cd, Pb, Cu, Zn) absorbed by roots brought about oxidative stress conditions through ROS production (O₂¯˙, H₂O₂) for pea plants cultivated hydroponically for 96 h on a Hoagland medium with the addition of 50 μM: CdCl₂, Pb(NO₃)₂, CuSO₄, and ZnSO₄. We shows, using laser ablation ICP MS, that Cd, Cu, Pb, and Zn elements are located along a cross-section through the roots of pea plants. We observed increasing activities of antioxidative enzymes (SOD, CAT, GR) in oxidative stress conditions. We have shown changes in redox state (GSH/GSSG) in pea root grown with Pb, Cu, Cd, and Zn.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

21

Numer

6

Opis fizyczny

p.1721-1730,fig.,ref.

Twórcy

autor
  • Department of Biochemistry, Institute of Molecular Biology and Biotechnology, Adam Mickiewicz University, Collegium Biologicum, Umultowska 89, 61-614 Poznan, Poland.
autor
  • Department of Biochemistry, Institute of Molecular Biology and Biotechnology, Adam Mickiewicz University, Collegium Biologicum, Umultowska 89, 61-614 Poznan, Poland
autor
  • Department of Biochemistry, Institute of Molecular Biology and Biotechnology, Adam Mickiewicz University, Collegium Biologicum, Umultowska 89, 61-614 Poznan, Poland
autor
  • Department of Trace Element Analysis by Spectroscopy Method, Faculty of Chemistry, Adam Mickiewicz University, Grunwaldzka 6, 60-780 Poznan, Poland
  • Department of Trace Element Analysis by Spectroscopy Method, Faculty of Chemistry, Adam Mickiewicz University, Grunwaldzka 6, 60-780 Poznan, Poland
  • Department of Biochemistry, Institute of Molecular Biology and Biotechnology, Adam Mickiewicz University, Collegium Biologicum, Umultowska 89, 61-614 Poznan, Poland

Bibliografia

  • 1. SIDDIQUI S., MEGHVANSI M.K., WANI M.A., JABEE F. Evaluating cadmium toxicity in the root meristem of Pisum sativum L. Acta Physiol. Plant 31, 531, 2009.
  • 2. CLEMENS S. Toxic metal accumulation, responses to exposure and mechanisms of tolerance in plants. Biochemie 88, 1707, 2006.
  • 3. HARTWING A. Zinc finger proteins as potential targets for toxic metal ions: differential effects on structure and function. Antioxidative Redox Signal 3, 625, 2001.
  • 4. BARALKIEWICZ D., KOZKA M., KACHLICKI P., PIECHALAK A., TOMASZEWSKA B. Analysis of oxidized and reduced phytochelatins in pea and lupin plants using HPLC/MS. Int. Environ. Chem. 88, 979, 2008.
  • 5. MALECKA A., PIECHALAK A., TOMASZEWSKA B. ROS production and antioxidative defense system in pea root cells treated with lead ions. Part 1. The whole roots level. Acta Physiol. Plant. 31, 1053, 2009.
  • 6. WANG Z., ZHANG Y., HUANG Z., HUANG L. Antioxidative response of metal-accumulator and non-accumulator plants under cadmium stress. Plant Soil 310, 137, 2008.
  • 7. PANDA S.K., PATRA K.P. Effect of salicylic acid potentiates cadmium-induced oxidative damage in Oryza sativa L. leaves. Acta Physiol. Plant. 29, 567, 2007.
  • 8. ZHANG S., ZHANG H., QIN R., JIANG W., LIU D. Cadmium induction of lipid peroxidation and effects on root tip cells and antioxidant enzyme activities in Vicia faba L. Ecotoxicology 18, 814, 2009.
  • 9. MOUSSA H.R., EL-GAMAL S.M. Effect of salicylic acid pretreatment on cadmium toxicity in wheat. Biol. Plant. 54, 315, 2010.
  • 10. LIU D., ZOU J., MEN Q., ZOU J., JIANG W. Uptake and accumulation and oxidative stress in garlic (Allium sativum L.) under lead phytotoxicity. Ecotoxicology 18, 134, 2009.
  • 11. QURESHI M.I., QADIR S., ZOLLA L. Proteomics-based dissection of stress-responsive pathways in plants. J. Plant Physiol. 164, 1239, 2007.
  • 12. EKMECI Y., TANYOLAC D., AYHAN B. A crop tolerating oxidative stress induced by excess lead: maize. Acta Physiol. Plant. 31, 319, 2009.
  • 13. KRAMER U., CLEMENS S. Functions and homeostasis of zinc, copper and nickel in plants. Topics in Current Genet., Springer: Heidelberg, 14, 215, 2005.
  • 14. MARSCHNER H. Mineral nutrition of higher plants. Academic Press: San Diego, pp 3-651, 1995.
  • 15. CHANEY R.L. Zinc phytotoxicity. In: Robson A.D. (Ed.):. Zinc in soils and plants. Kluwer Academic Press, Dordrecht, pp 135-50, 1993.
  • 16. KHATUN S., ALI M.B., HAHN E.J., PEAK K.Y. Copper toxicity in Withania somnifera: Growth and antioxidant enzymes responses of in vitro grown plants. Environ. Exp. Bot. 64, 279, 2008.
  • 17. PIECHALAK A., TOMASZEWSKA B., BARAŁKIEWICZ D., MAŁECKA A. Accumulation and detoxification of lead ions in legumes. Phytochemistry 60, 153, 2002.
  • 18. LEE S.H., ASHAN N., LEE K.W., KIM D.H., LEE D.G., KWAK S.S., KWON S.Y., KIMD T.H., LEE B.H. Simultaneous overexpression of both CuZn superoxide dismutase and ascorbate peroxidase in transgenic tall fescue plants confers increased tolerance to a wide range of abiotic stresses. J. Plant Physiol. 164, 1626, 2007.
  • 19. VIANELLO A., ZANCANI M., PERESSON C., PETRUSSA E., CASOLO V., KRAJNAKOVA J., PATUI S., BRAIDOT E., MARCI F. Plant mitochondrial pathway leading to programmed cell death. Physiol. Plant 129, 242, 2007.
  • 20. MALECKA A., PIECHALAK A., MORKUNAS I., TOMASZEWSKA B. Accumulation of lead in root cells of Pisum sativum. Acta Physiol. Plant. 30, 629, 2008.
  • 21. WILLKINS D.A. A technique for the measurement of lead tolerance in plants. Nature 180, 37, 1957.
  • 22. HANC A., BARAŁKIEWICZ D., PIECHALAK A., TOMASZEWSKA B., WAGNER B., BULSKA E. An analysis of long-distance root-to-leaf transport of lead in Pisum sativum plants by laser ablation-ICP-MS. Int. J. Environ. Anal. Chem. 89, 651, 2009.
  • 23. DOKE N. Involvement of superoxide anion generation in the hypersensitive response of potato tuber tissues to infection with an incompatible race of Phytophthora infestans and to the hyphal wall components. Physiol. Mol. Plant Pathol. 23, 345, 1983.
  • 24. BECANA M., APARICIO-TEJO P., IRIGOYEN J.J., SNACHEZ-DIAZ M. Some enzymes of hydrogen peroxide metabolism in leaves and root nodules of Medicago sativa. Plant Physiol. 82, 1169, 1986.
  • 25. YAMAMOTO Y., KOBAYASHI Y., DEVI R.S., RIKIISHI S., MATSUMOTO H. Aluminium toxicity is associated with mitochondrial dysfunction and the production of reactive oxygen species in plant cells. Plant Physiol. 128, 63, 2002.
  • 26. AFZAL M., MATSUGO S., SASAI M., XU B., AOYAMA K., TAKEUCHI T. Method to overcome photoreaction, a serious drawback to the use of dichlorofluorescin in evaluation of reactive oxygen species. Biochem. Biophys. Res. Commun. 304, 619, 2003.
  • 27. BEAUCHAMP C., FRIDOVICH I. Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Anal. Biochem. 44, 276, 1971.
  • 28. AEBI H.E. Catalase in vitro, Methods in Enzymol. 105, 121, 1984.
  • 29. YANNARELI G.G., FERNANDEZ-ALVAREZ A.J., SANTA-CRUZ D.M., TOMARO M.L. Glutathione reductase activity and isoforms in leaves and roots of wheat plants subjected to cadmium stress. Phytochemistry 68, 505, 2007.
  • 30. GRIFFITH O.W. Determination of glutathione and glutathione disulfide using glutathione reductase and 2-vinylpyridine. Anal. Biochem. 106, 207, 1980.
  • 31. BRADFORD M.M. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein- dye binding. Anal. Biochem. 72, 248, 1976.
  • 32. CAKMAK I. Possible roles of zinc in protecting plant cells from damage by reactive oxygen species. New Phytologist 146, 185, 2000.
  • 33. PALAZZO A.J., CARY T.J., HARDY S.E., LEE C.R. Root growth and metal uptake in four grasses on zinc-contaminated soils. J. Environ. Quality 32, 834, 2003.
  • 34. CHEN L.M., LIN C.C., KAO C.H. Copper toxicity in rice seedlings: Changes in antioxidative enzyme activities, H2O2 level, and cell wall peroxidase activity in roots. Bot. Bull. Academia Sinica. 41, 99, 2000.
  • 35. METWALLY A., SAFRONOVA V.I., BELIMOV A.A., DIETZ K.J. Genotypic variation of the response to cadmium toxicity in Pisum sativum L. J. Exp. Bot. 56, 167, 2005.
  • 36. DEVI R., MUNJRAL N., GUPTA A.K., KAUR N. Cadmium induced changes in carbohydrate status and enzymes of carbohydrate metabolism, glycolysis and pentose phosphate pathway in pea. Environ. Exp. Bot. 61, 167, 2007.
  • 37. WIERZBICKA M. How lead loses its toxicity to plants. Acta Societatis Botanicorum Poloniae 64, 81, 1995.
  • 38. WOJCIK M., TUKENDORF A. Cd-tolerance of maize, rye and wheat seedlings. Acta Physiol. Plant. 21, 99, 1999.
  • 39. WU G.L., CUI J., TAO L., YANG H. Fluoroxypyr triggers oxidative damage by producing superoxide and hydrogen peroxide in rice (Oryza sativa). Ecotoxicology 19, 124, 2010.
  • 40. KOPYRA M., GWOZDZ E.A. Nitric oxide stimulates seed germination and counteracts the inhibitory effect of heavy metals and salinity on root growth of Lupinus luteus. Plant Physiol. Biochem. 41, 1011, 2003.
  • 41. ORTEGA-VILLASANTE C., RELLAN-ALVAREZ R., DEL CAMPO F.F., CARPENA-RUIZ R.O., HERNANDEZ L.E. Cellular damage induced by cadmium and mercury in Medicago sativa. J. Exp. Bot. 56, 2239, 2005.
  • 42. JIN X.F., YANG X.E., ISLAM E., LIU D., MAHMOOD Q., LI H., LI J. Ultrastructural changes zinc hyperaccumulation and its relation with antioxidants in two ecotypes of Sedum alfredii Hance. Plant Physiol. Biochem. 46, 997, 2008.
  • 43. MITTLER R. Oxidative stress, antioxidants and stress tolerance. Trends in Plant Sci. 7, 405, 2002.
  • 44. SMEETS K., RUYTINX J., SEMANE B., VAN BELLEGHEM F., REMANS T., VAN SANDEN S., VANGRONSVELD J., CUYPERS A. Cadmium-induced transcriptional and enzymatic alterations related to oxidative stress. Environ. Exp. Bot. 63, 1, 2008.
  • 45. NOUAIRI I., AMMAR W.B., YOUSSEF N.B., MILED D.D.B., GHORBAL M.H., ZARROUK M. Antioxidant defense system in leaves of Indian mustard (Brassica juncea) and rape (Brassica napus) under cadmium stress. Acta Physiol. Plant. 31, 237, 2009.
  • 46. LEE H., JO J., SON D. Molecular cloning and characterization of the gene encoding glutathione reductase in Brassica campestris. Biochem. Biophys. Acta. 1395, 309, 1998.
  • 47. ZHOU Z.S., WANG S.J., YANG Z.M. Biological detection and analysis of mercury toxicity to alfalfa (Medicago sativa) plants. Chemosphere 17, 1500, 2008.
  • 48. AMMAR W.B., NOUAIRI I., ZARROUK M., GHORBEL M.H., JEMAL F. Antioxidative response to cadmium in roots and leaves of tomato plants. Biol. Plant. 52, 727, 2008.
  • 49. HANA S., RACHID R., IBISSEN S., HOURIA B., MOHAMMED-REDA D. Induction of anti-oxidative enzymes by cadmium stress in tomato (Lycopersicon esculentum). Afr. J Plant Sci. 2, 072, 2008.
  • 50. MOURATO M.P., MARTINS L.L., CAMPOS-ANDRADA M.P. Physiological responses of Lupinus luteus to different copper concentrations. Biol. Plant. 53, 105, 2009.
  • 51. VERMA S., DUBEY R.S. Lead toxicity induces lipid peroxidation and alters the activities of antioxidant enzymes in growing rice plants. Plant Sci. 164, 645, 2003.
  • 52. ZROBEK-SOKOLNIK A., GORSKA K, GORECKI R.J. The activity of antioxidant enzymes suspension cultured tobacco cells treated with heavy metals. Pol. J. Natur. Sci. 22, 704, 2007.
  • 53. MISHRA P.K., PRAKASH V. Antioxidant modulation in response to zinc induced oxidative stress at different pH in Glycine max L. Cv. Merrill. Amer-Eurasian J. Agr. Environ. Sci. 6, 485, 2009.
  • 54. CAMP W.V., CAPIAU K., MONTAGU M.V., INZE D., SLOOTEN L. Enhancement of oxidative stress tolerance in transgenic tobacco plants overproducing Fe-superoxide dismutase in chloroplast. Plant Physiol. 112, 1703, 1996.
  • 55. GECHEV T., GADJEV I., BREUSEGEM F.V., INZE D., DUKINDJIEV S., TONEVA V., MINKOV I. Hydrogen peroxide protects tobacco from oxidative stress by inducing a set of antioxidant enzymes. Cell. Mol. Life Sciences 59, 708, 2002.
  • 56. GABARA B., SKLODOWSKA M., WYRWICKA A., GLINSKA S., GAPINSKA M.B. Changes in the ultrastructure of chloroplasts and mitochondria and antioxidant enzyme activity in Lycopersicon esculentum Mill. Leaves sprayed with acid rain. Plant Sci. 164, 507, 2003.
  • 57. MAZEN A.M.A. Accumulation of four metals in tissues of Corchorus olitorius and possible mechanisms of their tolerance. Biol. Plant. 48, 267, 2004.
  • 58. WIERZBICKA M., PRZEDPELSKA E., RUZIK R., QUERDANE L., POLEC-PAWLIK K., JAROSZ M., SZPUNAR J., SZAKIEL A. Comparison of the toxicity and distribution of cadmium and lead in plant cells. Protoplasma 231, 99, 2007.
  • 59. GREJTOVSKY A., MARKUSOVA K., ELIASOVA A., SAFARIK P.J. The response of chamomile (Matricaria Chamomilla L.) pants to soil zinc supply. Plant Soil Environ. 52, 1, 2006.

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Bibliografia

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