Influence Of Hydrocarbons On Plant Cell Ultrastructure And Main Metabolic Enzymes

Autor: Sadunishvili, T., Kvesitadze, E., Mariam Betsiashvili, Kuprava, N., Zaalishvili, G., Kvesitadze, G.
Jazyk: angličtina
Rok vydání: 2009
Předmět:
Zdroj: Scopus-Elsevier
DOI: 10.5281/zenodo.1060005
Popis: Influence of octane and benzene on plant cell ultrastructure and enzymes of basic metabolism, such as nitrogen assimilation and energy generation have been studied. Different plants: perennial ryegrass (Lolium perenne) and alfalfa (Medicago sativa); crops- maize (Zea mays L.) and bean (Phaseolus vulgaris); shrubs – privet (Ligustrum sempervirens) and trifoliate orange (Poncirus trifoliate); trees - poplar (Populus deltoides) and white mulberry (Morus alba L.) were exposed to hydrocarbons of different concentrations (1, 10 and 100 mM). Destructive changes in bean and maize leaves cells ultrastructure under the influence of benzene vapour were revealed at the level of photosynthetic and energy generation subcellular organells. Different deviations at the level of subcellular organelles structure and distribution were observed in alfalfa and ryegrass root cells under the influence of benzene and octane, absorbed through roots. The level of destructive changes is concentration dependent. Benzene at low 1 and 10 mM concentration caused the increase in glutamate dehydrogenase (GDH) activity in maize roots and leaves and in poplar and mulberry shoots, though to higher extent in case of lower, 1mM concentration. The induction was more intensive in plant roots. The highest tested 100mM concentration of benzene was inhibitory to the enzyme in all plants. Octane caused induction of GDH in all grassy plants at all tested concentrations; however the rate of induction decreased parallel to increase of the hydrocarbon concentration. Octane at concentration 1 mM caused induction of GDH in privet, trifoliate and white mulberry shoots. The highest, 100mM octane was characterized by inhibitory effect to GDH activity in all plants. Octane had inductive effect on malate dehydrogenase in almost all plants and tested concentrations, indicating the intensification of Trycarboxylic Acid Cycle. The data could be suggested for elaboration of criteria for plant selection for phytoremediation of oil hydrocarbons contaminated soils.
{"references":["Leahy, J.G. and R. R. Colwell, \"Microbial degradation of hydrocarbons\nin the environment\", Microbio. Rev., vol. 54, pp. 305-315, 1990.","Ferro, A., J. Kennedy, W. Doucette, S. Nelson, G. Jauregui, B.\nMcFarland, and B. Bugbee, \"Fate of benzene in soils planted with\nalfalfa: Uptake, volatilization, and degradation\", in Phytoremediation of\nSoil and Water Contaminants, E.L. Kruger, T.A. Anderson, J.R. Coats,\nEds, American Chemical Society: Washington, D.C., 1997, pp. 223-237.","Harms, H., Bokern, M., Kolb, M., Bock, C., \"Transformation of organic\ncontaminants by different plant systems\", in Phytoremediation.\nTransfor¬mation and control of contaminants, McCutcheon, S.C.,\nSchnoor, J.L. Eds. Wiley-Interscience, Hoboken, New Jersey, 2003, pp.\n285-316, 2003.","Qiu, X., T.W. Leland, S.I. Shah, D.L. Sorensen, and E.W. Kendall,\n\"Field study: Grass remediation for clay soil contaminated with\npolycyclic aromatic hydrocarbons\", in Phytoremediation of Soil and\nWater Contaminants, E.L. Kruger, T.A. Anderson, J.R. Coats, Eds.,\nAmerican Chemical Society: Washington, D.C, 1997, pp. 186-199.","Sandermann, H. \"Plant metabolism of xenobiotics\", Trends. Biochem.\nSci., vol. 17, pp. 82-84, 1992.","Tsao, D.T. Phytoremediation. Advances in Biochemical Engineering and\nBiotechnology. Springer, Berlin Heidelberg New York, 2003.","Wiltse, C.C., W.L. Rooney, Z. Chen, A.P. Schwab, and M.K. Banks.\n\"Greenhouse evaluation of agronomic and crude oil-phytoremediation\npotential among alfalfa genotypes\", J. Env. Qual., vol.27, pp. 169-173,\n1998.","Bartha, R. \"Biotechnology of petroleum pollutant biodegradation\",\nMicro. Ecol., vol.12, pp. 155-17, 1986.","Durmishidze S, Ugrekhelidze D. \"Enzymatic cleavage of the aromatic\nring of benzene and simple phenols in plants\", in Proc. 6th FEBS\nMeeting, Madrid, 1969, p.915.\n[10] Mitaishvili T., Scalla R., Ugrekhelidze D., Tsereteli B., Sadunishvili T.,\nKvesitadze G. \"Transformation of aromatic compounds in plants grown\nunder aseptic conditions\", Zeitsschrift fur Naturforschung, 60c, pp. 97-\n102, 2005.\n[11] Betsiashvili M., Sadunishvili T., Amashukeli N., Tsulukidze N.,\nShapovalova N., Dzamukashvili N., Nutsubidze N.\"Effect of aromatic\nhydrocarbons on main metabolic and energetic enzymes in maize,\nryegrass and kidney bean seedlings\", Bull.Georgian Acad. Sci., vol. 170,\npp.172-174, 2004.\n[12] Chrikishvili D, Sadunishvili T, Zaalishvili G.\"Benzoic acid\ntransformation via conjugation with peptides and final fate of conjugates\nin higher plants\", Ecotoxicol. Environ. Saety., vol.64, 3, pp. 390-399,\n2006.\n[13] Kvesitadze G., Gordeziani M., Khatisashvili G., Sadunishvili T.,\nRamsden J.J. \"Review: Some aspects of the enzymatic basis of\nphytoremediation\", Journal of Biological Physics and Chemistry, vol.1,\n2, pp. 49-57, 2001.\n[14] Zaalishvili, G., Sadunishvili, T., Scalla, R. Laurent, F. and Kvesitadze,\nG. \"Electron Microscopic Investigation of Nitrobenzene Distribution\nand Effect on Plant Root Tip Cells Ultrastructure\", Ecotoxicol. Environ.\nSafety, vol. 52, 3, pp. 190-197, 2002.\n[15] Kvesitadze G., Kokonashvili G., Sadunishvili T. \"Enzymes of nitrogen\nand energy metabolism from the liver of spiny dogfish and in the\npreparation Katrex\", Applied Biochemistry and Microbiology, vol.29, 1,\npp.131-137, 1993.\n[16] Sadunishvili, T., Gvarliani N., Nutsubidze, N., Kvesitadze, G. \"Effect of\nmethionine sulfoximine on nitrogen metabolism and externally supplied\nammonium assimilation in Kidney bean\". Ecotoxicol. Environ. Saf., vol.\n34, pp. 70-75, 1996.\n[17] Bradford M. \"A rapid and sensitive method for the quantitativation of\nmicrogram quantities of protein utilizing the principle of protein-dye\nbinding\", Anal. Biochem., vol. 72, pp. 248-254, 1976.\n[18] Kvesitadze, G., Khatisashvili, G., Sadunishvili, T., Ramsden, J.J.\nBiochemical Mechanisms of Detoxification in Higher Plants. Basis of\nPhytoremediation. Springer, Berlin Heidelberg New York, 2006.\n[19] Buadze, O., Kvesitadze, G. \"Effect of low-molecular-weght alkanes on\nthe cell photosynthetic apparatus\", Ecotoxicol. Environ. Saf., vol. 38, pp.\n36-44, 1997.\n[20] Buadze, O., Sadunishvili, T., Kvesitadze, G. \"The effect of 1,2-\nbenzantracene and 3,4-benzpyrene on the ultrastructure of maize cells\",\nInternational Biodeterioration and Biodegradation, vol. 41, pp.119-125,\n1998.\n[21] Zaalishvili, G., Lomidze, E., Buadze, O., Sadunishvili, T. Tkhelidze, P.,\nKvesitadze, G. \"Electron microscopic investigation of benzidine effect\non maize root tip cells ultrastructure, DNA synthesis and calcium\nhomeostasis\", International Biodeterioration and Biodegradation, vol.\n46, 2, pp.133-140, 2000.\n[22] Miflin B.J. and Habash D.Z. \"The role of glutamine synthetase and\nglutamate dehydrogenase in nitrogen assimilation and possibilities for\nimprovement in the nitrogen utilization of crops\", Journal of\nExperimental Botany, vol. 53, No. 370, pp. 979-987, 2002."]}
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