Protective effect of humic acid and chitosan on radish (Raphanus sativus, L. var. sativus) plants subjected to cadmium stress
Автор: Farouk S., Mosa A.A., Taha A.A., Ibrahim Heba M., El-gahmery A.M.
Журнал: Журнал стресс-физиологии и биохимии @jspb
Статья в выпуске: 2 т.7, 2011 года.
Бесплатный доступ
Background Humic acid or chitosan has been shown to increase plant growth, yield and improving physiological processes in plant, but its roles on alleviating the harmful effect of cadmium on plant growth and some physiological processes in plants is very rare. Pot experiments were conducted to study the role of 100 and 200 mg/kg dry soil from either humic acid or chitosan on counteracted the harmful effects of cadmium levels (100 and 150 mg/kg dry soil) on radish plant growth and some physiological characters Results Cadmium at 100 and 150 mg kg-1 soil decreased significantly length, fresh and dry weights of shoot and root systems as well as leaf number per plant in both seasons. Chlorophyll, total sugars, nitrogen, phosphorus, potassium, relative water content, water deficit percentage and soluble proteins as well as total amino acids contents were also decreased. Meanwhile, cadmium concentration in plants was increased. On the other hand, application of chitosan or humic acid as soil addition at the concentration of 100 or 200 mg kg-1 increased all the above mentioned parameters and decreased cadmium concentrations in plant tissues. Chitosan at 200 mg kg-1 was the most effective than humic acid at both concentrations in counteracting the harmful effect of cadmium stress on radish plant growth. Conclusion In conclusion, both natural chelators, in particular, chitosan at 200 mg/kg dry soil can increase the capacity of radish plant to survive under cadmium stress due to chelating the Cd in the soil, and then reduced Cd bio-availability.
Humic, chitosan, cadmium, radish, growth
Короткий адрес: https://sciup.org/14323524
IDR: 14323524
Список литературы Protective effect of humic acid and chitosan on radish (Raphanus sativus, L. var. sativus) plants subjected to cadmium stress
- Abdel-Latid, Amani. (2008) Cadmium changes in pigment content, ion uptake, praline content and phosphoenolpyruvate carboxylase activity in Triticum aestivum seedlings. Aust. J. of Bascic and applied Sciences, 2(1), 57-62.
- Adani, F., Genevini, P., Zaccheo, P. and Zocchi G. (1998) The effect of commercial humic acid on tomato plant growth and mineral nutrition. J. Plant Nutr,. 21, 561-575.
- Albayrak, S., and Camas N. (2005) Effects of different levels and application times of humic acid on root and leaf yield and yield components of forage turnip (Brassica rapa L.). J. Agron., 4(2), 130-133.
- Andrade, F.V., Mendonca, E.S., Silva, I.R. and Mateus, R.F. (2004) Low molecular weight and humic acids increase phosphorus uptake and corn growth in Oxisoils. In HUMIC SUBSTANCES AND SOIL AND WATER ENVIRONMENT, 2004, 211-214. Sгo Pedro, Proceedings. Sгo Pedro: Embrapa Instrumentaзгo.
- Asada, K., Endo, T., Mano, J. and Miyake, C. (1998) Molecular mechanisms for relaxation of and protection from light stress. In, Saton, K. and Murata, N., Stress responses of photosynthetic organisms, Amsterdam: Elsevier, pp 37-52.
- Barcelo, J., and Poschenrieder, C. (1990) Plant Water relations as affected by heavy metal stress: a review. J. Plant Nutrition, 13, 1-37.
- Barcelo, J., Vazquez, M. and Poschenrieder, C. (1988) Structural and ultrastructural disorders in cadmium-treated bush bean plants (Phaseolus vulgaris L.). New Phytol., 108, 37-49.
- Barona, A., Aranguiz, I. and Elias, A. (2001) Metal associations in soils before and after EDTA extractive decontamination: implications for effectiveness of further clean-up procedures. Environ. Pol., 113, 79-85.
- Benavides, M.P., Gallego, S.M. and Tomaro, M.L. 2005. Cadmium toxicity in plants. Braz. J. Plant Physiol., 17, 21-34.
- Bittelli, M., Flury, M., Campbell, G.S. and Nichols, E.J. (2001) Reduction of transpiration through foliar application of chitosan. Agricultural and Forest Meteorology, 107(3), 167-175.
- Bradford, M. (1976) A rapid and sensitive method for quantification of microgram quantities of protein utilizating the principle of protein-dye binding. Anal. Bioch., 72, 248-254.
- Chapman, H.D, and Pratt, P.F. (1982) Methods of analysis for soil, plans and water. Div of Agr. Sci., Univ. of Calif., Berkeley, CA
- Chen, B., and Zhu, Y.G. (2006) Humic acids increase the phytoavailability of Cd and Pb to wheat plants cultivated in freshly spiked, contaminated soil. J. of Soils and Sediments, 6(4), 236-242.
- Chen, Y. and Aviad, T. (1990) Effects of humic substances on plant growth. In, MacCarthy, P., Clapp, C.E., Malcplm, R.L. and Bloom, P.R. (eds), Humic substances in Soil and Crop sciences, Selected readings.ASA and ASSSA, Madison, WI. Pp 161-186.
- Cho, M.H., No, H.K. and Prinyawiwatkul, W. (2008) Chitosan treatments affect growth and selected quality of sunflower sprouts. Journal of Food Science, 73 (1), 570-577.
- Cooper, T.G. (1977) The tools of biochemistry. A Wiley-Interscience Pub. John Wiley and Sons, New York.
- Farouk, S., Ghoneem, K.M. and Abeer A. Ali. (2008) Induction and Expression of systematic risistance to downy mildew disease in cucumber plant by elicitors. Egyptian Journal of Phytopathology, 1-2, 95-111.
- Fernandez-Ballester, Martinez, G., V., Ruiz, D. and Cerda, A. (1998) Changes in inorganic and organic solutes in citrus growing under saline stresses. J. Plant Nutrition., 21(12), 2497-2514.
- Gouia, H., Ghorbal, M. and Meyer, C. (2000) Effect of cadmium on activity of nitrate reductase and other enzymes of the nitrate assimilation pathway in bean. Plant Physiol. and Biochem., 38, 629-638.
- Greger, M. and Ogren, H. (1991) Direct and indirect effects of Cd on photosynthesis in sugar beet (Beta vulgaris). Physiol. Plant., 83, 129-135.
- Hegazy, M.H. (2001) Some physiological studied on the effects of Cd, Zn and Ni on faba bean and radish plants. Ph.D Thesis, Fac. of Agriculture, Cairo Univ.
- Hernandez, L.E., Ramos, I., Carpena-Ruiz, R., Lucena, J.J. and Garate, A. (1996) Effect of cadmium on the distribution of micronutrients in Lactuca spp., maize and pea plants. In: Fertilizers and Environment, ed, C. Rodriguez-Barrueco, 503-508. Kluwer Academic Publishers.
- Kalra, Y.P. (1998) Handbook of reference method for plant analysis. CRC Press, Washington, DC.
- Kupper, H., Kupper, F. and Spiller, M. (1998) In situ detection of heavy metals substituted chlorophylls in water plants. Photosynthesis Res., 58, 123-133.
- Lanaras, T., Moustakas, M., Symeonidis, L., Diomantoglou, S. and Karataglis, S. (1993) Plant metal content, growth responses and some photosynthetic measurements of fieldcultivated wheat growing on ore bodies enriched in Cu. Physiol. Plantarum., 88, 307-314.
- Lichtenthaler, H.K. and Wellbum, A.R. (1985). Determination of total carotenoids and chlorophylls A and B of leaf in Different Solvents. Biol. Soc. Trans, 11, 591-592.
- Loggini, B., Scartazza, A., Brugnoli, E. and Navari-Izzo, F. (1999) Antioxidant defense system, pigment composition and photosynthetic efficiency in two wheat cultivars subjected to drought. Plant Physiol., 119, 1091-1099.
- Malcom, R.E. and Vaughan, D. (1979) Humic substances and phosphatase activities in plant tissues. Soil Biology and Biochemistry, 11, 253-259.
- Mallikarjuna, Rao M., Govindasamy, R.and Chandrasekaran, S. (1987) Effect of Humic acid on Sorghum vulgare var. CSH-9. Current science, 56, 24, 1273
- Mato, M.C., Olmedo, M.G. and Mendez, J. (1972) Inhibition of indoleacetic acid oxidase by soil humic acids fractionated on sephadex. Soil Biology and Biochemistry, 44, 469-473.
- Mayz, D.M.J. and Cartwright, P.M. (1984) The effect of pH and aluminum toxicity on the growth and symbiotic development of cowpea (Vigna unguiculata). Plant Soil, 80, 423-430.
- Murillo, J.M., Madejon, E., Madejon, P. and Cabrera, F. (2005) The response of wild olive to the addition of a fulvic-rich acid amendment to soils polluted by trace elements. Journal of Arid Environments, London, 63, 284-303.
- Muscolo, A., Bovalo, F., Gionfriddo, F. and Nardi, S. (1999) Earthworm humic matter produces auxin-like effects on Daucus carota cell growth and nitrate metabolism. Soil biology and Biochemistry, 31, 1303-1311.
- Narwal, R.P., Mahendra, S. and Singh, M. (1993) Effect of cadmium and Zinc application on quality of maize. Ind. J. Plant Physiol., 36, 170-173.
- Nedel-koska, T.V. and Doran, P.M. (2000) Hyper accumulation of cadmium by hairy roots of Thlaspi caerulescens. Biotechnol. Bioeng., 67, 607-615
- New, N., Chandrkrachang, S. and Stevens, W.F. (2004) Application of chitosan in Myanmars agriculture sector, in: Proceedings of the Sixth Asia Pacific Chitin and Chitosan Symposium, May 23-26, The National University of Singapore, Singapore.
- Norman, G.R. and Streiner, D.L. (2003) PDQ Statistics, 3rd Ed. BC Deckker Inc, London.
- Ohta, K., Morishita, S., Suda, K., Kobayashi, N. and Hosoki, T. (2004) Effects of chitosan soil mixture treatment in the seedling stage on the growth and flowering of several ornamental plants. J. Japan. Soc. Hort. Sci., 73(1), 66-68.
- Pinto, A.P., Mota, A.M., deVaremes, A. and Pinto, F.C. (2004) Influence of organic matter on the uptake of cadmium, zinc, copper and iron by sorghum plants. Sci. Tot. Environ., 326, 239-247.
- Punz, W.F. and Sieghardt, H. (1993) The response of root of herbaceous plant species to heavy metals. Envir. Exp. Bot., 33, 85-98.
- Rai, V., Catуn, S., Bisht, S.S. and Mehrota, S. (2005) Effect of cadmium on growth, ultramorphology of leaf and secondary metabolites of Phyllantus amarus Schum and Thonn. Chemosphere, 61, 1644-1650.
- Raina, J.N. and Goswami, K.P. (1988) Effect of fulvic acid and fulvates on the growth and nutrient uptake by maize plant. J. Indian Soc. Soil Sci., 36, 264-268.
- Ramon, O., Vazquez, E., Fernandez, M. and Felipe Zornoza, M.P. (2003) Cadmium-stress in white lupine: effect on nodule structure and function. Plant Physiol., 161, 911-919.
- Rosa, C.M., Castilhos, R.M.V., Vahl, L.C. and Costa, P.F.P. (2004) Effect of fulvic acids on plant growth, root morphology and macronutrient uptake by oats. In HUMIC SUBSTANCES AND SOIL AND WATER ENVIRONMENT, 207-210, 2004, Sгo Pedro, Proceedings.. Sгo Pedro: Embrapa Instrumentaзгo.
- Rother, J.A., Millbank, J.W. and Thronton, I. (1983) Nitrogen fixation by white clover (Trifolium repens) in grassland on soils contaminated with Cd., Pb and Zn. Soil Sci.. 34, 127-136.
- Sadasivam, S. and Manickam, A. (1996) Biochemical methods, 2nd edition, New age international. India.
- Samson, G. and Visser, S.A. (1989) Surface-active effect of humic acids on potato cell membrane properties. Soil Biology Biochemistry, Bern, 21, 343-347.
- Sanchez, F.J., deAndres, E.F., Tenorio, J.L. and Ayerbe, L. (2004) Growth of epicotyls, turgor maintenance and osmotic adjustment in pea plants (Pisum salivum L.) subjected to water stress. Field Crop Res., 86, 81-90.
- Sheoran, I.S., Aggarwal, N. and Singh, R. (1990) Effect of cadmium and nickel on in vivo carbon dioxide exchange rate of pigeon pea (Cajianus cajas L.). Plant Soil, 129, 243-249.
- Stibrova, M., Doubravova, M., Brezlova, A. and Fridrich, A. (1986) Effects of heavy metals ions on growth and biochemical characteristics of photosynthesis of barley. Photosynthetica, 20, 416-425.
- Thawornchaisit, U. and Polprasert, C. (2009) Evaluation of phosphate fertilizers for the stabilization of cadmium in highly contaminated soils. J. Hazard, Mater., 165, 1109-1113.
- Tourneux, C., Devaux, A., Camacho, M.R., Mamani, P. and Ledent, J.F. (2003) Effect of water shortage on six potato genotypes in the highlands of Bolivia (II): water relations, physiological parameters. Agronomie, 23, 181-190.
- Van Assche and Clijsters, H. (1990) Effect of metals on enzyme activity in plants. Plant Cell Environment, 13, 195-206.
- Vaughan, D. and Ord, B.G. (1981) Uptake and incorporation of 14C-labelled soil organic matter by roots of Pisum sativum L. J.Exp. Bot. 32, 679-687.
- Wagner, G. J. (1993) Accumulation of cadmium in crop plants and its consequences to human health. Adv. Agron., 51, 173-212.