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Nitrogen Biofixing Bacteria Compensate for the Yield Loss Caused by Viral Satellite RNA Associated with Cucumber Mosaic Virus in Tomato

  • Dashti, N.H. (Department of Biological Sciences, Faculty of Science, University of Kuwait) ;
  • Montasser, M.S. (Department of Biological Sciences, Faculty of Science, University of Kuwait) ;
  • Ali, N.Y. (Department of Biological Sciences, Faculty of Science, University of Kuwait) ;
  • Bhardwaj, R.G. (Department of Biological Sciences, Faculty of Science, University of Kuwait) ;
  • Smith, D.L. (Plant Science Department, McGill University)
  • Published : 2007.06.30

Abstract

To overcome the problem of the yield reduction due to the viral satellite mediated protection, a culture mix of three nitrogen-fixing bacteria species of the genus Azospirillum (A. brasilienses N040, A. brasilienses SP7, and A. lipoferum MRB16), and one strain of cyanobacteria (Anabena oryzae Fritsch) were utilized as biofertilizer mixture in both greenhouse and field experiments. When protected plants were treated with biofertilizer mixtures, the fruit yield of biofertilized plants increased by 48% and 40% in a greenhouse and field experiment, respectively, compared to untreated plants inoculated with the protective viral strain alone. Polyacrylamide gel electrophoresis (PAGE) analysis of total nucleic acid (TNA) extracts revealed that biofertilization did not affect the accumulation of the viral satellite RNA (CARNA 5) that is required for plant protection against other destructive viral strains of CMV. The yield increment was a good compensation for the yield loss caused by the use of the protective viral strain associated with CARNA 5.

Keywords

References

  1. Burris, R. B. 1977. A synthesis paper on non-leguminous $N_2$-fixing system. In Recent developments in nitrogen-fixation. ed. by W. A. Newton, J. R. Postgate and C. Roddrigues-Barruaco. pp. 487-513. Academic Press, London
  2. Bashan, Y. and Holguin, G. 1997. Azospirillum-plant relationships. Environmental and physiological advances (19901996). Can. J. Microbiol. 43:103-121 https://doi.org/10.1139/m97-015
  3. Caballero-Mellado, J., Carcano-Montiel, M. and Mascarua-Esparza, M. A. 1993. Field inoculation of wheat (Triticum aestivum) with Azospirillum brasilense under temperate climate. Symbiosis 13:243-253
  4. Gallitelli, D., Vovlas, C., Martelli, G, Montasser, M. S., Tousignant, M. E. and Kaper, J. M. 1991. Satellite-mediated protection of tomato against cucumber mosaic virus: II. Field test under natural epidemic conditions in southern Italy. Plant Dis. 75:93-95 https://doi.org/10.1094/PD-75-0093
  5. Gentili, F. and Jumpponen, A. 2006. Potential and possible uses of bacterial and fungal biofertilizers. In Handbook of microbial biofertilizers. ed. by M. K. Rai. p. 543. The Haworth press, New York
  6. Gupta, S., Arora, D. K. and Srivastava, A. K. 1995. Growth promotion of tomato plants by rhizobacteria and imposition of energy stress on Rhizoctonia solani. Soil Biol. Biochem. 27:1051-1058 https://doi.org/10.1016/0038-0717(95)00011-3
  7. Hamdi, Y. A. 1982. Application of nitrogen-fixing systems in soil management. FAO Soils Bulletin 49:88
  8. Kannaiyan, S., Kumar, K. and Govindarajan, K. 2004. Biofertilizers technology for rice based cropping. Jodhpur, Scientific. Xviii, 450 pp
  9. Kapolnik, Y. A., Kigel, J., Okon, Y., Nur, I. and Henis, Y. 1981. Effects of Azospirillum inoculation on some growth parameters and N-content of wheat sorghum and panicum. Plant Soil 61:65-70 https://doi.org/10.1007/BF02277363
  10. Kapulnik, Y., Sarig, S., Nur, I. and Okon, Y. 1983. Effect of Azospirillum inoculation on yield of field-grown wheat. Can. J. Microbiol. 29:895-899 https://doi.org/10.1139/m83-145
  11. Kotob, S. I., Hashem F. M., Montasser, M. S. and Kaper, J. M. 1990. Utilization ofbiofertilizers compensates for yield reduction of protected tomato plants. In Nitrogen fixation: Achievements and Objectives. Proceedings of the 8th International Congress on Nitrogen Fixation, Knoxville, Tennessee, USA. p.660
  12. Lot, H., Marrou, J., Quiot, J. B. and Evan, C. 1972. A contribution to the study on cucumber mosaic virus (CMV) II. Quick method of purification. Ann. Phytopathol. 4:25-38
  13. Montasser, M. S., Tousignant, M. E. and Kaper, J. M. 1991. Satellite-mediated protection of vegetable crops against cucumber mosaic virus. I. Protection of tomato in the greenhouse and under simulated epidemic conditions in the field. Plant Dis. 75:86-92 https://doi.org/10.1094/PD-75-0086
  14. Montasser, M. S. 1999. Experimental Protocols in Virology and Immunology. Academic Publication Council, Kuwait University, Kuwait
  15. Montasser, M. S., Al-Hamar, B. and Bhardwaj, R. G. 2006. Biological control of a severe viral strain using a benign viral satellite RNA associated with cucumber mosaic virus. Plant Pathology J. 22: 131-138 https://doi.org/10.5423/PPJ.2006.22.2.131
  16. Muralikrishna, P. V. G, Megharaj, M. and Venkateswarlu, K. 1985. Occurrence of soil algae as influenced by profile depth and amendments. Phykos: J. Phycol. Soc. 24:42-45
  17. Neyra, C. A. and Dobereiner, J. 1977. Nitrogen fixation in grasses. Adv. Agron. 29: 1-38 https://doi.org/10.1016/S0065-2113(08)60214-X
  18. Nuttall, N. 2006. Soil biodiversity key to environmentally friendly agriculture. Below ground biodiversity-from worms to bacteria-key to environmentally friendly agriculture. The 8th Conference of the Parties to the Convention on Biological Diversity, Curitiba, Brazil
  19. Okon, Y. and Labandera-Gonzalez, C. A. 1994. Agronomic application of Azospirillum. An evaluation of 20 years worldwide field inoculation. Soil Biol. Biochem. 26: 1591-1601 https://doi.org/10.1016/0038-0717(94)90311-5
  20. Rai, A. N., Soderback, E. and Bergman, E. 2000. Cyanobacterium-plant symbiosis. New Phytology. 147:449-481 https://doi.org/10.1046/j.1469-8137.2000.00720.x
  21. Rao, K. V. B. and Charyulu, P. B. N. 2005. Evaluation of effect of inoculation of Azospirillum on the yield of Staria italica (L.). Afri. J. Biotechnol. 4:989-995
  22. Rodgers, G. A., Bergman, B., Henriksson, E. and Udris, H. 1979. Utilization of blue-green algae as biofertilizers. Plant Soil 52:99-107 https://doi.org/10.1007/BF02197736
  23. Saha, K. C. and Mandal, LN. 1980. A greenhouse study on the effect of inoculation of N-fixing blue-green algae in a soil treated with P and Mo on the yield of rice and changes in the N-content of soil. Plant Soil 57:23-30 https://doi.org/10.1007/BF02139638
  24. Thakuria, D., Talukdar, N. C., Goswami, C., Hazarika, S., Boro, R. C. and Khan, M. R. 2004. Characterization and screening of bacteria from rhizosphere of rice grown in acidic soils of Assam. Curr. Sci. 86:7
  25. Tiedeman, A. R., Lupushinsky, W. and Larsen, H. J. 1980. Plant and soil response to a commercial blue-green algae inoculant. Soil Biol. Biochem. 12:471-475 https://doi.org/10.1016/0038-0717(80)90082-6
  26. Tien, P. O., Zhang, X., Qiu, B., Qin, B. and Wu, G. 1987. Satellite RNA for the control of plant diseases caused by cucumber mosaic virus Ann. Appl. Biol. 111:143-152 https://doi.org/10.1111/j.1744-7348.1987.tb01441.x
  27. Tien, T. M., Gaskins, M. H. and Hubbeli, D. H. 1979. Plant growth substances produced by Azospirillum brasilense and their effect on the growth of pearl millet (Pennisetum amercanum L.). Appl. Environ. Microbiol. 37:1016-1024
  28. Venkataraman, G. S. 1979. Blue-green algae in rice cultivation, an evaluation. Glimpses Plant Res. 4:74-81
  29. Vlassak, K. and Reynders, L. 1981. Azospirillum rhizocoenoses in agricultural practice. In Current perspectives in nitrogen fixation. ed. by A. H. Gibson and W. E. Newton. Australian Academy of Science, Canberra
  30. White, J. L. and Kaper, J. M. 1989. A simple method for detection of viral satelliteRNAs in small plant tissue samples. J. Virol. Methods 23:83-9 https://doi.org/10.1016/0166-0934(89)90122-5

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