Reference
Agrios, G. N. 2005. Plant pathology. 5th. Edited by New York. Elsevier, 647-648.
Azadvar, M. & Rahimian, H. H. 2008. Study on tolerance ratio of 11 commercial potato varieties to bacterial wilt agent in root and stem inoculation methods. Iranian Journal of Plant Pathology. 44 (2): 184-190.
Bajpai, V.K. Kang, S.Xu, H. Lee, S.G. Baek, K.H. & Kang, S.C. 2011. Potential roles of essential oils on controlling plant pathogenic bacteria Xanthomonas Species: A Review. The Plant Pathology Journal, 27(3): 207-224.
Chen, Y. Yan, F. Chai, Y. Liu, H. Kolter, R. Losick, R. & Guo, J.H. 2012. Biocontrol of tomato wilt disease by Bacillus subtilis isolates from natural environments depends on conserved genes mediating biofilm formation. Environmental Microbiology, 15 (3): 848-864.
Chet, I. & Inbar, J. 1994. Biological control of fungal pathogens. Applied Biochemistry and Biotechnology, 48(1): 37-43.
Chet, I.,Inbar, J. & Hadar, Y. 1997. Fungal antagonists and mycoparasites. 165–184. In: Wicklow D. T. & Soderstrom B. E. (eds.), The Mycota, IV. Springer Verlag, Berlin, Germany.
Das, M. & Bora, L. 2000. Biological control of bacterial wilt of tomato caused by Ralstonia solanacearum. Journal of the Agricultural Science Society of North-East India, 13 (1):52-55.
Elphinstone J. G. 2005. The current bacterial wilt situation: a global overview. pp. 9–28. In: Allen C., Prior P. & Haywar A. C., (eds.), Bacterial Wilt Disease and the Ralstonia solanacearum Species Complex. APS Press, St. Paul, MN.
Gheshm, R. & Kafi, M. 2009. Industrial Tomato from Cultivation to Harvesting. Secondary publication; Mashhad Jihad Daneshgahi Publications. (In Persian).
Grimault, V. & Prior, P. 1994. Invasiveness of Pseudomonas solanacearum in tomato, eggplant and pepper: A comparative study. European Journal of Plant Pathology, 100: 259-267.
Handelsman, J. & Stabb, E.V. 1996. Biocontrol of soilborne plant pathogens. The Plant Cell, 8 (10): 1855.
Hayward, A.C. 1991. Biology and epidemiology of bacterial wilt caused by Pseudomonas solanacearum. Annual Review of Phytopathology, 29: 65–87.
Howell, C. & Stipanovic, R. 1995. Mechanisms in the biocontrol of Rhizoctonia solani-induced cotton seedling disease by Gliocladium virens: antibiosis. Phytopathology, 85(4): 469-472.
Howell, C. R. 2003. Mechanisms employed by
Trichoderma species in the biological control of plant diseases: The history and evolution of current concepts. Plant Disease, 87(1): 4-10.
Kelman, A. 1953. The bacterial wilt caused by Pseudomonas solanacearum. Technical Bulletin of North Carolina Agricultural Experiment Station, 99.
Khodaei Arbat, A., Taheri, A.H. Pahlevani, M.H. & Niknam, GH. R. 2009. Evaluation of tomato cultivars resistance to root-knot nematode (Meloidogyne javanica Chitwood, 1949). Journal of Plant Production, 16 (1): 45-55.
Kilian, M. Steiner, V. Krebs, B. Junge, H. Schmiedeknecht, G. & Hain, R. 2000. Bacillius subtilis- Fzbz4 mode of action of a microbial ageat enhancing plant vitality. Pflanzzenschutz-Nachrichten Bayer, 1(1): 72-93.
Kim, D.S. Cook, R.J. & Weller, D.M. 1997. Bacillus sp. L324-92 for biologicalcontrol of three root diseases of wheat grown with reduced tillage. Phytopathology, 87: 551-558.
Mohammadi, N. 2010. Studies on pathogenecity and genetic diversity of the some Iranian isolates Fusarium oxysporum f.sp lentis and determination of resistant lentil cultivars. M. SC. Thesis, University of Tarbiat Modares, Iran: 134.
Nguyen, M. & Ranamukhaarachchi, S. 2010. Soil-borne antagonists for biological control of bacterial wilt disease caused by Ralstonia solanacearum in tomato and pepper. Journal of Plant Pathology, 92 (2): 395-406.
Raaijmakers, J. M. & Mazzola, M. 2012. Diversity and natural functions of antibiotics produced by beneficial and plant pathogenic bacteria. Annual review of phytopathology, 50: 403-424.
Reino, J.L. Guerrero, R. F. Hernandez-Galan, R. & Collado, I.G. 2008. Secondary metabolites from species of the biocontrol agent Trichoderma. Phytochemical Review,7 (1): 89-123.
Siddiqui, A. & Shaukat, S. 2004. Systemic resistance in tomato induced by biocontrol bacteria against the root-knot nematode,
Meloidogyne javanica is independent of salicylic acid production. Phytopathology, 152: 48-54.
Wang, J.F. Hanson, P. & Barnes, J. 1998. Worldwide evaluation of an international set of resistance sources to bacterial wilt in tomato. Pp. 269-275. In: Prior, P. Allen, C. & Elphinstone, J. (eds.), Bacterial Wilt Disease: Molecular and Ecological Aspects. Springer, Verlag, Berlin, Germany.
Watts, R. Dahiya, J. Chaudhary, K. & Tauro, P. 1988. Isolation and Characterization of a New Antifungal Metabolite of Trichoderma reseii. Plant and Soil, 107: 81-84.
Yao, V. 2008. Bacillus subtilis and its metabolites as induced resistance agent against aphids feeding on broad bean (
Vicia faba) and Summer wheat (
Triticum aestivum). Dissertation zar Erlargerungdes akademischen Grades, Doctor Agriculturarum.
Zhou, T. Chen, D.Li, C. Sun, Q. Li, L.Liu, F. Shen, Q. & Shen, B. 2012. Isolation and characterization of Pseudomonas brassicacearum J12 as an antagonist against Ralstonia solanacearum and identification of its antimicrobial components. Microbiological Research, 167 (7): 388-394