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Pakistan Journal of Biological Sciences

Year: 2004 | Volume: 7 | Issue: 4 | Page No.: 478-484
DOI: 10.3923/pjbs.2004.478.484
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Research Article

Biological Control with Trichoderma Spp. With Emphasis on T. harzianum

Nusret Ozbay and Steven E. Newman

ABSTRACT


Biocontrol with antagonistic microbes such as the fungus Trichoderma is one area of research. Trichoderma spp. are among the most common saprophytic fungi. Trichoderma spp. are well documented as effective biological control agents of plant diseases caused by both soilborne fungi and leaf- and fruit-infecting plant pathogenic fungi. Trichoderma spp. are often very fast growing and rapidly colonize substrates, thus excluding pathogens such as Fusarium spp. Several of these fungi are also parasitic to other fungi including plant pathogens. Trichoderma harzianum Rifai is an efficient biocontrol agent that is commercially produced to prevent development of several soil pathogenic fungi. T. harzianum alone or in combination with other Trichoderma species can be used in biological control of several plant diseases. An additional advantage for T. harzianum is that it increases growth in various plants. This review discussed biological control with Trichoderma spp. with emphasis on T. harzianum Biological Control with Trichoderma spp. with emphasis on T. harzianum and numerous mechanisms that Trichoderma spp. have evolved in attacking other fungi and enhancing plant and root growth
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How to cite this article

Nusret Ozbay and Steven E. Newman, 2004. Biological Control with Trichoderma Spp. With Emphasis on T. harzianum. Pakistan Journal of Biological Sciences, 7: 478-484.

DOI: 10.3923/pjbs.2004.478.484

URL: https://scialert.net/abstract/?doi=pjbs.2004.478.484

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REFERENCES


  1. Cook, R.J. and K.F. Baker, 1983. The Nature and Practice of Biological Control of Plant Pathogens. America Phytopathology Society, St. Paul, Minnesota.

  2. Sivan, A., Y. Elad and I. Chet, 1984. Biological control effects of a new isolate of Trichoderma harzianum on Pythium aphanidermatum. Phytopathology, 74: 498-501.

  3. Coley-Smith, J.R., C.J. Ridout, C.M. Mitchell and J.M. Lynch, 1991. Control of bottom rot disease of lettuce (Rhizoctonia solani) using preparations of Trichoderma viride, T. harzianum or tolclofos-methy. Plant Pathol., 40: 359-366.
    Direct Link

  4. Papavizas, G.C., 1985. Trichoderma and Gliocladium: Biology, ecology and potential for biocontrol. Annu. Rev. Phytopathol., 23: 23-54.
    CrossRefDirect Link

  5. Harman, G.E., 1996. Trichoderma for biocontrol of plant pathogens: From basic research to commercialization products. Cornell Community Conference on Biological Control.

  6. Samuels, G.J., 1996. Trichoderma: A review of biology and systematics of the genus. Mycol. Res., 100: 923-935.

  7. Weindling, R., 1932. Trichoderma lignorum as a parasite of other soil fungi. Phytopathology, 32: 837-845.

  8. Weindling, R., 1934. Studies on the lethal principle effective in the parasitic action of Trichoderma lignorum on Rhizoctonia solani and other soil fungi. Phytopathology, 24: 1153-1179.

  9. Weindling, R. and H.S. Fawcett, 1936. Experiments in the control of Rhizoctonia damping-off of citrus seedlings. Hilgardia, 10: 1-16.

  10. Tronsmo, A. and C. Dennis, 1977. The use of Trichoderma species to control strawberry fruit rots. Netherland J. Plant Pathol., 83: 449-455.
    CrossRef

  11. Elad, Y., I. Chet, P. Boyle and Y. Henis, 1983. Parasitism of Trichoderma spp. on Rhizoctonia solani and Sclerotium rolfsiibscanning electron microscopy and fluorescence microscopy. Phytopathology, 73: 85-88.

  12. Elad, Y., G. Zimand, Y. Zaqs, S. Zuriel and I. Chet, 1993. Use of Trichoderma harzianum in combination or alternation with fungicides to control cucumber grey mould (Botrytis cinerea) under commercial greenhouse conditions. Plant Pathol., 42: 324-332.
    CrossRefDirect Link

  13. Sutton, J.C. and G. Peng, 1993. Biocontrol of Botrytis cinerea in strawberry leaves. Phytopathology, 83: 615-621.
    CrossRef

  14. Datnoff, L.E., S. Nemec and K.L. Pernezny, 1995. Biological control of fusarium crown and root rot of tomato in Florida using Trichoderma harzianum and Glomus intraradices. J. Biol. Control, 5: 427-431.
    Direct Link

  15. Monte, E., 2001. Understanding Trichoderma: Between biotechnology and microbial ecology. Int. Microbiol., 4: 1-4.
    PubMedDirect Link

  16. Lewis, J.A. and G.C. Papavizas, 1991. Biocontrol of plant diseases the approach for tomorrow. Crop Protect., 10: 95-105.
    Direct Link

  17. Elad, Y., 2000. Biological control of foliar pathogens by means of Trichoderma harzianum and potential modes of action. Crop Protect., 19: 709-714.
    CrossRefDirect Link

  18. Paulitz, T.C. and R.R. Belanger, 2001. Biological control in greenhouse systems. Annu. Rev. Phytopathol., 39: 103-133.
    CrossRefPubMed

  19. Elad, Y., D.R. David, T. Levi, A. Kapat and B. Kirshner, 1999. Trichoderma harzianum T-39-Mechanisms of Biocontrol of Foliar Pathogens. In: Modern Fungicides and Antifungal Compounds II, Lyr, H., P.E. Russell, H.W. Dehne and H.D. Sisler (Eds.). Intercept Limited, Andover, Hants, UK., pp: 459-467.

  20. Haran, S., H. Schickler, A. Oppenheim and I. Chet, 1996. Differential expression of Trichoderma harzianum chitinases during mycoparasitism. Phytopathology, 86: 980-985.

  21. Lorito, M., V. Farkas, S. Rebuffat and C. Kubieck, 1996. Cell wall synthesis is a major target of mycoparasitic antagonism by Trichoderma harzianum. J. Bacteriol., 178: 6382-6385.
    Direct Link

  22. Lorito, M., G.E. Harman, C.K. Hayes, R.M. Broadway, T. Troncoso, S.L. Woo and A. Di Pietro, 1993. Chitynolytic enzymes produced by Trichoderma harzianum: Antifungal activity of purified endochitinase and chitobiase. Phytopathology, 83: 302-307.

  23. Sivasithamparam, K. and F.L. Ghisalberti, 1998. Secondary Metabolism Trichoderma and Gliocladium. In: Trichoderma and Gliocladium, Kubicek, C.P. and G.E. Harman (Eds.). Taylor and Francis Ltd., London, pp: 139-191.

  24. Roco, A. and L.M. Perez, 2001. In vitro biocontrol activity of Trichoderma harzianum on Alternaria alternata in the presence of growth regulators. Elect. J. Biotechnol., 4: 22-32.
    Direct Link

  25. Yedidia, I., N. Benhamou and I. Chet, 1999. Induction of defense responses in cucumber plants (Cucumis sativus L.) By the biocontrol agent Trichoderma harzianum. Applied Environ. Microbiol., 65: 1061-1070.
    PubMedDirect Link

  26. Yedidia, I., N. Benhamou, Y. Kapulnik and I. Chet, 2000. Induction and accumulation of PR proteins activity during early stages of root colonization by the mycoparasite Trichoderma harzianum strain T-203. Plant Physiol. Biochem., 38: 863-873.
    CrossRefDirect Link

  27. Harman, G.E., 1992. The development and benefits of rhizosphere competent fungi for biological control of plant pathogens. J. Plant Nutr., 15: 835-843.

  28. Howell, C.R., 2003. Mechanisms employed by Trichoderma species in the biological control of plant diseases: The history and evolution of current concepts. Plant Dis., 87: 4-10.
    CrossRefDirect Link

  29. Ahmad, J.S. and R. Baker, 1987. Competitive-saprophytic ability and cellulolytic activity of rhizosphere-competent mutants of Trichoderma harzianum. Phytopathology, 77: 358-362.
    Direct Link

  30. Harman, G.E., 2000. Myths and Dogmas of Biocontrol Changes in Perceptions Derived from Research on Trichoderma harzinum T-22. Plant Dis., 84: 377-393.
    CrossRefDirect Link

  31. Harman, G.E., 2001. Trichoderma spp., including T. harzianum, T. viride, T. koningii, T. hamatum and other spp. http://www.nysaes.cornell.edu/ent/biocontrol/pathogens/trichoderma.html.

  32. Sivan, A. and I. Chet, 1989. The possible role of competition between Trichoderma harzianum and Fusarium oxysporum on rhizosphere colonization. Phytopatholgy, 79: 198-203.
    Direct Link

  33. Utkhede, R., C. Bogdanoff and J. McNevin, 2001. Effects of biological and chemical treatments on Botrytis stem canker and fruit yield of tomato under greenhouse conditions. Can. J. Plant Pathol., 23: 253-259.
    Direct Link

  34. Dubos, B., 1987. Fungal Antagonism in Aerial Agrobiocenoses. In: Innovative Approaches to Plant Disease Control, Chet, I. (Ed.). John Willey and Sons, New York, pp: 107-135.

  35. Marchetti, R., P. Nipoti, N. Dercole and M.E. Guerzoni, 1992. Competition at atmosphere level as biocontrol mechanism in Trichoderma spp. Petria, 2: 137-147.

  36. Dennis, C. and J. Webster, 1971. Antagonistic properties of species-groups of Trichoderma. II. Production of volatile antibiotics. Trans. Br. Mycol. Soc., 57: 41-48.
    CrossRef

  37. Dennis, C. and J. Webster, 1971. Antagonistic properties of species-groups of Trichoderma. III. Hyphal interaction. Trans. Br. Mycol. Soc., 57: 363-369.
    CrossRef

  38. Howell, C.R. and R.D. Stipanovic, 1983. Gliovirin, a new antibiotic from Gliocladium virens and its role in the biological control of Pythium ultimum. Can. J. Microbiolol., 29: 321-324.
    Direct Link

  39. Lifshitz, R., M.T. Windhan and R. Baker, 1986. Mechanism of biological control of preemergence damping-off of pea by seed treatment with Trichoderma spp. Phytopathology, 76: 720-725.
    Direct Link

  40. Bell, D.K., H.D. Wells and C.R. Markham, 1982. In vitro antagonism of Trichoderma species against six fungal plant pathogens. Phytopathology, 72: 379-382.
    CrossRefDirect Link

  41. Ghisalberti, E.L. and K. Sivasithamparam, 1991. Antifungal antibiotics produced by Trichoderma spp. Soil Biol. Biochem., 23: 1011-1020.
    Direct Link

  42. Wilhite, S.E., R.D. Lumsden and D.C. Straney, 1994. Mutational analysis of gliotoxin production by the biocontrol fungus Gliocladium virens in relation to suppression of Pythium damping-off. Phytopathology, 84: 866-872.
    Direct Link

  43. Howell, C.R. and R.D. Stipanovic, 1995. Mechanisms in the biocontrol of Rhizoctonia solani-induced cotton seedling disease by Gliocladium virens: Antibiosis. Phytopathology, 85: 508-512.
    Direct Link

  44. Chet, I., G.E. Harman and R. Baker, 1981. Trichoderma hamatum: Its hyphal interactions with Rhizoctonia solani and Pythium spp. Microbiol. Ecol., 7: 29-38.
    CrossRefDirect Link

  45. Tronsmo, A., 1996. Trichoderma harzianum in Biological Control of Fungal Diseases. In: Principles and Practice of Managing Soilborne Plant Pathogens, Hall, R. (Ed.). Chapter 10, American Phytopathology Society, St. Paul, MN., USA., ISBN-13: 9780890542231, pp: 213-236.

  46. Lorito, M., S.L. Woo, M. D'Ambrosio, G.E. Harman, C.K. Hayes, C.P. Kubicek and F. Scala, 1996. Synergistic interaction between cell wall degrading enzymes and membrane affecting compounds. Mol. Plant Microbe Interact., 9: 206-213.
    Direct Link

  47. Cherif, M. and N. Benhamou, 1990. Cytochemical aspects of chitin breakdown during the parasitic action of a Trichoderma sp. on Fusarium oxysporum f. sp. radicis-lycopersici. Phytopathology, 80: 1406-1414.
    Direct Link

  48. Lorito, M., S.L. Woo, I.G. Fernandez, G. Colucci and G.E. Harman et al., 1998. Genes from mycoparasitic fungi as a source for improving plant resistance to fungal pathogens. Proc. Natl. Acad. Sci. USA., 95: 7860-7865.

  49. El-Katatny, M.H., M. Gudelj, K.H. Robra, M.A. El-Elnaghy and G.M. Gubitz, 2001. Characterization of a chitinase and an endo-a-1,3-glucanase from Trichoderma harzianum Rifai T24 involved in control of the phytopathogen Sclerotium rolfsii. Applied Microbiol. Biotechnol., 56: 137-143.

  50. Harman, G.E., I. Chet and R. Baker, 1980. Trichoderma hamatun effects on seed and seedling disease induced in radish and pea by Pythium spp. or Rhizoctonia solani. J. Phytopathol., 70: 1167-1172.

  51. Chet, I. and R.R. Baker, 1981. Isolation and biocontrol potential of Trichoderma hamatum from soil naturally suppressive to Rhizoctonia solani. Phytopathology, 71: 286-290.
    CrossRefDirect Link

  52. Aziz, N.H., M.Z. El-Fouly, A.A. El-Essawy and M.A. Khalaf, 1997. Influence of bean seedling root exudates on the rhizosphere colonization by Trichoderma lignorum for the control of Rhizoctonia solani. Bot. Bull. Acad. Sinica, 38: 33-39.
    Direct Link

  53. Varaschin, C., A. Prosperi and M.M. Astiz Gasso, 2000. Biocontrol of Rhizoctonia solani with strains of Trichoderma spp. under greenhouse conditions. Proceedings of the 5th International PGPR Workshop. Villa Carlos Paz Cordoba, Argentina. http://www.ag.auburn.edu/argentina/pdfmanuscripts/varaschin4.pdf.

  54. Lewis, J.A., R.D. Lumsden, 2001. Boicontrol of damping-off of greenhouse-grown crops caused by Rhizoctonia solani with a formulation of Trichoderma spp. Crop Protect., 20: 49-56.
    CrossRef

  55. Kohl, J. and E. Schlosser, 1992. Antagonism Against Rhizoctonia Solani and Cellulolytic Activity of Strains of Trichoderma sp. In: Biological Control of Plant Diseases, James, E.C., G.C. Papavizas and R.J. Cook (Eds.). Plenum Press, New York, pp: 331-332.

  56. Howell, C.R., 1987. Relevance of mycoparasitism in the biological control of Rhizoctonia solani by Gliocladium virens. Phytopathology, 77: 992-994.
    CrossRef

  57. Bailey, B.A. and R.D. Lumsden, 1998. Direct Effects of Trichoderma and Gliocladium on Plant Growth and Resistance to Pathogens. In: Trichoderma and Gliocladium: Enzymes, Biological Control and Commercial Applications, Kubicek, C.P., G.E. Harman and K.L. Ondik (Eds.). Taylor and Francis, London, pp: 185-204.
    Direct Link

  58. De Meyer, G., J. Bigirimana, Y. Elad and M. Hofte, 1998. Induced systemic resistance in Trichoderma harzianum T39 biocontrol of Botrytis cinerea. Eur. J. Plant Pathol., 104: 279-286.
    CrossRef

  59. Audenaert, K., G. De Meyer and M. Hofte, 1998. Control of Botrytis in tomato (Lycopersicon esculentum Mill.) via induced resistance. Proceedings of the FLTBW 4th PhD Symposium. Auditorium De Vleeshauwer Faculty Agricultural and Applied Biological Sciences, Ghent University.

  60. Khan, L., V. Madden and H.A.J. Hoitink, 2001. Systemic resistance induced in cucumber against phytophthora crown rot and blight by Trichoderma hamatum 382. Proceedings of the APS Caribbean Division Meeting Abstracts, Jun. 11-15, La Habana, Cuba, pp: S41-S41.

  61. De Meyer, G., K. Audenaert, J. Bigirimana and M. Hofte, 1999. Pseudomonas aeruginosa 7NSK2 and Trichoderma harzianum T39 Induce resistance to Botrytis cinerea on bean and tomato. Proceedings of the 6th International Mycological Congress, (IMC`1999), Jerusalem, Israel, pp: 2-2.

  62. Smith, S.E. and D.J. Read, 1997. Mycorrhizal Symbiosis. Academic Press, San Diego.

  63. Wyss, P., T.H. Boller and A. Wiemken, 1992. Testing the effect of biological control agents on the formation of vesicular arbuscular mycorrhizal fungi. Plant Soil, 147: 159-162.
    CrossRef

  64. McAllister, C.B., I. Garcia-Romera, A. Godeas and J.A. Ocampo, 1994. Interactions between Trichoderma koningii, Fusarium solani and Glomus mosseae: Effects on plant growth, arbuscular mycorrhizas and the saprophyte inoculants. Soil Biol. Biochem., 26: 1363-1367.
    Direct Link

  65. Siddiqui, Z.A. and I. Mohmood, 1996. Biological control of Heterodera cajani and Fusarium udum on pigeonpea by Glomus mosseae, Trichoderma harzianum and Verticillium chlamydosporium. Israel J. Plant Sci., 44: 49-56.

  66. Papavizas, G.C., J.A. Lewis and T.H. Abd-El Moity, 1982. Evaluation of new biotypes of Trichoderma harzianum for tolerance to benomyl and enhanced biocontrol capabilities. Phytopathology, 72: 126-132.
    Direct Link

  67. Elad, Y., I. Chet and Y. Henis, 1982. Degradation of plant pathogenic fungi by Trichoderma harzianum. Can. J. Microbiol., 28: 719-725.
    CrossRefDirect Link

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