Original Article

Evaluation of Trichoderma Isolates for their Biocontrol Potential and Plant Growth Promoting Activity

Year: 2025 | Month: September | Volume 18 | Issue 3

References (30)

Abdul-Baki, A.A. and Anderson, J.D. 1973. Vigor determination in soybean seed by multiple criteria 1. Crop Science, 13(6): 630-633.

View at Google Scholar

Abdullah, M.T., Ali, N.Y. and Suleman, P. 2008. Biological control of Sclerotinia sclerotiorum (Lib.) de Bary with Trichoderma harzianum and Bacillus amyloliquefaciens. Crop Protection, 27(10): 1354-1359.

View at Google Scholar

Alfiky, A. and Weisskopf, L. 2021. Deciphering Trichoderma– plant–pathogen interactions for better development of biocontrol applications. Journal of Fungi, 7(1): 61.

View at Google Scholar

Almeida, F.B.D.R., Cerqueira, F.M., Silva, R.D.N., Ulhoa, C.J. and Lima, A.L. 2007. Mycoparasitism studies of Trichoderma harzianum strains against Rhizoctonia solani: evaluation of coiling and hydrolytic enzyme production. Biotechnology Letters, 29: 1189-1193.

View at Google Scholar

Alwadai, A.S., Al Wahibi, M.S., Alsayed, M.F., Alshaikh, N.A., Perveen, K. and Elsayim, R. 2024. Molecular characterization of plant growth-promoting Trichoderma from Saudi Arabia. Scientific Reports, 14(1): 23236.

View at Google Scholar

Bader, A.N., Salerno, G.L., Covacevich, F. and Consolo, V.F. 2020. Native Trichoderma harzianum strains from Argentina produce indole-3 acetic acid and phosphorus solubilization, promote growth and control wilt disease on tomato (Solanum lycopersicum L.). Journal of King Saud University-Science, 32(1): 867-873.

View at Google Scholar

Benítez, T., Rincón, A.M., Limón, M.C. and Codon, A.C. 2004. Biocontrol mechanisms of Trichoderma strains. International Microbiology, 7(4): 249-260.

View at Google Scholar

Bhatt, B. and Sharma, G. 2024. Studying the aggressiveness of Sclerotinia Sclerotiorum (Lib.) de Bary isolates from multiple hosts on tomato cultivars. Indian Phytopathology, 77(2): 355-361.

View at Google Scholar

Bolton, M.D., Thomma, B.P.H.J. and Nelson, B.D. 2006. Sclerotinia sclerotiorum (Lib.) de Bary: biology and molecular traits of a cosmopolitan pathogen. Mol. Plant Pathol., 7: 1–16.

View at Google Scholar

Bonanomi, G., Lorito, M., Vinale, F. and Woo, S.L. 2018. Organic amendments, beneficial microbes, and soil microbiota: toward a unified framework for disease suppression. Annual Review of Phytopathology, 56(1): 1-20.

View at Google Scholar

Brick, J.M., Bostock, R.M. and Silverstone, S.E. 1991. Rapid in-situ assay for indole acetic acid production by bacteria immobilized on nitrocellulose membrane. Appl. Environ. Microbiol., 57: 535–538.

View at Google Scholar

Burton-Freeman, B. and Reimers, K. 2011. Tomato consumption and health: emerging benefits. Am. J. Lifestyle Med., 5: 182–191.

View at Google Scholar

Cai, F., Chen, W., Wei, Z., Pang, G., Li, R., Ran, W. and Shen, Q. 2015. Colonization of Trichoderma harzianum strain SQR-T037 on tomato roots and its relationship to plant growth, nutrient availability and soil microflora. Plant and Soil, 388: 337-350.

View at Google Scholar

Chaverri, P., Castlebury, L.A., Overton, B.E. and Samuels, G.J. 2003. Hypocrea/Trichoderma: species with conidiophore elongations and green conidia. Mycologia 95: 1100–1140.

View at Google Scholar

De Palma, M., D’Agostino, N., Proietti, S., Bertini, L., Lorito, M., Ruocco, M. ... and Tucci, M. 2016. Suppression subtractive hybridization analysis provides new insights into the tomato (Solanum lycopersicum L.) response to the plant probiotic microorganism Trichoderma longibrachiatum MK1. Journal of Plant Physiology, 190: 79-94.

View at Google Scholar

Degani, O., Rabinovitz, O., Becher, P., Gordani, A. and Chen, A. 2021. Trichoderma longibrachiatum and Trichoderma asperellum confer growth promotion and protection against late wilt disease in the field. Journal of Fungi, 7(6): 444.

View at Google Scholar

Dennis, D.C. and Webster, J. 1971 Antagonistic properties of species-groups of Trichoderma. III. Hyphal interactions. Trans Brit. Mycol. Soc., 57: 363–369.

View at Google Scholar

Dennis, C. and Webster, J. 1971. Antagonistic properties of species-groups of Trichoderma: I. Production of nonvolatile antibiotics. Transactions of the British Mycological Society, 57(1): 25-IN3.

View at Google Scholar

Di Matteo, A., Sacco, A., Anacleria, M., Pezzotti, M., Delledonne, M., Ferrarini, A., Frusciante, L. and Barone, A. 2010. The ascorbic acid con tent of tomato fruits is associated with the expression of genes involved in pectin degradation. BMC Plant Biol., 10: 163.

View at Google Scholar

Druzhinina, I.S., Seidl-Seiboth, V., Herrera-Estrella, A., Horwitz, B.A., Kenerley, C.M., Monte, E. ... and Kubicek, C.P. 2011. Trichoderma: the genomics of opportunistic success. Nature Reviews Microbiology, 9(10): 749-759.

View at Google Scholar

Duncan, R.W., Fernando, W.D. and Rashid, K.Y. 2006. Time and burial depth influencing the viability and bacterial colonization of sclerotia of Sclerotinia sclerotiorum. Soil Biol. Biochem., 38: 275–284.

View at Google Scholar

Elad, Y., Chet, I. and Henis, Y. 1981. A selective medium for improving quantitative isolation of Trichoderma spp. from soil. Phytoparasitica, 9: 59-67.

View at Google Scholar

El-Saadony, M.T., Saad, A.M., Soliman, S.M., Salem, H.M., Ahmed, A.I., Mahmood, M. ... and AbuQamar, S.F. 2022. Plant growth-promoting microorganisms as biocontrol agents of plant diseases: Mechanisms, challenges and future perspectives. Frontiers in Plant Science, 13: 923880.

View at Google Scholar

Ferreira, F.V. and Musumeci, M.A. 2021. Trichoderma as biological control agent: Scope and prospects to improve efficacy. World Journal of Microbiology and Biotechnology, 37(5): 90.

View at Google Scholar

Fontenelle, A.D.B., Guzzo, S.D., Lucon, C.M.M. and Harakava, R. 2011. Growth promotion and induction of resistance in tomato plant against Xanthomonas euvesicatoria and Alternaria solani by Trichoderma spp. Crop Prot., 30: 1492–1500.

View at Google Scholar

Gams, W. and Bissett, J. 2002. Morphology and identification of Trichoderma. Trichoderma and Gliocladium, 1: 3-34.

View at Google Scholar

Gomaa, N.A., Mahdy, A.M.M., Fawzy, R.N. and Ahmed, G.A. 2016. Integrated management of tomato white mold disease caused by Sclerotinia sclerotiorum using the combined treatments of compost, chemical inducers and fungicides. Middle East J. Agric., 5: 479–486.

View at Google Scholar

Haddad, P.E., Leite, L.G., Lucon, C.M.M. and Harakava, R. 2017. Selection of Trichoderma spp. strains for the control of Sclerotinia sclerotiorum in soybean. Pesquisa Agropecuária Brasileira, 52(12): 1140-1148.

View at Google Scholar

Hajieghrari, B. and Mohammadi, M. 2016. Growth-promoting activity of indigenous Trichoderma isolates on wheat seed germination, seedling growth and yield. Australian Journal of Crop Science, 10(9): 1339-1347.

View at Google Scholar

Hampton, J.G. 1993. The ISTA perspective of seed vigor testing. Journal of Seed Technol., 17(2): 105-109.

View at Google Scholar

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