Effect of Trichoderma-based microbial bioinputs on growth and seedling quality of banana under nursery conditions
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Abdelaziz, M.E., Kim, D., Ali, S., Fedoroff, N.V. and Al-Babili, S., 2014. Specific leaf area, specific leaf weight and photosynthetic rates of sweet pepper as influenced by arbuscular mycorrhizal fungi under water stress. Current Science International, 3(4), pp. 526-533.
Altendorf, S., 2019. Bananas and major tropical fruits in Latin America and the Caribbean. Food Outlook – Biannual Report on Global Food Markets, May 2019, pp. 73-76. Rome: FAO. Available at: https://www.fao.org/fileadmin/templates/est/COMM_MARKETS_MONITORING/Tropical_Fruits/Documents/Food_Outlook_May_2019__Tropical_Fruits_Article_.pdf [Accessed 17 June 2026].
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, 23236. https://doi.org/10.1038/s41598-024-73762-5
Aremu, A.O., Bairu, M.W., Szü?ová, L., Finnie, J.F. and Van Staden, J., 2012. The role of meta-topolins on the photosynthetic pigment profiles and foliar structures of micropropagated ‘Williams’ bananas. Journal of Plant Physiology, 169(15), pp. 1530-1541. https://doi.org/10.1016/j.jplph.2012.06.006
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), pp. 867-873. https://doi.org/10.1016/j.jksus.2019.04.002
Brotman, Y., Landau, U., Cuadros-Inostroza, Á., Takayuki, T., Fernie, A.R., Chet, I., Viterbo, A. and Willmitzer, L., 2013. Trichoderma-plant root colonization: escaping early plant defense responses and activation of the antioxidant machinery for saline stress tolerance. PLOS Pathogens, 9(3), pp..e1003221. https://doi.org/10.1371/journal.ppat.1003221
Chen, Y., Fu, Y., Xia, Y., Miao, Y., Shao, J., Xuan, W., Liu, Y., Xun, W., Yan, Q., Shen, Q. and Zhang, R., 2024. Trichoderma-secreted anthranilic acid promotes lateral root development via auxin signaling and RBOHF-induced endodermal cell wall remodeling. Cell Reports, 43(4), pp.114030. https://doi.org/10.1016/j.celrep.2024.114030
Cochavi, A., Cohen, I.H. and Rachmilevitch, S., 2020. The role of different root orders in nutrient uptake. Environmental and Experimental Botany, 179, 104212. https://doi.org/10.1016/j.envexpbot.2020.104212
Contreras-Cornejo, H.A., Macías-Rodríguez, L., Cortés-Penagos, C. and López-Bucio, J., 2009. Trichoderma virens, a plant beneficial fungus, enhances biomass production and promotes lateral root growth through an auxin-dependent mechanism in Arabidopsis. Plant Physiology, 149(3), pp. 1579-1592. https://doi.org/10.1104/pp.108.130369
Contreras-Cornejo, H.A., Schmoll, M., Esquivel-Ayala, B.A., González-Esquivel, C.E., Rocha-Ramírez, V. and Larsen, J., 2024. Mechanisms for plant growth promotion activated by Trichoderma in natural and managed terrestrial ecosystems. Microbiological Research, 281, pp.127621. https://doi.org/10.1016/j.micres.2024.127621
Cui, Q., Li, X., Hu, S., Yang, D., Abozeid, A., Yang, Z., Jiang, J., Ren, Z., Li, D., Li, D., Zheng, L. and Qin, A., 2024. The critical role of phenylpropanoid biosynthesis pathway in lily resistance against gray mold. International Journal of Molecular Sciences, 25(20), pp.11068. https://doi.org/10.3390/ijms252011068
Darge, G., Asfere, Y., Landi, D. and Landina Lata, D., 2026. Micropropagation of two banana (Musa spp.) varieties using shoot explant from Gurage Zone, Ethiopia. Heliyon, 12(1), pp.e44499. https://doi.org/10.1016/j.heliyon.2025.e44499
Dawson, W., Bòdis, J., Bucharova, A., Catford, J.A., Duncan, R.P., Fraser, L., Groenteman, R., Kelly, R., Moore, J.L., Pärtel, M., Roach, D., Villellas, J., Wandrag, E.M., Finn, A. and Buckley, Y.M., 2024. Root traits vary as much as leaf traits and have consistent phenotypic plasticity among 14 populations of a globally widespread herb. Functional Ecology, 38(4), pp. 926-941. https://doi.org/10.1111/1365-2435.14504
Deel, H.L., Moore, J.M. and Manter, D.K., 2024. SEMWISE: a national soil health scoring framework for agricultural systems. Applied Soil Ecology, 195, pp.105273. https://doi.org/10.1016/j.apsoil.2024.105273
Dickson, A., Leaf, A.L. and Hosner, J.F., 1960. Quality appraisal of white spruce and white pine seedling stock in nurseries. The Forestry Chronicle, 36(1), pp. 10-13. https://doi.org/10.5558/tfc36010-1
dos Santos, L.B.P.R., Oliveira-Santos, N., Novais, D.P.S. de, Cruz-Magalhães, V. and Loguercio, L.L., 2025. Beneficial plants-Trichoderma interactions on host tolerance to abiotic stresses: a meta-analysis. Frontiers in Plant Physiology, 3, pp.1569221. https://doi.org/10.3389/fphgy.2025.1569221
Dutta, P., Mahanta, M., Singh, S.B., Thakuria, D., Deb, L., Kumari, A., Upamanya, G.K., Boruah, S., Dey, U., Mishra, A.K., Vanlaltani, L., VijayReddy, D., Heisnam, P. and Pandey, A.K., 2023. Molecular interaction between plants and Trichoderma species against soil-borne plant pathogens. Frontiers in Plant Science, 14, pp.1145715. https://doi.org/10.3389/fpls.2023.1145715
Eliyanti, E., Zulkarnain, Z., Kartika, E. and Ichwan, B., 2023. The success of banana plantlets acclimatization by the application of Trichoderma-based compost and arbuscular mycorrhizae fungi in growing media. Analele Universit??ii din Oradea, Fascicula Biologie, 30(1), pp. 39-44.
FAO, 2025. Banana Market Review 2024. Rome: Food and Agriculture Organization of the United Nations. Available at: https://openknowledge.fao.org/handle/20.500.14283/cd6159en [Accessed 17 June 2026].
Ferreira, N.C. de F., Ramos, M.L.G. and Gatto, A., 2024. Use of Trichoderma in the production of forest seedlings. Microorganisms, 12(2), pp.237. https://doi.org/10.3390/microorganisms12020237
Fiorentino, N., Ventorino, V., Woo, S.L., Pepe, O., De Rosa, A., Gioia, L., Romano, I., Lombardi, N., Napolitano, M., Colla, G. and Rouphael, Y., 2018. Trichoderma-based biostimulants modulate rhizosphere microbial populations and improve N uptake efficiency, yield, and nutritional quality of leafy vegetables. Frontiers in Plant Science, 9, pp.743. https://doi.org/10.3389/fpls.2018.00743
Freschet, G.T., Kichenin, E. and Wardle, D.A., 2015. Explaining within-community variation in plant biomass allocation: a balance between organ biomass and morphology above vs below ground? Journal of Vegetation Science, 26(3), pp. 431-440. https://doi.org/10.1111/jvs.12259
Galán, V., Rangel, A., López, J., Hernández, J.B.P., Sandoval, J. and Rocha, H.S., 2018. Propagación del banano: técnicas tradicionales, nuevas tecnologías e innovaciones. Revista Brasileira de Fruticultura, 40(5), pp.e-574. https://doi.org/10.1590/0100-29452018574
Gallegos-Cedillo, V.M., Diánez, F., Nájera, C. and Santos, M., 2021. Plant agronomic features can predict quality and field performance: a bibliometric analysis. Agronomy, 11(11), pp.2305. https://doi.org/10.3390/agronomy11112305
Grzelak, M., Pacholczak, A. and Nowakowska, K., 2024. Challenges and insights in the acclimatization step of micropropagated woody plants. Plant Cell, Tissue and Organ Culture, 159(3), pp.72. https://doi.org/10.1007/s11240-024-02923-1
Guzmán-Guzmán, P., Etesami, H. and Santoyo, G., 2025. Trichoderma: a multifunctional agent in plant health and microbiome interactions. BMC Microbiology, 25, pp.434. https://doi.org/10.1186/s12866-025-04158-2
Haase, D.L., 2008. Understanding forest seedling quality. Tree Planters’ Notes, 55(2), pp. 24-30.
Hooks, C.R.R., Wright, M.G., Kabasawa, D.S., Manandhar, R. and Almeida, R.P.P., 2008. Effect of banana bunchy top virus infection on morphology and growth characteristics of banana. Annals of Applied Biology, 153(1), pp. 1-9. https://doi.org/10.1111/j.1744-7348.2008.00233.x
Huang, Z., Zhang, X., Ashton, R.W., Hawkesford, M.J. and Whalley, W.R., 2023. Root phenotyping and root water uptake calculation using soil water contents measured in a winter wheat field. Agricultural Water Management, 290, pp.108607. https://doi.org/10.1016/j.agwat.2023.108607
INEC, 2025. Boletín técnico: Encuesta de Superficie y Producción Agropecuaria Continua (ESPAC) 2024. Quito: Instituto Nacional de Estadística y Censos. Available at: https://www.ecuadorencifras.gob.ec/documentos/web-inec/Estadisticas_agropecuarias/espac/2024/Boletin_tecnico_ESPAC_2024.pdf [Accessed 17 June 2026].
INAMHI, 2024. Clima. Instituto Nacional de Meteorología e Hidrología. Available at: https://servicios.inamhi.gob.ec/clima/ [Accessed 5 May 2026].
Jamil, A., 2021. Antifungal and plant growth promoting activity of Trichoderma spp. against Fusarium oxysporum f. sp. lycopersici colonizing tomato. Journal of Plant Protection Research, 61(3), pp. 243-253. https://doi.org/10.24425/jppr.2021.137950
Koffi, M.C. and Declerck, S., 2015. In vitro mycorrhization of banana (Musa acuminata) plantlets improves their growth during acclimatization. In Vitro Cellular and Developmental Biology - Plant, 51(3), pp. 265-273. https://doi.org/10.1007/s11627-015-9666-0
Kou, X., Han, W. and Kang, J., 2022. Responses of root system architecture to water stress at multiple levels: a meta-analysis of trials under controlled conditions. Frontiers in Plant Science, 13, pp.1085409. https://doi.org/10.3389/fpls.2022.1085409
Kumar, N., Krishnamoorthy, V., Nalina, L. and Soorianathasundharam, K., 2002. A new factor for estimating total leaf area in banana. Infomusa, 11(2), pp. 42-43. Available at: https://www.musalit.org/seeMore.php?id=14204 [Accessed 17 June 2026].
Li, R.-X., Cai, F., Pang, G., Shen, Q.-R., Li, R. and Chen, W., 2015. Solubilisation of phosphate and micronutrients by Trichoderma harzianum and its relationship with the promotion of tomato plant growth. PLOS One, 10(6), pp.e0130081. https://doi.org/10.1371/journal.pone.0130081
Lima, J.D., Bravo, N. de S., Rozane, D.E., Nomura, E.S., Silva, S.H.M.G. da and Gomes, E.N., 2020. Waste management of pseudostem to increase the growth of banana seedlings. Acta Agronómica, 69(3), pp. 228-233.
Lombardi, N., Salzano, A.M., Troise, A.D., Scaloni, A., Vitaglione, P., Vinale, F., Marra, R., Caira, S., Lorito, M., d’Errico, G., Lanzuise, S. and Woo, S.L., 2020. Effect of Trichoderma bioactive metabolite treatments on the production, quality, and protein profile of strawberry fruits. Journal of Agricultural and Food Chemistry, 68(27), pp. 7246-7258. https://doi.org/10.1021/acs.jafc.0c01438
Lotito, D., Orazzo, G., Matera, R., Musco, N., Staropoli, A. and Vinale, F., 2024. Beneficial fungal microbes as novel ecosustainable tools for forage crops. Acta IMEKO, 13(1), pp.1-5. https://doi.org/10.21014/actaimeko.v13i1.1670
Mateus-Cagua, D. and Rodríguez-Yzquierdo, G., 2019. Effect of biostimulants on dry matter accumulation and gas exchange in plantain plants (Musa AAB). Revista Colombiana de Ciencias Hortícolas, 13(2), pp. 151-160. https://doi.org/10.17584/rcch.2019v13i2.8460
Meghwal, M.L., Jyothi, M.L., Pushpalatha, P.B., Bhaskar, J., Beena, V.I. and Thulasi, V., 2021. Influence of nutrient sources on chlorophyll content and other leaf parameters of banana Musa (AAB) Nendran. Agricultural Science Digest, 44, pp.118-121. https://doi.org/10.18805/ag.D-5342
Melo, J.N.D.M., Pastori, P.L., Carvalho, A.C.P.P. de, Taniguchi, C.A.K., Borges, W.L. and Silva, C. de F.B. da, 2024. Acclimatization of micropropagated seedlings of banana cv. ‘Prata Catarina’ under different environmental conditions. Brazilian Journal of Agricultural Sciences, 19(4), pp.e3724. https://doi.org/10.5039/agraria.v19i4a3724
Morán-Diez, M.E., Martínez de Alba, Á.E., Rubio, M.B., Hermosa, R. and Monte, E., 2021. Trichoderma and the plant heritable priming responses. Journal of Fungi, 7(4), pp.318. https://doi.org/10.3390/jof7040318
Moreira, F.M., Cairo, P.A.R., Borges, A.L., Silva, L.D. da and Haddad, F., 2021. Investigating the ideal mixture of soil and organic compound with Bacillus sp. and Trichoderma asperellum inoculations for optimal growth and nutrient content of banana seedlings. South African Journal of Botany, 137, pp. 249-256. https://doi.org/10.1016/j.sajb.2020.10.021
Mwangi, A.M.K., Kahangi, E.M., Ateka, E., Onguso, J., Mukhongo, R.W., Mwangi, E.K. and Jefwa, J.M., 2013. Growth effects of microorganisms based commercial products inoculated to tissue cultured banana cultivated in three different soils in Kenya. Applied Soil Ecology, 64, pp. 152-162. https://doi.org/10.1016/j.apsoil.2012.12.002
Nieto-Jacobo, M.F., Steyaert, J.M., Salazar-Badillo, F.B., Nguyen, D.V., Rostás, M., Braithwaite, M., De Souza, J.T., Jimenez-Bremont, J.F., Ohkura, M., Stewart, A. and Mendoza-Mendoza, A., 2017. Environmental growth conditions of Trichoderma spp. affects indole acetic acid derivatives, volatile organic compounds, and plant growth promotion. Frontiers in Plant Science, 8, pp.102. https://doi.org/10.3389/fpls.2017.00102
Ning, Z., Li, Y., Zhao, X., Han, D. and Zhan, J., 2022. Comparison of leaf and fine root traits between annuals and perennials, implicating the mechanism of species changes in desertified grasslands. Frontiers in Plant Science, 12, pp.778547. https://doi.org/10.3389/fpls.2021.778547
Orjeda, G., 1998. Evaluation of Musa germplasm for resistance to Sigatoka diseases and Fusarium wilt: INIBAP technical guidelines 3. Montpellier: International Plant Genetic Resources Institute; International Network for the Improvement of Banana and Plantain; ACP-EU Technical Centre for Agricultural and Rural Cooperation. https://alliancebioversityciat.org/publications-data/global-evaluation-musa-germplasm-resistance-fusarium-wilt-mycosphaerella-leaf?__cf_chl_f_tk=9XFXpQW3sGc1y9sCiAdH_vUZ.G3XQw_S.7ndn9OQED0-1783011516-1.0.1.1-v68gEukKCLzs_27JB3Fgbm2E_PkAWNd6eh2QlriGSfw
Pérez-Harguindeguy, N., Díaz, S., Garnier, E., Lavorel, S., Poorter, H., Jaureguiberry, P., Bret-Harte, M.S., Cornwell, W.K., Craine, J.M., Gurvich, D.E., Urcelay, C., Veneklaas, E.J., Reich, P.B., Poorter, L., Wright, I.J., Ray, P., Enrico, L., Pausas, J.G., De Vos, A.C. and Cornelissen, J.H.C., 2013. New handbook for standardised measurement of plant functional traits worldwide. Australian Journal of Botany, 61(3), pp. 167-234. https://doi.org/10.1071/BT12225
Poorter, H., Niklas, K.J., Reich, P.B., Oleksyn, J., Poot, P. and Mommer, L., 2012. Biomass allocation to leaves, stems and roots: meta-analyses of interspecific variation and environmental control. New Phytologist, 193(1), pp. 30-50. https://doi.org/10.1111/j.1469-8137.2011.03952.x
Radford, P.J., 1967. Growth analysis formulae — their use and abuse. Crop Science, 7(3), pp. 171-175. https://doi.org/10.2135/cropsci1967.0011183X000700030001x
Ramírez-Torres, D.C., Hernández-Domínguez, C., Acosta-Dominguillo, S., Reyes-López, D., Vázquez-Cruz, F. and Domínguez-Perales, L.A., 2023. Hydrogel and endophytic fungi Trichoderma longibrachiatum; a combination method to ex vitro acclimatization of banana plants. Cogent Food and Agriculture, 9(2), pp.2278930. https://doi.org/10.1080/23311932.2023.2278930
Rodrigues, A.J.O., Silva, C.F.B., Sousa, A.B.O., Bezerra, M.A., Sanó, L. and Faheina Júnior, G.S., 2022. Biostimulant in acclimatization of micropropagated banana (Musa spp.) seedlings. Brazilian Journal of Agricultural Sciences, 17(1), pp.e1647. https://doi.org/10.5039/agraria.v17i1a1647
Sanó, L., Oliveira, L.L.B. de, Leão, M.D.M., Santos, J.E. de Á. dos, Medeiros, S.C. de, Schneider, F., Sousa, A.B.O. de, Taniguchi, C.A.K., Muniz, C.R., Grangeiro, T.B. and Silva, C. de F.B. da, 2022. Trichoderma longibrachiatum as a biostimulant of micropropagated banana seedlings under acclimatization. Plant Physiology and Biochemistry, 190, pp. 184-192. https://doi.org/10.1016/j.plaphy.2022.09.008
Santangeli, M., Steininger-Mairinger, T., Vetterlein, D., Hann, S. and Oburger, E., 2024. Maize (Zea mays L.) root exudation profiles change in quality and quantity during plant development – a field study. Plant Science, 338, pp.111896. https://doi.org/10.1016/j.plantsci.2023.111896
Santoyo, G., Orozco-Mosqueda, M. del C., Afridi, M.S., Mitra, D., Valencia-Cantero, E. and Macías-Rodríguez, L., 2024. Trichoderma and Bacillus multifunctional allies for plant growth and health in saline soils: recent advances and future challenges. Frontiers in Microbiology, 15, pp.1423980. https://doi.org/10.3389/fmicb.2024.1423980
Seidel, S.J., Ahmadi, S.H., Weihermüller, L., Couëdel, A., Lopez, G., Behrend, D., Kamali, B., Gaiser, T. and Hernández-Ochoa, I.M., 2024. The overlooked effects of environmental impacts on root:shoot ratio in experiments and soil-crop models. Science of The Total Environment, 955, pp.176738. https://doi.org/10.1016/j.scitotenv.2024.176738
Senizza, B., Araniti, F., Lewin, S., Wende, S., Kolb, S. and Lucini, L., 2023. Trichoderma spp.-mediated mitigation of heat, drought, and their combination on the Arabidopsis thaliana holobiont: a metabolomics and metabarcoding approach. Frontiers in Plant Science, 14, pp.1190304. https://doi.org/10.3389/fpls.2023.1190304
Shalaby, T.A., El-Bialy, S.M., El-Mahrouk, M.E., Omara, A.E.-D., El-Beltagi, H.S. and El-Ramady, H., 2022. Acclimatization of in vitro banana seedlings using root-applied bio-nanofertilizer of copper and selenium. Agronomy, 12(2), pp.539. https://doi.org/10.3390/agronomy12020539
Shao, Y., Gu, S., Peng, H., Zhang, L., Li, S., Berendsen, R.L., Yang, T., Dong, C., Wei, Z., Xu, Y. and Shen, Q., 2025. Synergic interactions between Trichoderma and the soil microbiomes improve plant iron availability and growth. npj Biofilms and Microbiomes, 11(1), pp.56. https://doi.org/10.1038/s41522-025-00684-z
Shukla, S., Bhutani, R., Gupta, N., Shukla, S.K., Raman, T., El-Sheikh, M.A., Elansary, H.O. and Moussa, I.M., 2025. Studies on banana for propagation, conservation and genome analysis. Cogent Food and Agriculture, 11(1), pp.2447898. https://doi.org/10.1080/23311932.2024.2447898
Turner, D.W., Fortescue, J.A. and Thomas, D.S., 2007. Environmental physiology of the bananas (Musa spp.). Brazilian Journal of Plant Physiology, 19(4), pp. 463-484. https://doi.org/10.1590/S1677-04202007000400013
Wang, C., He, J., Zhao, T.-H., Cao, Y., Wang, G., Sun, B., Yan, X., Guo, W. and Li, M.-H., 2019. The smaller the leaf is, the faster the leaf water loses in a temperate forest. Frontiers in Plant Science, 10, pp.58. https://doi.org/10.3389/fpls.2019.00058
Woo, S.L., Hermosa, R., Lorito, M. and Monte, E., 2023. Trichoderma: a multipurpose, plant-beneficial microorganism for eco-sustainable agriculture. Nature Reviews Microbiology, 21(5), pp. 312-326. https://doi.org/10.1038/s41579-022-00819-5
Xiang, D., Yang, X., Liu, B., Chu, Y., Liu, S. and Li, C., 2023. Bio-priming of banana tissue culture plantlets with endophytic Bacillus velezensis EB1 to improve Fusarium wilt resistance. Frontiers in Microbiology, 14, pp.1146331. https://doi.org/10.3389/fmicb.2023.1146331
Yao, X., Guo, H., Zhang, K., Zhao, M., Ruan, J. and Chen, J., 2023. Trichoderma and its role in biological control of plant fungal and nematode disease. Frontiers in Microbiology, 14, pp.1160551. https://doi.org/10.3389/fmicb.2023.1160551
Zhiminaicela Cabrera, J.B., Quevedo Guerrero, J.N. and García Batista, R.M., 2020. La producción de banano en la provincia de El Oro y su impacto en la agrobiodiversidad. Revista Metropolitana de Ciencias Aplicadas, 3(3), pp. 189-195.
URN: http://www.revista.ccba.uady.mx/urn:ISSN:1870-0462-tsaes.v29i2.70395
DOI: http://dx.doi.org/10.56369/tsaes.7039
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