Natural minerals as a means of limiting Phytophthora infestans and Alternaria solani on tomato
Katya Vasileva

, Georgy Velichkov, Vinelina Yankova

Abstract: Effective disease management requires the implementation of alternative and environmentally friendly approaches, including the use of natural mineral materials with the potential for direct and indirect suppression of phytopathogens. The aim of the study was to evaluate the effectiveness of natural mineral products (Glauconite, Dolomite), their combinations and Fertilex Silicon on the pathogens Phytophthora infestans and Alternaria solani on tomato, in vitro and in vivo experiments. In vitro results show that all mineral variants significantly suppress mycelial growth, with inhibition in Ph. infestans reaching 82 - 100%, and in A. solani – 40 - 100%. The highest activity was demonstrated by Fertilex Silicon, which completely blocked the growth of the pathogens. Dolomite and Glauconite exhibit moderate to high activity, and the combined variants have a stable, but not synergistic effect. In vivo experience confirmed the trends from laboratory tests. All treated variants significantly reduced the disease infestation index compared to the control, with Fertilex Silicon showing the strongest effect, followed by Dolomite 1.5% and Glauconite 1.5%. Mineral products, at higher concentrations and in combination, provide stable and moderate disease suppression. The results obtained show that these products have direct fungicidal activity and contribute to increasing the physiological resistance of plants, and can be a valuable component in integrated disease management strategies.
Keywords: biological testing; mineral products; pathogens
Citation: Vasileva, K., Velichkov, G. & Yankova, V. (2026). Natural minerals as a means of limiting Phytophthora infestans and Alternaria solani on tomato. Bulg. J. Agric. Sci., 32(3), 674–683
| References: (click to open/close) | Abbott, W. S. (1925). A method of computing the effectiveness of an insecticide. J. Econ. Entomol., 18(2), 265 - 267. Acheuk, F., Basiouni, S., Shehata, A. A., Dick, K., Hajri, H., Lasram, S. & Ntougias, S. (2022). Status and prospects of botanical biopesticides in Europe and Mediterranean countries. Biomolecules, 12(2), 311. Arrieta, R. G., Gualberto, C. D. A. C., Prudente, T. S., Santos, G. A., Silveira, L. H., Nicchio, B. & Pereira, H. S. (2020). Glauconitic Siltstone as a Source of Potassium, Silicon and Manganese for Flooded Rice. Journal of Agricultural Science, 12(9), 96. Cataldo, E., Fucile, M. & Mattii, G. B. (2021). A review: Soil management, sustainable strategies and approaches to improve the quality of modern viticulture. Agronomy, 11(11), 2359. Conversa, G., Pacifico, S., La Rotonda, P., Lazzizera, C., Bonasia, A. & Elia, A. (2024). Foliar application of natural zeolites affects the growth and productivity of processing tomatoes. European Journal of Agronomy, 154, 127100. Dong, S. & Zhou, Sq. (2022). Potato late blight caused by Phytophthora infestans: From molecular interactions to integrated management strategies. Journal of Integrative Agriculture, 21(12), 3456 - 3466. Gorelnikova, Е., Larionova, О., Hapcev, Z., Stepanov, S. & Zjajnitdinov, D. (2018). Biotechnological approaches to the use of glauconite in agriculture. Agrarian Scientific Journal, 2018(5), 11 - 15. Gupta, I., Singh, R., Muthusamy, S., Sharma, M., Grewal, K., Singh, H. P. & Batish, D. R. (2023). Plant essential oils as biopesticides: Applications, mechanisms, innovations, and constraints. Plants, 12(16), 2916. Ivanov, A. A., Ukladov, E. O. & Golubeva, T. S. (2021). Phytophthora infestans: An overview of methods and attempts to combat late blight. Journal of Fungi, 7(12), 1071. Jyothsna, K., Basavaraj, S. Y. & Aakash, A. (2024). Effect of dolomite on growth, productivity, economics of groundnut and soil properties in alfisols. International Journal of Plant & Soil Science, 36(6), 382 - 389. McKinney, H. H. (1923). A new system of grading plant diseases. J. Agricult. Res., 26(2), 195 - 218. Mugao, L. (2023). Morphological and molecular variability of Alternaria solani and Phytophthora infestans causing tomato blights. International Journal of Microbiology, 2023, Article 8951351. Naeem, M. Y., Gaipov, T., Rakhmetova, Y., Umarov, Y., Selamoglu, Z., Monisha, D., Shivmuni, P. & Ravichandran, S. (2024). Glauconite: A green mineral with agricultural potential. In Environment in the 21st Century (Vol. IV). KD Publications. Resigia, E. & Kristina, N. (2025). Response of Peking Shallot (Allium ascalonicum L.) to Dolomite and Granular Guano Application on Recovered Lowland Ultisol by Goat Manure. Jurnal Agrinika: Jurnal Agroteknologi dan Agribisnis, 9(02). Shaaban, M., Wu, L., Younas, A. & Wu, Y. (2025). Remediation of cadmium-polluted acidic soil with dolomite and calcite to enhance soil health and pak choi growth. Plant, Soil and Environment, 71(12), 873 - 882. Shabana, M. M. A., Alhaithloul, H. A. S., Alaida, M. F., ElGhannam, M. K., El-Sherief, A. E., Badawy, A. F. M., Shokr, M., Rebouh, N. Y. & El-Sharkawy, M. (2026). Utilizing glauconite extracts to enhance soil health and sugar beet (Beta vulgaris L.) performance in salt-affected soil. PLOS ONE, 21(2), e0337492. Shchemelinina, T. N., Kotova, O. B., Harja, M., Anchugova, E. M., Pelovski, Y. & Cretescu, I. (2017). New trends in the mechanisms of increasing productivity of mineral-based materials. IG Komi NC UrO RAN newspaper, (6). Vasileva, K. (2023). Study of the influence of plant extracts on the mycelium growth of Alternaria solani. Agricultural Sciences/Agrarni Nauki, 15(39), 74 - 78. Xalmuratova, N. E. (2025). The Main Directions of Using Glauconite. American Journal of Applied Science and Technology, 5(8), 33 - 35. DOI: 10.37547/ajast/Volume05Issue08-05. https://support.office.com. |
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| Date published: 2026-06-25
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