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Dose-response evaluation of chitosan, nanostructured silicon and micronutrient microcapsules on the yield of Cucumis sativus L. under greenhouse conditions

Дата публикации: 13-08-2026 00:00:00

The low efficiency of conventional fertilization limits nutrient use in intensive horticultural crops; therefore, microencapsulated bioinputs represent an alternative to improve cucumber productivity under greenhouse conditions. This study aimed to evaluate the dose-dependent response of growth, productive components and yield of Cucumis sativus L. to foliar application of chitosan and micronutrient microcapsules with SiO₂ nanoparticles. The experiment was carried out under greenhouse conditions at the Technical State University of Quevedo, Ecuador, with a mean internal temperature of 27.9 °C. A completely randomized design was used with four treatments and four replications: T1, control with basal fertilization and no foliar spraying; T2, 1,000 mg.L⁻¹; T3, 1,500 mg.L⁻¹; and T4, 2,000 mg.L⁻¹, sprayed at 12, 25 and 35 days after sowing with 100 mL.plant⁻¹ per application. Plant height, stem diameter, days to flowering, number of fruits per plant, fruit length, fruit diameter, fruit weight and yield per plot were assessed. The 2,000 mg.L⁻¹ dose showed the most consistent response, with 456.25 cm plant height at 60 days, 8.00 mm stem diameter, 3.00 fruits per plant, 30.28 cm fruit length, 5.67 cm fruit diameter and 6.72 kg per plot, equivalent to a projected 42.0 t.ha⁻¹ against 24.8 t.ha⁻¹ in the control. The 2,000 mg.L⁻¹ dose showed the best agronomic performance under the evaluated conditions, although validation in additional cycles is required.

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Keywords: biostimulation, nutrient efficiency, foliar fertilization, agricultural nanotechnology

Abstract

The low efficiency of conventional fertilization limits nutrient use in intensive horticultural crops; therefore, microencapsulated bioinputs represent an alternative to improve cucumber productivity under greenhouse conditions. This study aimed to evaluate the dose-dependent response of growth, productive components and yield of Cucumis sativus L. to foliar application of chitosan and micronutrient microcapsules with SiO₂ nanoparticles. The experiment was carried out under greenhouse conditions at the Technical State University of Quevedo, Ecuador, with a mean internal temperature of 27.9 °C. A completely randomized design was used with four treatments and four replications: T1, control with basal fertilization and no foliar spraying; T2, 1,000 mg.L⁻¹; T3, 1,500 mg.L⁻¹; and T4, 2,000 mg.L⁻¹, sprayed at 12, 25 and 35 days after sowing with 100 mL.plant⁻¹ per application. Plant height, stem diameter, days to flowering, number of fruits per plant, fruit length, fruit diameter, fruit weight and yield per plot were assessed. The 2,000 mg.L⁻¹ dose showed the most consistent response, with 456.25 cm plant height at 60 days, 8.00 mm stem diameter, 3.00 fruits per plant, 30.28 cm fruit length, 5.67 cm fruit diameter and 6.72 kg per plot, equivalent to a projected 42.0 t.ha⁻¹ against 24.8 t.ha⁻¹ in the control. The 2,000 mg.L⁻¹ dose showed the best agronomic performance under the evaluated conditions, although validation in additional cycles is required.

References

AlSaeedi, A. H. (2022). Enhancement of soil water characteristics curve (SWCC) and water use efficiency of cucumber (Cucumis sativus L.) in sandy soils by using silica nanoparticles. Journal of King Saud University – Science, 34, 101926. https://doi.org/10.1016/j.jksus.2022.101926
Álvarez-Herrera, J. G., M. Jaime-Guerrero y G. Fischer. (2025). The effect of boron on fruit quality: a review. Horticulturae, 11(8), 992. https://doi.org/10.3390/horticulturae11080992
Balusamy, S. R., S. Rahimi, J. Sukweenadhi, S. Sunderraj, R. Shanmugam, L. Thangavelu, I. Mijakovic y H. Perumalsamy. (2022). Chitosan, chitosan nanoparticles and modified chitosan biomaterials, a potential tool to combat salinity stress in plants. Carbohydrate Polymers, 284, 119189. https://doi.org/10.1016/j.carbpol.2022.119189
Beig, B., M. B. K. Niazi, F. Sher, Z. Jahan, U. S. Malik, M. D. Khan, J. H. P. Américo-Pinheiro y D.-V. N. Vo. (2022). Nanotechnology-based controlled release of sustainable fertilizers: a review. Environmental Chemistry Letters, 20, 2709-2726. https://doi.org/10.1007/s10311-022-01409-w
Chouhan, D. y P. Mandal. (2021). Applications of chitosan and chitosan based metallic nanoparticles in agrosciences: a review. International Journal of Biological Macromolecules, 166, 1554-1569. https://doi.org/10.1016/j.ijbiomac.2020.11.035
El-Mogy, M. M., E. A. Abdeldaym, S. M. Abdelaziz, A. M. Ismail, H. S. El-Beltagi, K. M. A. Ramadan, A. W. M. Mahmoud y S. A. Mottaleb. (2025). Foliar application of calcium, silicon, and potassium nanoparticles improves growth and fruit quality of drought-stressed cucumber plants. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 53(2), 4470. https://doi.org/10.15835/nbha53214470
Feil, S. B., G. Rodegher, F. Gaiotti, M. Y. Alzate Zuluaga, F. J. Carmona, N. Masciocchi, S. Cesco y Y. Pii. (2021). Physiological and molecular investigation of urea uptake dynamics in Cucumis sativus L. plants fertilized with urea-doped amorphous calcium phosphate nanoparticles. Frontiers in Plant Science, 12, 745581. https://doi.org/10.3389/fpls.2021.745581
García-Carrasco, M., O. Valdez-Baro, L. A. Cabanillas-Bojórquez, M. J. Bernal-Millán, M. M. Rivera-Salas, E. P. Gutiérrez-Grijalva y J. B. Heredia. (2023). Potential agricultural uses of micro/nano encapsulated chitosan: a review. Macromol, 3, 614-635. https://doi.org/10.3390/macromol3030034
Hänsch, R. y R. R. Mendel. (2009). Physiological functions of mineral micronutrients (Cu, Zn, Mn, Fe, Ni, Mo, B, Cl). Current Opinion in Plant Biology, 12(3), 259-266. https://doi.org/10.1016/j.pbi.2009.05.006
Hassan, S. M., M. Ashour, N. Sakai, L. Zhang, H. A. Hassanien, A. Gaber y G. Ammar. (2021). Impact of seaweed liquid extract biostimulant on growth, yield, and chemical composition of cucumber (Cucumis sativus). Agriculture, 11(4), 320. https://doi.org/10.3390/agriculture11040320
Haydar, M. S., D. Ghosh y S. Roy. (2024). Slow and controlled release nanofertilizers as an efficient tool for sustainable agriculture: recent understanding and concerns. Plant Nano Biology, 7, 100058. https://doi.org/10.1016/j.plana.2024.100058
Hu, W., Y. Su, J. Zhou, H. Zhu, J. Guo, H. Huo y H. Gong. (2022). Foliar application of silicon and selenium improves the growth, yield and quality characteristics of cucumber in field conditions. Scientia Horticulturae, 294, 110776. https://doi.org/10.1016/j.scienta.2021.110776
Ingle, P. U., S. S. Shende, P. R. Shingote, S. S. Mishra, V. Sarda, D. L. Wasule, V. D. Rajput, T. Minkina, M. Rai, S. Sushkova, S. Mandzhieva y A. Gade. (2022). Chitosan nanoparticles (ChNPs): a versatile growth promoter in modern agricultural production. Heliyon, 8(11), e11893. https://doi.org/10.1016/j.heliyon.2022.e11893
Mahdy, H. A. A., A. M. R. Abdelmawgoud, Z. F. Fawzy y H. A. Ibrahim. (2024). Increasing greenhouse cucumber growth and yield with nano calcium and silicon. Journal of Applied Horticulture, 26(1), 10-14. https://doi.org/10.37855/jah.2024.v26i01.02
Nongbet, A., A. K. Mishra, Y. K. Mohanta, S. Mahanta, M. K. Ray, M. Khan, K.-H. Baek e I. Chakrabartty. (2022). Nanofertilizers: a smart and sustainable attribute to modern agriculture. Plants, 11(19), 2587. https://doi.org/10.3390/plants11192587
Rojas-Pirela, M., P. Carillo, C. Lárez-Velásquez y G. Romanazzi. (2024). Effects of chitosan on plant growth under stress conditions: similarities with plant growth promoting bacteria. Frontiers in Plant Science, 15, 1423949. https://doi.org/10.3389/fpls.2024.1423949
Sallam, B. N., T. Lu, H. Yu, Q. Li, Z. Sarfraz, M. S. Iqbal, S. Khan, H. Wang, P. Liu y W. Jiang. (2021). Productivity enhancement of cucumber (Cucumis sativus L.) through optimized use of poultry manure and mineral fertilizers under greenhouse cultivation. Horticulturae, 7(8), 256. https://doi.org/10.3390/horticulturae7080256
Shahrajabian, M. H., C. Chaski, N. Polyzos, N. Tzortzakis y S. A. Petropoulos. (2021). Sustainable agriculture systems in vegetable production using chitin and chitosan as plant biostimulants. Biomolecules, 11(6):819. https://doi.org/10.3390/biom11060819
Shalaby, T. A., E. Abd-Alkarim, F. El-Aidy, E.-S. Hamed, M. Sharaf-Eldin, N. Taha, H. El-Ramady, Y. Bayoumi y A. R. dos Reis. (2021). Nano-selenium, silicon and H₂O₂ boost growth and productivity of cucumber under combined salinity and heat stress. Ecotoxicology and Environmental Safety, 212, 111962. https://doi.org/10.1016/j.ecoenv.2021.111962
Stasińska-Jakubas, M. y B. Hawrylak-Nowak. (2022). Protective, biostimulating, and eliciting effects of chitosan and its derivatives on crop plants. Molecules, 27(9), 2801. https://doi.org/10.3390/molecules27092801
Yan, G., Q. Huang, S. Zhao, Y. Xu, Y. He, M. Nikolic, N. Nikolic, Y. Liang y Z. Zhu. (2024). Silicon nanoparticles in sustainable agriculture: synthesis, absorption, and plant stress alleviation. Frontiers in Plant Science, 15, 1393458. https://doi.org/10.3389/fpls.2024.1393458

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