Protective effects of ultramicroelement salts under water deficit: a case study of buckwheat grown at varying soil available phosphorus levels
https://doi.org/10.26897/0021-342X-2026-1-24-35
Abstract
This paper presents the findings of a three-year pot experiment investigating the protective effects of pre-sowing seed treatment with solutions of selenium, vanadium, tungsten, and iodine salts on the biometric characteristics, yield, and grain quality of buckwheat. During the early budding stage, a subset of plants was subjected to an artificially induced water deficit. The study was conducted on two soils of the same subtype but with differing levels of available phosphorus. To ensure adequate mineral nutrition, all pots were amended with N (150 mg/kg) and K2O (100 mg/kg of soil). Analysis of the yield components revealed that the salts used had no significant effect on the number of inflorescences or the thousand-kernel weight. The protective properties of these ultramicroelements were most pronounced under drought conditions combined with low phosphorus availability: the application of sodium selenite reduced grain yield losses by 32%, ammonium vanadate by 20%, ammonium tungstate by 14%, and ammonium iodide by 25%. In the absence of seed treatment, yield was strongly influenced by an increased content of soil available phosphorus; under optimal moisture, buckwheat produced 40% more grain, and after drought, 70% more compared to plants grown on low-phosphorus soil. No significant changes in the chemical composition of the grain were identified across the various growing conditions (application of ultramicroelement salts, varying soil available phosphorus levels, or water availability).
Keywords
About the Authors
A. A. LapushkinaRussian Federation
Anastasiya A. Lapushkina - CSc (Bio), Associate Professor at the Department of Agronomic, Biological Chemistry and Radiology, Russian State Agrarian University – Moscow Timiryazev Agricultural Academy.
49 Timiryazevskaya St., Moscow, 127434
V. M. Lapushkin
Russian Federation
Vsevolod M. Lapushkin - CSc (Bio), Associate Professor, Associate Professor at the Department of Agronomic, Biological Chemistry and Radiology, Russian State Agrarian University – Moscow Timiryazev Agricultural Academy.
49 Timiryazevskaya St., Moscow, 127434
References
1. Golovatskaya I.F., Kulagina J.M., Krahaleva A.V. The influence of selenite and selenate sodium on growth and productivity of wheat of variety Irgina depending on methods of processing. Tomsk State Pedagogical University Bulletin. 2012;(7(122)):111-115. (In Russ.)
2. Dobosy P., Nguyen H.T.P., Zаray G., Streli C. et al. Effect of iodine species on biofortification of iodine in cabbage plants cultivated in hydroponic cultures. Sci Rep. 2024;14(1):15794. https://doi.org/10.1038/s41598-024-66575-z
3. Hanus-Fajerska E., Wiszniewska A., Kamin´ska I. A Dual Role of Vanadium in Environmental Systems – Beneficial and Detrimental Effects on Terrestrial Plants and Humans. Plants. 2021;10:1110. https://doi.org/10.3390/plants10061110
4. Liu H., Xiao C., Qiu T., Deng J. et al. Selenium Regulates Antioxidant, Photosynthesis, and Cell Permeability in Plants under Various Abiotic Stresses: A Review. Plants (Basel). 2022;12(1):44. https://doi.org/10.3390/plants12010044
5. Vernichenko I.V., Osipova L.V., Kurnosova T.L., Bikovskaya I.A. et al. Influence of selenium and silicon on the stability of barley plants to drought and the presents in the soil of aluminium under applying of labelled with 15N nitrate nitrogen. Plodorodie. 2018;(5(104)):12-15. (In Russ.)
6. Lapushkina А.А., Vernichenko I.V., Osipova L.V. The influence of selenium and silicon on the stability of barley plants to soil drought. VI Vserossiyskaya nauchno-prakticheskaya konferentsiya ‘Innovatsionnye tekhnologii v APK: teoriya i praktika’. March 28-29, 2018. Penza, Russia: Penza State Agrarian University, 2018:128-131. (In Russ.)
7. Rojek J., Kozieradzka-Kiszkurno M., Kapusta M., Aksmann A. et al. The effect of vanadium (IV) complexes on development of Arabidopsis thaliana subjected to H2O2-induced stress. Funct. Plant Biol. 2019;46:942-961. https://doi.org/10.1071/FP18262
8. Li Q., Zheng X., Chen M. Ecotoxicological effects of tungsten on celery (Apium graveolens L) and pepper (Capsicum spp.). PeerJ. 2024;12: e17601. https://doi.org/10.7717/peerj.17601
9. Adamakis I.D., Panteris E., Eleftheriou E.P. Tungsten Toxicity in Plants. Plants (Basel). 2012;1(2):82-99. https://doi.org/10.3390/plants1020082
10. Beisekova M., Zhangazin S., Kurmanbayeva A., Masalimov Z. et al. Influence of tungsten and molybdenum on Н2О2 accumulation in n.benthamiana plant. Eurasian Journal of Applied Biotechnology. 2022;4:58-62. https://doi.org/10.11134/btp.4.2022.7
11. Kumar A., Aery N.C. Effect of tungsten on growth, biochemical constituents, molybdenum and tungsten contents in wheat. Plant Soil Environ. 2011;57:519-525. https://doi.org/10.17221/345/2011-PSE
12. Zhang Y., Cao H., Wang M., Zou Z. et al. A review of iodine in plants with biofortification: Uptake, accumulation, transportation, function, and toxicity. Sci Total Environ. 2023;878:163203. https://doi.org/10.1016/j.scitotenv.2023.163203
13. Zhurbitsky Z.I. Theory and practice of the vegetative method. Moscow, USSR: Nauka, 1968:266. (In Russ.)
14. Stupakova G.A., Ignatyeva E.E., Dengina S.A. Reference materials in providing of laboratories of the agro-industrial complex. Collection of reference materials of different types of soils and crop production of the Pryanishnikov Institute of Agrochemistry. Plodorodie. 2021;(5(122)):84-90. (In Russ.) https://doi.org/10.25680/S19948603.2021.122.21
15. Afanas’ev R.A. The variance analysis of the results of long-term field experiments. Agrochemistry. 2004;(5):85-91. (In Russ.)
16. Jin J., Lauricella D., Armstrong R., Sale P. et al. Phosphorus application and elevated CO2 enhance drought tolerance in field Pea Grown in a phosphorus-deficient vertisol. Ann. Bot. 2015;116:975-985. https://doi.org/10.1093/aob/mcu209
17. Mamnabi S., Nasrollahzadeh S., Ghassemi-Golezani K., Raei Y. Improving yield-related physiological characteristics of spring rapeseed by integrated fertilizer management under water deficit conditions. Saudi J. Biol. Sci. 2020;27:797-804. https://doi.org/10.1016/j.sjbs.2020.01.008
Review
For citations:
Lapushkina A.A., Lapushkin V.M. Protective effects of ultramicroelement salts under water deficit: a case study of buckwheat grown at varying soil available phosphorus levels. IZVESTIYA OF TIMIRYAZEV AGRICULTURAL ACADEMY. 2026;(1):24-35. (In Russ.) https://doi.org/10.26897/0021-342X-2026-1-24-35
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