Plant Soil Environ., 2022, 68(11):510-515 | DOI: 10.17221/287/2022-PSE
Inoculation of soybean seeds by rhizobia with nanometal carboxylates reduces the negative effect of drought on N2 and CO2 assimilationOriginal Paper
- Institute of Plant Physiology and Genetics of the National Academy of Sciences of Ukraine, Kyiv, Ukraine
The effect of individual nanometals (Co, Fe, Cu, Ge) carboxylates (NMC) as components of the suspension for seeds inoculation with rhizobia on the nitrogen fixation rate and the parameters of CO2 and H2O gas exchange in soybean plants grown under different water conditions was investigated. The scheme of trials included the following variants: 1 - seeds + strain B1-20; 2 - seeds + (strain B1-20 + nano-cobalt carboxylate); 3 - seeds + (strain В1-20 + nano-ferrum carboxylate); 4 - seeds + (strain B1-20 + nano-cuprum carboxylate); 5 - seeds + (strain B1-20 + nano-germanium carboxylate). The results showed that during the flowering period, drought (30% field capacity) significantly reduced the rates of nitrogen fixation (Nfx), CO2 net assimilation (An), and transpiration (Tr) in soybean plants. Inoculation of seeds by rhizobia with NMC before sowing reduced the negative effect of drought on these physiological processes. Close correlations were found between the rates of Nfx and An and the stomatal conductance for CO2 and An rates. It was concluded that pre-sowing treatment of seeds by rhizobia with NMC mitigates the negative effect of drought on the main components of soybean-rhizobia symbiosis productivity formation - nitrogen fixation and CO2 assimilation, and also contributes to their recovery after the removal of the stressor. The most effective for this was the use of Ge and Fe nanoparticle carboxylates.
Keywords: Glycine max (L.) Merr.; Bradyrhizobium japonicum; nanotechnology; water deficit; photosynthesis
Published: November 1, 2022 Show citation
ACS | AIP | APA | ASA | Harvard | Chicago | Chicago Notes | IEEE | ISO690 | MLA | NLM | Turabian | Vancouver |
References
- Adams M.A., Turnbull T.L., Sprent J.I., Buchmann N. (2016): Legumes are different: leaf nitrogen, photosynthesis, and water use efficiency. PNAS, 113: 4098-4103.
Go to original source...
Go to PubMed...
- Endres L., Silva J.V., Ferreira V.M., de Souza Barbosa G.V. (2010): Photosynthesis and water relations in brazilian sugarcane. The Open Agriculture Journal, 4: 31-37.
Go to original source...
- Hardy R.W.F., Holsten R.D., Jackson E.K., Burns R.C. (1968): The acetylene-ethylene assay for N2 fixation: laboratory and field evaluation. Plant Physiology, 43: 1185-1207.
Go to original source...
Go to PubMed...
- Hellriegel H., Wilfarth H. (1888): Untersuchungen über die Stickstoffnahrung der Gramineen und Leguminosen. Berlin, Buchdruckerei der "Post" Kayssler, 234.
- Laisk A., Oja V. (1998): Dynamics of Leaf Photosynthesis: Rapid Response Measurements and Their Interpretations. Collingwood, CSIRO Publishing. ISBN: 0-643-05937-7
Go to original source...
- Lesk C., Rowhani P., Ramankutty N. (2016): Influence of extreme weather disasters on global crop production. Nature, 529: 84-87.
Go to original source...
Go to PubMed...
- Li S., Xie Y., Liu G., Wang J., Lin H.H., Xin Y., Zhai J.R. (2020): Water use efficiency of soybean under water stress in different eroded soils. Water, 12: 373.
Go to original source...
- Liu X., Quan W.L., Bartels D. (2022): Stress memory responses and seed priming correlate with drought tolerance in plants: an overview. Planta, 255: 45.
Go to original source...
Go to PubMed...
- Lopez M.A., Xavier A., Rainey K.M. (2019): Phenotypic variation and genetic architecture for photosynthesis and water use efficiency in soybean (Glycine max L. Merr). Frontiers in Plant Science, 10: 680.
Go to original source...
Go to PubMed...
- Pereira A. do E.S., Oliveira H.C., Fraceto L.F., Santaella C. (2021): Nanotechnology potential in seed priming for sustainable agriculture. Nanomaterials (Basel), 11: 267.
Go to original source...
Go to PubMed...
- Salmon Y., Lintunen A., Dayet A., Chan T., Dewar R., Vesala T., Hölttä T. (2020): Leaf carbon and water status control stomatal and nonstomatal limitations of photosynthesis in trees. New Phytologist, 226: 690-703.
Go to original source...
Go to PubMed...
- Senapati N., Stratonovitch P., Paul M.J., Semenov M.A. (2019): Drought tolerance during reproductive development is important for increasing wheat yield potential under climate change in Europe. Journal of Experimental Botany, 70: 2549-2560.
Go to original source...
Go to PubMed...
- Thilakarathna M.S., Torkamaneh D., Bruce R.W., Rajcan I., Chu G., Grainger C.M., Szczyglowski K., Hill B., Raizada M.N. (2021): Testing whether pre-pod-fill symbiotic nitrogen fixation in soybean is subject to drift or selection over 100 years of soybean breeding. Frontiers in Agronomy, 3: 725813.
Go to original source...
- Wang P., Lombi E., Zhao F.J., Kopittke P.M. (2016): Nanotechnology: a new opportunity in plant sciences. Trends in Plant Science, 21: 699-712.
Go to original source...
Go to PubMed...
This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International (CC BY NC 4.0), which permits non-comercial use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.