Zinc oxide and silver effects on the growth, pigment content and genetic stability of chrysanthemums propagated by the node culture method

Author:

Tymoszuk Alicja1ORCID,Szałaj Urszula2ORCID,Wojnarowicz Jacek2ORCID,Kowalska Jolanta3ORCID,Antkowiak Małgorzata3ORCID,Kulus Dariusz1ORCID

Affiliation:

1. Laboratory of Horticulture, Department of Biotechnology, Faculty of Agriculture and Biotechnology, Bydgoszcz University of Science and Technology , Bernardyńska 6 , Bydgoszcz , Poland

2. Laboratory of Nanostructures, Institute of High Pressure Physics, Polish Academy of Science , Sokołowska 29/37 , Warsaw , Poland

3. Department of Organic Agriculture and Environmental Protection, Institute of Plant Protection–National Research Institute , Władysława Węgorka 20 , Poznań , Poland

Abstract

ABSTRACT This article describes benefits of the application of zinc oxide submicron particles (ZnO SMPs), zinc oxide nanoparticles (ZnO NPs) and ZnO NPs combined with silver NPs (ZnO + Ag NPs) in chrysanthemum micropropagation. Single node explants of Chrysanthemum × morifolium (Ramat.) Hemsl. ‘UTP Burgundy Gold (UBG)’ and ‘UTP Pinky Gold (UPG)’ were inoculated on the Murashige and Skoog (MS) medium and treated with 100 mg · L−1, 200 mg · L−1, or 400 mg · L−1 ZnO SMPs, ZnO NPs (1.5% H2O), ZnO NPs (6% H2O), ZnO + 0.1% Ag NPs (1.5% H2O), ZnO + 0.1% Ag NPs (6% H2O), ZnO + 1% Ag NPs (1.5% H2O) and ZnO + 1% Ag NPs (6% H2O). Generally, the tested materials stimulated the growth and development of plantlets. In ‘UBG’, the most prominent treatments affecting increases in the number of leaves, micropropagation coefficient, shoot length and shoot FW/DW weight included 400 mg · L−1 ZnO SMPs and 100 mg · L−1 ZnO NPs (6% H2O). In ‘UPG’, the treatments with 200 mg · L−1 ZnO + 0.1% Ag NPs (6% H2O) and 200 mg · L−1 ZnO + 1% Ag NPs (6% H2O) were the most successful. The latter treatment stimulated an intensive development of root systems in the two studied cultivars. High values of leaf area, perimeter and width were reported in both cultivars for 400 mg · L−1 ZnO + 1% Ag NPs (6% H2O). As compared to the control, the treated plants were characterised by a similar or, most often, lower content of chlorophylls and carotenoids. The randomly amplified polymorphic DNA (RAPD) and start codon targeted polymorphism (SCoT) marker system analyses of the 400 mg · L−1 ZnO SMPs/ZnO NPs/ZnO + Ag NPs-treated chrysanthemums confirmed their genetic fidelity with the control plants. The obtained results can be implemented in the commercial large-scale production of chrysanthemums.

Publisher

Walter de Gruyter GmbH

Reference75 articles.

1. Abdelsalam, N. R., Abdel-Megeed, A., Ali, H. M., Salem, M. Z. M., Al-Hayali, M. F. A., and Elshikh, M. S. (2018). Genotoxicity effects of silver nanoparticles on wheat ( Triticum aestivum L.) root tip cells. Ecotoxicology and Environmental Safety, 155, 76–85, https://doi.org/10.1016/j.ecoenv.2018.02.069.

2. Alghamdi, E. S., Farooq, M., and Metwali, E. M. R. (2022). Influence of nano zinc oxide on the in vitro callus growth, ex vitro tuber yield and nutritional quality of potato (Solanum tuberosum L.) cultivars under salt stress. Journal of Animal and Plant Sciences, 32(2), 440–449, https://doi.org/10.36899/JAPS.2022.0441.

3. Alharby, H. F., Metwali, E. M. R., Fuller, M. P., and Aldhebiani, A. Y. (2016). Impact of application of zinc oxide nanoparticles on callus induction, plant regeneration, element content and antioxidant enzyme activity in tomato (Solanum lycopersicum Mill.) under salt stress. Archives of Biological Sciences, 68(4), 723–735, https://doi.org/10.2298/ABS151105017A.

4. Alizadeh, S., and Dumanoğlu, H. (2022). The effects of zinc oxide nanoparticles loaded with IAA and IBA on in vitro rooting of apple microcuttings. Turkish Journal of Agriculture and Forestry, 46, 306–317, https://doi.org/10.55730/1300-011X.3004.

5. Aly, A. A., Safwat, G., Eliwa, N. E., Eltawil, A. H. M., and Abd el-aziz, M. H. (2023). Changes in morphological traits, anatomical and molecular alterations caused by gamma-rays and zinc oxide nanoparticles in spinach (Spinacia oleracea L.) plant. Biometals, 36, 1059–1079, https://doi.org/10.1007/s10534-023-00505-w.

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