Study of the effect of marine actinobacterial strains on the adaptation of maize to ex vitro conditions

Main Article Content

Nataliia Tesliuk
Kristina Shulha
Kateryna Zhylovska

Abstract

The aim of the study was to investigate the effect and establish the potential of using marine actinobacterial strains to enhance the adaptation processes of maize to ex vitro conditions. Materials and Methods. To adapt to non-sterile conditions, maize regenerants obtained by using in vitro culture were planted in sterile soil. Plants were inoculated with bacterial suspensions of actinobacteria strains Myt7b, Lim4, Conc4, Conc18, Conc32 (7.86×10⁶, 4.77×10⁶, 1.02×10⁶, 1.57×10⁶, 2.89×10⁶ CFU/ml, respectively) for 30 minutes. Adaptation was carried out for 10 days in a controlled environment with a gradual increase in exposure to external conditions. Results. Inoculation of maize with actinobacterial strains Myt7b, Lim4, Conc4, Conc18, and Conc32 during the adaptation stage showed higher average survival rates after 10 days: 52%, 32%, 54%, 44% and 42% more than the control, respectively. The use of Myt7b and Conc32 was the most effective in terms of shoot length and root bulk density: 11.3 cm and 13.8 cm; 0.1316 g/cm³ and 0.1703 g/cm³, respectively.


Google Scholar

CrossRef

OUCI

Scilit

WorldCat

Index Copernicus

Semantic Scholar


Article Details

How to Cite
Tesliuk, N., Shulha, K., & Zhylovska, K. (2025). Study of the effect of marine actinobacterial strains on the adaptation of maize to ex vitro conditions. Scientific Collection «InterConf+», (58(252), 149–156. https://doi.org/10.51582/interconf.19-20.06.2025.018
Author Biographies

Nataliia Tesliuk, Odesa I.I. Mechnikov National University; Ukraine

PhD in agricultural sciences, associate professor of the department of microbiology, virology and biotechnology

Kristina Shulha, Odesa I.I. Mechnikov National University; Ukraine

1st-year Master’s student

References

Wahyudi, A. T., Priyanto, J. A., Fijrina, H., Mariastuti, H. D., & Nawangsih, A. A. (2019). Streptomyces spp. from rhizosphere soil of maize with potential as plant growth promoter. Biodiversitas, 20(9), 247–255. DOI: https://doi.org/10.13057/biodiv/d200916

Battini, F., Grønlund, M., Agnolucci, M., Giovannetti, M., & Jakobsen, I. (2017). Facilitation of phosphorus uptake in maize plants by mycorrhizo-sphere bacteria. Scientific Reports, 7, 61–63. DOI: https://doi.org/10.1038/s41598-017-04959-0

Lin, C., Tsai, C. H., Chen, P. Y., Wu, C. Y., Chang, Y. L., Yang, Y. L., et al. (2018). Biological control of potato common scab by Bacillus amyloliquefaciens Ba01. PLoS ONE, 13(4), 1–17. DOI: https://doi.org/10.1371/journal.pone.0196520

Blin, K., Shaw, S., Steinke, K., Villebro, R., Ziemert, N., et al. (2019). antiSMASH 5.0: Updates to the secondary metabolite genome mining pipeline. Nucleic Acids Research, 47(W1), W81–W87. DOI: https://doi.org/10.1093/nar/gkz310

Tytarenko, N. V., Tesliuk, N. I., & Ivanytsia, V. O. (2023). The effect of actinobacteria on adaptation to ex vitro conditions and growth of microcloned Rubus fruticosus L. plants. Microbiology and Biotechnology, 1(57), 18–41. [in Ukrainian] DOI: https://doi.org/10.18524/2307-4663.2023.1(57).276078

Zhylovska, K., Tytarenko, N., & Tesliuk, N. (2022). Determination of the influence of actinobacteria on seed germination and morphometric parameters of maize sprouts. In Biology, Biotechnology, Biomedicine: Materials of Young Scientists International Conference (pp. 111–115). Odesa: ONU.

Klymniuk, S. I., Sytnyk, I. O., Tvorko, M. S., & Shyrobokov, V. P. (2004). Practical Microbiology: A Manual. Ternopil: Ukrmedknyha. [in Ukrainian]

Goodfellow, M., O’Donnell, A. G., Baumberg, S., Rodes, M., & Hunter, I. (1989). Microbial products: New approaches. Cambridge: Cambridge University Press.

Trutayev, S. I., Tykhonov, O. I., & Shpychak, O. S. (2008). Determination of technological parameters of medicinal plant materials included in the complex tincture “Ravisol.” Pharmacy Bulletin, 82, 1–82. [in Ukrainian]