PROPERTIES OF BACTERIA ISOLATED FROM ANTARCTIC VASCULAR PLANT COLOBANTHUS QUITENSIS AND THEIR PLANT GROWTH-PROMOTING POTENTIAL
DOI: http://dx.doi.org/10.30970/sbi.2003.897
Abstract
Materials and Methods. Endophytes were isolated on TSA and R2A. The ability of bacteria to fix N2 was determined using Ashby medium. Conclusions about zinc solubilization were made based on the appearance of transparent zones around colonies after growth on medium containing ZnO. For the detection of cellulase activity, a medium with carboxymethylcellulose was used, and for amylolytic activity – starch-ammonia agar. The ability of bacteria to synthesize siderophores was determined using a medium containing hexadecyltrimethylammonium bromide and chromazurol S. The content of auxin-like compounds was determined using Salkowski reagent. The seeds were soaked in a bacterial suspension, sown into soil, and grown for 8 days at 18 ± 2 °C. Protein concentration was determined using the Bradford method. Chlorophyll a and b concentrations were determined photometrically. To assess the effect of heavy metal salts and NaCl, different amounts of these substances were added to the medium.
Results. Some bacterial isolates obtained from the endosphere of C. quitensis solubilize ZnO and produce cellulases and amylases. All bacterial isolates studied produce auxin-like compounds, and most of them synthesize siderophores. Moderate and extreme halophiles are capable of growing under the influence of MnCl2 · H2O, FeSО4 · 7Н2O, CdCl2 · 2.5H2O, CoCl2 · 6H2O, and K2Cr2O7. Most of the bacterial isolates obtained from the endosphere of C. quitensis, despite possessing plant growth-promoting traits, had no effect on wheat growth parameters during the early stages of ontogenesis. However, bacterial isolates have also been detected that positively affect morphometric parameters and chlorophyll content in seedling leaves. Bacterial isolate R380 from the endosphere of C. quitensis roots, which increased chlorophyll content in the leaves of wheat after seed inoculation, was identified as Bacillus sp. R380 based on 16S rRNA gene sequencing.
Conclusions. As a result of screening Colobanthus quitensis endophytes, we isolated a promising strain, Bacillus sp. R380, which increases chlorophyll content in spring wheat seedlings.
Keywords
Full Text:
PDFReferences
| Ahmed, S., Rahman, M. S., Hasan, M. M., Paul, N., & Sajib, A. A. (2018). Microbial degradation of lignocellulosic biomass: discovery of novel natural lignocellulolytic bacteria. BioTechnologia, 99(2), 137-146. doi:10.5114/bta.2018.75657 Crossref ● Google Scholar | ||||
| ||||
| Arora, N. K., & Verma, M. (2017). Modified microplate method for rapid and efficient estimation of siderophore produced by bacteria. 3 Biotech, 7(6), 381. doi:10.1007/s13205-017-1008-y Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Ashby, S. F. (1907). Some observations on the assimilation of atmospheric nitrogen by a free living soil organism - Azotobacter chroococcum of Beijerinck. The Journal of Agricultural Science, 2(1), 35-51. doi:10.1017/s0021859600000988 Crossref ● Google Scholar | ||||
| ||||
| Barra, P. J., Inostroza, N. G., Acuña, J. J., Mora, M. L., Crowley, D. E., & Jorquera, M. A. (2016). Formulation of bacterial consortia from avocado (Persea americana Mill.) and their effect on growth, biomass and superoxide dismutase activity of wheat seedlings under salt stress. Applied Soil Ecology, 102, 80-91. doi:10.1016/j.apsoil.2016.02.014 Crossref ● Google Scholar | ||||
| ||||
| Bhakat, K., Chakraborty, A., & Islam, E. (2021). Characterization of zinc solubilization potential of arsenic tolerant Burkholderia spp. isolated from rice rhizospheric soil. World Journal of Microbiology and Biotechnology, 37(3), 39. doi:10.1007/s11274-021-03003-8 Crossref ● PubMed ● Google Scholar | ||||
| ||||
| Bianco, C. (2024). Plant-growth-promoting bacteria. Plants, 13(10), 1323. doi:10.3390/plants13101323 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Bradford, M. M. (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Analytical Biochemistry, 72(1-2), 248-254. doi:10.1016/0003-2697(76)90527-3 Crossref ● PubMed ● Google Scholar | ||||
| ||||
| Cavieres, L. A., Sáez, P., Sanhueza, C., Sierra-Almeida, A., Rabert, C., Corcuera, L. J., Alberdi, M., & Bravo, L. A. (2016). Ecophysiological traits of Antarctic vascular plants: their importance in the responses to climate change. Plant Ecology, 217(3), 343-358. doi:10.1007/s11258-016-0585-x Crossref ● Google Scholar | ||||
| ||||
| Choudhary, S., Saharan, B. S., Gera, R., Kumar, S., Prasad, M., Gupta, A., & Duhan, J. S. (2024). Molecular characterization and validation of zinc solubilization potential of bacteria isolated from onion (Allium cepa L.) rhizosphere. The Microbe, 4, 100145. doi:10.1016/j.microb.2024.100145 Crossref ● Google Scholar | ||||
| ||||
| Compant, S., Cambon, M. C., Vacher, C., Mitter, B., Samad, A., & Sessitsch, A. (2020). The plant endosphere world - bacterial life within plants. Environmental Microbiology, 23(4), 1812-1829. doi:10.1111/1462-2920.15240 Crossref ● PubMed ● Google Scholar | ||||
| ||||
| Gang, S., Sharma, S., Saraf, M., Buck, M., & Schumacher, J. (2019). Analysis of indole-3-acetic acid (IAA) production in Klebsiella by LC-MS/MS and the Salkowski method. Bio-Protocol, 9(9), e3230. doi:10.21769/bioprotoc.3230 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Gohel, H. R., Contractor, C. N., Ghosh, S. K., & Braganza, V. J. (2014). A comparative study of various staining techniques for determination of extra cellular cellulase activity on carboxy methyl cellulose (CMC) agar plates. International Journal of Current Microbiology and Applied Sciences, 3(5), 261-266. Google Scholar | ||||
| ||||
| Gómez-Repollés, A., Villa-Rodríguez, E., Blahovska, Z., Ferguson, S., & Radutoiu, S. (2025). High-quality genome assemblies of 152 root commensal bacteria from the model legume Lotus japonicus. Scientific Data, 12(1), 1793. doi:10.1038/s41597-025-06078-2 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Grata, K. (2020). Determining cellulolytic activity of microorganisms. Chemistry-Didactics-Ecology-Metrology, 25(1-2), 133-143. doi:10.2478/cdem-2020-0010 Crossref ● Google Scholar | ||||
| ||||
| Green, M. R., & Sambrook, J. (2012). Molecular cloning: a laboratory manual (4th ed.). Cold Spring Harbor Laboratory Press. Google Scholar | ||||
| ||||
| Grzyb, T., & Szulc, J. (2024). Deciphering molecular mechanisms and diversity of plant holobiont bacteria: microhabitats, community ecology, and nutrient acquisition. International Journal of Molecular Sciences, 25(24), 13601. doi:10.3390/ijms252413601 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Husak, V. V., Gospodaryov, D. V., & Lushchak, V. I. (2025). Statystyka malykh vybirok u biolohii i medytsyni z osnovamy prohramuvannia v Python i R [Small sample statistics in biology and medicine with basics of programming in Python and R] (2nd ed.). Holinei O. V. (In Ukrainian) | ||||
| ||||
| Iqbal, M. Z., Singh, K., & Chandra, R. (2024). Recent advances of plant growth promoting rhizobacteria (PGPR) for eco-restoration of polluted soil. Cleaner Engineering and Technology, 23, 100845. doi:10.1016/j.clet.2024.100845 Crossref ● Google Scholar | ||||
| ||||
| Kramer, J., Özkaya, Ö., & Kümmerli, R. (2019). Bacterial siderophores in community and host interactions. Nature Reviews Microbiology, 18(3), 152-163. doi:10.1038/s41579-019-0284-4 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Kurepa, J., & Smalle, J. A. (2022). Auxin/cytokinin antagonistic control of the shoot/root growth ratio and its relevance for adaptation to drought and nutrient deficiency stresses. International Journal of Molecular Sciences, 23(4), 1933. doi:10.3390/ijms23041933 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Kyrylchuk, A. A., & Bonishko, O. S. (2011). Khimiia hruntiv. Osnovy teorii i praktykum [Soil chemistry. Fundamentals of theory and practicum]. Ivan Franko National University of Lviv. https://geography.lnu.edu.ua/wp-content/uploads/2021/01/Kyryl-chuk-A.A.-KHimiia-hruntiv.pdf (In Ukrainian) Google Scholar | ||||
| ||||
| Lamlom, S. F., Irshad, A., & Mosa, W. F. A. (2023). The biological and biochemical composition of wheat (Triticum aestivum) as affected by the bio and organic fertilizers. BMC Plant Biology, 23(1), 111. doi:10.1186/s12870-023-04120-2 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Lengrand, S., Pesenti, L., Bragard, C., & Legrève, A. (2024). Bacterial endophytome sources, profile and dynamics - a conceptual framework. Frontiers in Sustainable Food Systems, 8, 1378436. doi:10.3389/fsufs.2024.1378436 Crossref ● Google Scholar | ||||
| ||||
| Liu, W., Liu, K., Chen, D., Zhang, Z., Li, B., El-Mogy, M. M., Tian, S., & Chen, T. (2022). Solanum lycopersicum, a model plant for the studies in developmental biology, stress biology and food science. Foods, 11(16), 2402. doi:10.3390/foods11162402 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Louden, B. C., Haarmann, D., & Lynne, A. M. (2011). Use of blue agar CAS assay for siderophore detection. Journal of Microbiology & Biology Education, 12(1), 51-53. doi:10.1128/jmbe.v12i1.249 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Maslovska, O., Komplikevych, S., Danylo, I., Parnikoza, I., & Hnatush, S. (2024). Plant growth-promoting potential of bacterial isolates from the rhizosphere of Deschampsia antarctica. Ukrainian Antarctic Journal, 22(1(28)), 63-81. doi:10.33275/1727-7485.1.2024.728 Crossref ● Google Scholar | ||||
| ||||
| Mokhele, B., Zhan, X., Yang, G., & Zhang, X. (2012). Review: nitrogen assimilation in crop plants and its affecting factors. Canadian Journal of Plant Science, 92(3), 399-405. doi:10.4141/cjps2011-135 Crossref ● Google Scholar | ||||
| ||||
| Ontivero, Y., Cuba-Díaz, M., Fuentes-Lillo, E., & Convey, P. (2024). Germination strategies and seed quality of Colobanthus quitensis: implications for sustainable Antarctic ecosystems and ex situ plant conservation. Sustainability, 16(23), 10726. doi:10.3390/su162310726 Crossref ● Google Scholar | ||||
| ||||
| Orozco-Mosqueda, Ma. del C., Flores, A., Rojas-Sánchez, B., Urtis-Flores, C. A., Morales-Cedeño, L. R., Valencia-Marin, M. F., Chávez-Avila, S., Rojas-Solis, D., & Santoyo, G. (2021). Plant growth-promoting bacteria as bioinoculants: attributes and challenges for sustainable crop improvement. Agronomy, 11(6), 1167. doi:10.3390/agronomy11061167 Crossref ● Google Scholar | ||||
| ||||
| Pandey, S., Singh, P., Samal, B., Verma, R., & Chatterjee, S. (2017). Xanthoferrin siderophore estimation from the cell-free culture supernatants of different Xanthomonas strains by HPLC. Bio-Protocol, 7(14), e2410. doi:10.21769/bioprotoc.2410 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Pérez-Miranda, S., Cabirol, N., George-Téllez, R., Zamudio-Rivera, L. S., & Fernández, F. J. (2007). O-CAS, a fast and universal method for siderophore detection. Journal of Microbiological Methods, 70(1), 127-131. doi:10.1016/j.mimet.2007.03.023 Crossref ● PubMed ● Google Scholar | ||||
| ||||
| Prasad, J. S., Suman, A., Kumar, D., Sharma, P., Ramakrishnan, B., & Aswini, K. (2025). Agroecology-based assembly and function of endophytic bacteria in seeds of Triticum aestivum. Frontiers in Microbiology, 16, 1699093. doi:10.3389/fmicb.2025.1699093 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Ríos-Ruiz, W. F., Jave-Concepción, H. G., Torres-Chávez, E. E., Rios-Reategui, F., Padilla-Santa-Cruz, E., & Guevara-Pinedo, N. E. (2025). Plant-growth-promoting microorganisms: their impact on crop quality and yield, with a focus on rice. International Journal of Plant Biology, 16(1), 9. doi:10.3390/ijpb16010009 Crossref ● Google Scholar | ||||
| ||||
| Romaniuk, K., Ciok, A., Decewicz, P., Uhrynowski, W., Budzik, K., Nieckarz, M., Pawlowska, J., Zdanowski, M. K., Bartosik, D., & Dziewit, L. (2018). Insight into heavy metal resistome of soil psychrotolerant bacteria originating from King George Island (Antarctica). Polar Biology, 41(7), 1319-1333. doi:10.1007/s00300-018-2287-4 Crossref ● Google Scholar | ||||
| ||||
| Romaniuk, N. D., Tsvilynyuk, O. M., Mykyievych, I. M., & Terek, O. I. (2005). Fiziolohiia roslyn: navchalnyi praktykum [Plant physiology: a training manual]. Piramida. (In Ukrainian) | ||||
| ||||
| Sahoo, L., Swain, B., & Yadav, D. (2025). A review on different priming strategies to mitigate abiotic stress in plants. Discover Applied Sciences, 7(6), 618. doi:10.1007/s42452-025-07009-x Crossref ● Google Scholar | ||||
| ||||
| Searchinger, T. D., Waite, R., Hanson, C., Ranganathan, J., & Matthews, E. (2019). Creating a sustainable food future: a menu of solutions to feed nearly 10 billion people by 2050. World Resources Institute. https://www.wri.org/research/creating-sustainable-food-future | ||||
| ||||
| Sethi, G., Behera, K. K., Sayyed, R., Adarsh, V., Sipra, B. S., Singh, L., Alamro, A. A., & Behera, M. (2025). Enhancing soil health and crop productivity: the role of zinc-solubilizing bacteria in sustainable agriculture. Plant Growth Regulation, 105(3), 601-617. doi:10.1007/s10725-025-01294-7 Crossref ● Google Scholar | ||||
| ||||
| Stanton-Geddes, J., Paape, T., Epstein, B., Briskine, R., Yoder, J., Mudge, J., Bharti, A. K., Farmer, A. D., Zhou, P., Denny, R., May, G. D., Erlandson, S., Yakub, M., Sugawara, M., Sadowsky, M. J., Young, N. D., & Tiffin, P. (2013). Candidate genes and genetic architecture of symbiotic and agronomic traits revealed by whole-genome, sequence-based association genetics in Medicago truncatula. PloS One, 8(5), e65688. doi:10.1371/journal.pone.0065688 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| State Standard of Ukraine. (2002). Nasinnia silskohospodarskykh kultur. Metody vyznachennia yakosti (DSTU 4138-2002) [Seeds of agricultural crops. Methods for quality determination]. https://online.budstandart.com/ua/catalog/doc-page.html?id_doc=91465 (In Ukrainian) | ||||
| ||||
| State Standard of Ukraine. (2004). Yakist hruntu. Metody vyznachannia orhanichnoi rechovyny (DSTU 4289:2004) [Soil quality. Methods for determination of organic matter]. https://online.budstandart.com/ua/catalog/doc-page.html?id_doc=56400 (In Ukrainian) | ||||
| ||||
| State Standard of Ukraine. (2005). Yakist gruntu. Vyznachennia rukhomykh spoluk fosforu i kaliiu za metodom Kirsanova v modyfikatsii NNTs IHA (DSTU 4405:2005) [Soil quality. Determination of mobile phosphorus and potassium compounds by the modified Kirsanov method]. https://online.budstandart.com/ua/catalog/doc-page?id_doc=60252 (In Ukrainian) | ||||
| ||||
| State Standard of Ukraine. (2014). Yakist gruntu. Vyznachennia hidrolitychnoi kyslotnosti (DSTU 7537:2014) [Soil quality. Determination of hydrolytic acidity]. https://online.budstandart.com/ua/catalog/doc-page?id_doc=62116 (In Ukrainian) | ||||
| ||||
| State Standard of Ukraine. (2015). Yakist gruntu. Vyznachennia lehkohidroliznoho azotu metodom Kornfilda (DSTU 7863:2015) [Soil quality. Determination of easily hydrolyzable nitrogen by the Cornfield method]. https://online.budstandart.com/ua/catalog/doc-page.html?id_doc=62745 (In Ukrainian) | ||||
| ||||
| State Standard of Ukraine. (2015). Yakist gruntu. Vyznachennia rukhomoi sirky v modyfikatsii NNTs IHA imeni O. N. Sokolovskoho (DSTU 8347:2015) [Soil quality. Determination of mobile sulfur by a modified method]. https://online.budstandart.com/ua/catalog/doc-page?id_doc=62892 (In Ukrainian) | ||||
| ||||
| State Standard of Ukraine. (2007). Yakist gruntu. Vyznachennia pH (DSTU ISO 10390:2007) [Soil quality. Determination of pH]. https://online.budstandart.com/ua/catalog/doc-page.html?id_doc=29452 (In Ukrainian) | ||||
| ||||
| Tariq, A., Tanvir, A., Barasarathi, J., Alsohim, A. S., Mastinu, A., Sayyed, R., & Nazir, A. (2025). Endophytes: key role players for sustainable agriculture: mechanisms, omics insights and future prospects. Plant Growth Regulation, 105(6), 1969-1990. doi:10.1007/s10725-025-01370-y Crossref ● Google Scholar | ||||
| ||||
| Turner, S., Pryer, K. M., Miao, V. P. W., & Palmer, J. D. (1999). Investigating deep phylogenetic relationships among cyanobacteria and plastids by small subunit rRNA sequence analysis. The Journal of Eukaryotic Microbiology, 46(4), 327-338. doi:10.1111/j.1550-7408.1999.tb04612.x Crossref ● PubMed ● Google Scholar | ||||
| ||||
| Vidotti, M. S., Lyra, D. H., Morosini, J. S., Granato, Í. S. C., Quecine, M. C., Azevedo, J. L., & Fritsche-Neto, R. (2019). Additive and heterozygous (dis)advantage GWAS models reveal candidate genes involved in the genotypic variation of maize hybrids to Azospirillum brasilense. PloS One, 14(9), e0222788. doi:10.1371/journal.pone.0222788 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Yerkhova, A., Parnikoza, I., Pavlovska, M., Yevchun, H., & Prekrasna-Kviatkovska, Y. (2022). Microbiomes of Antarctic pearlwort (Colobanthus quitensis) of the maritime Antarctic: distinct diversity and core microbes in rhizosphere and endosphere compartments of the plant. Ukrainian Antarctic Journal, 20(2), 212-240. doi:10.33275/1727-7485.2.2022.701 Crossref ● Google Scholar | ||||
| ||||
| Yu, X., Zhao, J., Liu, X., Sun, L., Tian, J., & Wu, N. (2021). Cadmium pollution impact on the bacterial community structure of arable soil and the isolation of the cadmium resistant bacteria. Frontiers in Microbiology, 12. doi:10.3389/fmicb.2021.698834 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Znój, A., Gawor, J., Gromadka, R., Chwedorzewska, K. J., & Grzesiak, J. (2021). Root-associated bacteria community characteristics of Antarctic plants: Deschampsia antarctica and Colobanthus quitensis - a comparison. Microbial Ecology, 84(3), 808-820. doi:10.1007/s00248-021-01891-9 Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
| Znój, A., Grzesiak, J., Gawor, J., Gromadka, R., & Chwedorzewska, K. J. (2022). Highly specialized bacterial communities within three distinct rhizocompartments of Antarctic hairgrass (Deschampsia antarctica Desv.). Polar Biology, 45(5), 833-844. doi:10.1007/s00300-022-03027-2 Crossref ● Google Scholar | ||||
Refbacks
- There are currently no refbacks.
Copyright (c) 2026 Olha Maslovska, Solomiia Komplikevych, Valentyn Hubaryk, Oksana Moroz, Oleksiy Telehuz, Svitlana Hnatush

This work is licensed under a Creative Commons Attribution 4.0 International License.
