Details
Title
Analysis of variations in heavy metal levels and soil microorganism counts resulting from shelling incidents in UkraineJournal title
Archives of Environmental ProtectionYearbook
2025Volume
51Issue
1Authors
Affiliation
Moliszewska, Ewa : Institute of Environmental Engineering and Biotechnology, University of Opole, Poland ; Matik, Kacper : Institute of Environmental Engineering and Biotechnology, University of Opole, Poland ; Ślusarczyk, Aleksandra : Institute of Environmental Engineering and Biotechnology, University of Opole, Poland ; Pawliczek, Dominik : Institute of Environmental Engineering and Biotechnology, University of Opole, Poland ; Hovorukha, Vira : Institute of Environmental Engineering and Biotechnology, University of Opole, Poland ; Tashyrev, Oleksandr : Institute of Environmental Engineering and Biotechnology, University of Opole, Poland ; Bida, Iryna : Department of Extremophilic Microorganisms Biology, D.K. Zabolotny Institute of Microbiology and Virologyof the National Academy of Sciences of Ukraine, Kyiv, Ukraine ; Havryliuk, Olesia : Department of Extremophilic Microorganisms Biology, D.K. Zabolotny Institute of Microbiology and Virologyof the National Academy of Sciences of Ukraine, Kyiv, Ukraine ; Hovorukha, Vira : Department of Extremophilic Microorganisms Biology, D.K. Zabolotny Institute of Microbiology and Virologyof the National Academy of Sciences of Ukraine, Kyiv, Ukraine ; Tashyrev, Oleksandr : Department of Extremophilic Microorganisms Biology, D.K. Zabolotny Institute of Microbiology and Virologyof the National Academy of Sciences of Ukraine, Kyiv, Ukraine ; Havryliuk, Olesia : Laboratory of Sanitary and Environmental Microbiology (MSMLab)-UNESCO Chair on Sustainability,Department of Chemical Engineering, Universitat Politecnica de Catalunya-BarcelonaTech, Terrassa, SpainKeywords
soil ; heavy metals ; soil contamination ; microorganisms ; shellingDivisions of PAS
Nauki TechniczneCoverage
83-91Publisher
Polish Academy of SciencesBibliography
- Agboola, O., Babatunde, D. E., Isaac Fayomi, O. S., Sadiku, E. R., Popoola, P., Moropeng, L., Yahaya, A. & Mamudu, O. A. (2020). A review on the impact of mining operation: Monitoring, assessment and management. Results in Engineering, 8, 100181. DOI:10.1016/j.rineng.2020.100181
- Ahmad, W., Alharthy, R. D., Zubair, M., Ahmed, M., Hameed, A. & Rafique, S. (2021). Toxic and heavy metals contamination assessment in soil and water to evaluate human health risk. Scientific Reports, 11(1), 17006. DOI:10.1038/s41598-021-94616-4
- Albrektienė-Plačakė, R. & Paliulis, D. (2024). Investigation on applying sapropel for removal of heavy metals (cadmium, chromium, copper, and zinc) from aqueous solutions. Archives of Environmental Protection, 50, 2, pp. 55-64. DOI:10.24425/aep.2024.150552
- Al-Qadri, F. A. & Alsaiar, R. (2023). Silica ash from waste palm fronds used as an eco-friendly, sustainable adsorbent for the removal of cupper (II). Archives of Environmental Protection, 49(2), pp. 30-39. DOI:10.24425/aep.2023.145894
- Bonchkovskyi, O. S., Ostapenko, P. O., Shvaiko, V. M. & Bonchkovskyi, A. S. (2023). Remote sensing as a key tool for assessing war-induced damage to soil cover in Ukraine (the case study of Kyinska territorial hromada). Journal of Geology, Geography and Geoecology, 32(3), 474–487. DOI:10.15421/11234
- Broomandi, P., Guney, M., Kim, J. R. & Karaca, F. (2020). Soil Contamination in Areas Impacted by Military Activities: A Critical Review. Sustainability, 12(21), 9002. DOI:10.3390/su12219002
- Bukhari, D. A. & Rehman, A. (2023). Metal-resistant bacteria as a green bioresource for arsenic remediation in wastewaters. Current Opinion in Green and Sustainable Chemistry, 40, 100785. DOI:10.1016/j.cogsc.2023.100785
- Butu, A., Grozea, I., Sarac, I. & Butnariu, M. (2020). Global Scenario of Remediation Techniques to Combat Pesticide Pollution. [In] R. A. Bhat, K. R. Hakeem, & M. A. Dervash (Eds.), Bioremediation and Biotechnology, Vol 2 (pp. 47–72). Springer International Publishing. DOI:10.1007/978-3-030-40333-1_4
- Guo, H., Nasir, M., Lv, J., Dai, Y. & Gao, J. (2017). Understanding the variation of microbial community in heavy metals contaminated soil using high throughput sequencing. Ecotoxicology and Environmental Safety, 144, pp. 300–306. DOI:10.1016/j.ecoenv.2017.06.048
- Havryliuk, O., Bida, I., Hovorukha, V., Bielaieva, Y., Liubinska, A., Gladka, G., Kalinichenko, A., Zaimenko, N., Tashyrev, O. & Dziuba, O. (2024). Application of Granular Microbial Preparation and Silicon Dioxide Analcime for Bioremediation of Ecocide Areas. Sustainability, 16(3), 1097. DOI:10.3390/su16031097
- Havryliuk, О. А., Bida, І. О., Hovorukha, V. М., Danko, Y. P., Gladka, G. V., Sachko, А. V., Yastremska, L. S., Tashyrev, О. B. & Muchnyk, P. V. (2020). Metal-resistant microorganisms of tap water: theoretical justification and biotechnological application. Problems of Environmental Biotechnology. 1-2. DOI:10.18372/2306-6407.1-2.16059
- Hemmat-Jou, M. H., Safari-Sinegani, A. A., Mirzaie-Asl, A. & Tahmourespour, A. (2018). Analysis of microbial communities in heavy metals-contaminated soils using the metagenomic approach. Ecotoxicology, 27(9), pp. 1281–1291. DOI:10.1007/s10646-018-1981-x
- Huminilovych, R., Stadnik, V., Sozanskyi, M., Pidlisnyuk, V. & Ivaniuk, A. (2023). Monitoring of Soils Contaminated by Military Activities During Phytoremediation Using Miscanthus X Giganteus. International Conference of Young Professionals «GeoTerrace-2023», 1–5. DOI:10.3997/2214-4609.2023510113
- Hungate, R. E. (1969). Chapter IV A Roll Tube Method for Cultivation of Strict Anaerobes. [In] Methods in Microbiology, 3, pp. 117–132. Elsevier. DOI:10.1016/S0580-9517(08)70503-8
- Khan, S., Naushad, Mu., Lima, E. C., Zhang, S., Shaheen, S. M. & Rinklebe, J. (2021). Global soil pollution by toxic elements: Current status and future perspectives on the risk assessment and remediation strategies – A review. Journal of Hazardous Materials, 417, 126039. DOI:10.1016/j.jhazmat.2021.126039
- Kholoshyn, I. V., Syvyj, M. J., Mantulenko, S. V., Shevchenko, O. L., Sherick, D. & Mantulenko, K. M. (2023). Assessment of military destruction in Ukraine and its consequences using remote sensing. IOP Conference Series: Earth and Environmental Science, 1254, 1, 012132. DOI:10.1088/1755-1315/1254/1/012132
- Lindh, P. & Lemenkova, P. (2022). Soil contamination from heavy metals and persistent organic pollutants (PAH, PCB and HCB) in the coastal area of Västernorrland, Sweden. Gospodarka Surowcami Mineralnymi–Mineral Resources Management, 38, 2, pp. 147-168. DOI:10.24425/gsm.2022.141662
- Liu, L., Xia, M., Hao, J., Xu, H. & Song, W. (2021). Biosorption of Pb (II) by the resistant Enterobacter sp.: Investigated by kinetics, equilibriumand thermodynamics. Archives of Environmental Protection, 47, 3, pp.28-36. DOI:10.24425/aep.2021.138461
- Margaryan, A. (2021). Diversity and Application of Heavy-Metal Resistant Microbes. [In] Singh, R.P., Manchanda, G., Bhattacharjee, K. & Panosyan, H. (Eds.), Microbes in Microbial Communities, pp. 153–174) Springer Singapore. DOI:10.1007/978-981-16-5617-0_7
- Melnyk, O., Shevchenko, O., Kuzmin, O. & Niemirich, O. (2023). Risks of toxic environmental pollution from military operations. Food security: modern challenges and mechanisms to ensure, 25. DOI:10.5281/zenodo.7859027
- Mitryasova, O., Smyrnov, V., Koszelnik, P., Salamon, I., Smyrnova, S. & Mats, A. (2024). Geochemical Anomalies of the Heavy Metals in the Industrial and Urban Agglomeration Soils. Ecological Engineering & Environmental Technology, 25, 3, pp. 165–177. DOI:10.12912/27197050/177838
- Parakhnenko, V. Н., Zadorozhna, О. М., Liakhovska, N. O. & Blahopoluchna, A. H. (2023). Environmental assessment of chemical pollution of soils as a result of the war. Taurian Scientific Herald, 131, pp. 367–373. DOI:10.32782/2226-0099.2023.131.46
- Petrushka, K., Malovanyy, M. S., Skrzypczak, D., Chojnacka, K. & Warchoł, J. (2024a). Risks of Soil Pollution with Toxic Elements During Military Actions in Lviv. Journal of Ecological Engineering, 25, 1, pp. 195–208. DOI:10.12911/22998993/175136
- Saleh, T. A., Mustaqeem, M. & Khaled, M. (2022). Water treatment technologies in removing heavy metal ions from wastewater: A review. Environmental Nanotechnology, Monitoring & Management, 17, 100617. DOI:10.1016/j.enmm.2021.100617
- Saran, A., Imperato, V., Fernandez, L., Gkorezis, P., d’Haen, J., Merini, L. J., Vangronsveld, J. & Thijs, S. (2020). Phytostabilization of Polluted Military Soil Supported by Bioaugmentation with PGP-Trace Element Tolerant Bacteria Isolated from Helianthus petiolaris. Agronomy, 10, 2, 204. DOI:10.3390/agronomy10020204
- Shahini, E., Shebanina, O., Kormyshkin, I., Drobitko, A. & Chernyavskaya, N. (2024). Environmental consequences for the world of Russia’s war against Ukraine. International Journal of Environmental Studies, 81, 1, pp. 463–474. DOI:10.1080/00207233.2024.2302745
- Shebanina, O., Kormyshkin, I., Bondar, A., Bulba, I. & Ualkhanov, B. (2024). Ukrainian soil pollution before and after the Russian invasion. International Journal of Environmental Studies, 81, 1, pp. 208–215. DOI:10.1080/00207233.2023.2245288
- Shekhunova, S. B., Stadnichenko, S. M. & Siumar, N. P. (2022). The Issue of Assessing Environmental Risks and Economic Losses of Ukraine’s Subsoil as a Result of Russian Military Aggression Against Ukraine. 16th International Conference Monitoring of Geological Processes and Ecological Condition of the Environment, 1–5. DOI:10.3997/2214-4609.2022580249
- Tauqeer, H. M., Karczewska, A., Lewińska, K., Fatima, M., Khan, S. A., Farhad, M., Turan, V., Ramzani, P. M. A. & Iqbal, M. (2021). Environmental concerns associated with explosives (HMX, TNT, and RDX), heavy metals and metalloids from shooting range soils: Prevailing issues, leading management practices, and future perspectives. [In] Handbook of Bioremediation (pp. 569–590). Elsevier. DOI:10.1016/B978-0-12-819382-2.00036-3
- Tytykalo, R., Pavlovska, N. & Andriiets, M. (2022). Economic and administrative methods of restoration by local governments of the environment of Ukraine destroyed as a result of military operations. Baltic Journal of Economic Studies, 8, 5, pp. 184–190. DOI:10.30525/2256-0742/2022-8-5-184-190
Type
ArticleIdentifier
DOI: 10.24425/aep.2025.153752DOI
10.24425/aep.2025.153752Abstracting & Indexing
Abstracting & Indexing
Archives of Environmental Protection is covered by the following services:
AGRICOLA (National Agricultural Library)
Arianta
Baidu
BazTech
BIOSIS Citation Index
CABI
CAS
DOAJ
EBSCO
Engineering Village
GeoRef
Google Scholar
Index Copernicus
Journal Citation Reports™
Journal TOCs
KESLI-NDSL
Naviga
ProQuest
SCOPUS
Reaxys
Ulrich's Periodicals Directory
WorldCat
Web of Science