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Impact of ionizing radiation on the environmental microbiomes of Chornobyl wetlands
Uppsala University, Disciplinary Domain of Science and Technology, Biology, Department of Ecology and Genetics, Animal ecology. Brown Univ, Dept Ecol Evolut & Organismal Biol, Providence, RI 02912 USA.;Brown Univ, Inst Brown Environm & Soc, Providence, RI 02912 USA.;Smithsonian Conservat Biol Inst, Ctr Conservat Genom, Washington, DC 20013 USA..ORCID iD: 0000-0002-9998-3689
Spanish Res Council EBD CSIC, Donana Biol Stn, Seville 41092, Spain..ORCID iD: 0000-0002-9007-2643
Univ Oviedo CSIC Princip Asturias, Biodivers Res Inst, IMIB, Mieres 33600, Asturias, Spain.;Univ Oviedo, Dept Biol Organisms & Syst, Zool Unit, Oviedo 33071, Asturias, Spain.;Univ Oviedo, Dept Biol Organisms & Syst, Zool Unit, C Catedrat Rodrigo Uria S-N, Oviedo 33071, Asturias, Spain..
2023 (English)In: Environmental Pollution, ISSN 0269-7491, E-ISSN 1873-6424, Vol. 330, article id 121774Article in journal (Refereed) Published
Abstract [en]

Radioactive contamination has the potential to cause damage to DNA and other biomolecules. Anthropogenic sources of radioactive contamination include accidents in nuclear power plants, such as the one in Chornobyl in 1986 which caused long-term radioactive pollution. Studies on animals within radioactive zones have provided us with a greater understanding of how wildlife can persevere despite chronic radiation exposure. However, we still know very little about the effects of radiation on the microbial communities in the environment. We examined the impact of ionizing radiation and other environmental factors on the diversity and composition of environmental microbiomes in the wetlands of Chornobyl. We combined detailed field sampling along a gradient of radiation together with 16S rRNA high-throughput metabarcoding. While radiation did not affect the alpha diversity of the microbiomes in sediment, soil, or water, it had a significant effect on the beta diversity in all environment types, indicating that the microbial composition was affected by ionizing radiation. Specifically, we detected several microbial taxa that were more abundant in areas with high radiation levels within the Chor-nobyl Exclusion Zone, including bacteria and archaea known to be radioresistant. Our results reveal the existence of rich and diverse microbiomes in Chornobyl wetlands, with multiple taxonomic groups that are able to thrive despite the radioactive contamination. These results, together with additional field and laboratory-based ap-proaches examining how microbes cope with ionizing radiation will help to forecast the functionality and re-naturalization dynamics of radiocontaminated environments.

Place, publisher, year, edition, pages
Elsevier, 2023. Vol. 330, article id 121774
Keywords [en]
Chernobyl, Metabarcoding, Microbiota, Pollution, Radioactivity, Soil microbes
National Category
Microbiology Environmental Sciences Ecology
Identifiers
URN: urn:nbn:se:uu:diva-507493DOI: 10.1016/j.envpol.2023.121774ISI: 001013053400001PubMedID: 37178954OAI: oai:DiVA.org:uu-507493DiVA, id: diva2:1781060
Funder
Swedish Research Council, 2020-00259Helge Ax:son Johnsons stiftelse Swedish Radiation Safety Authority, SSM 2018-2038Carl Tryggers foundation , CT 16:344
Note

Elin Videvall and Pablo Burraco contributed equally to the study.

Available from: 2023-07-07 Created: 2023-07-07 Last updated: 2023-07-07Bibliographically approved

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