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Microorganisms show a high affinity for trivalent actinides and lanthanides, which play an important role in the safe disposal of high-level radioactive waste as well as in the mining of various rare earth elements. The interaction of the lanthanide Eu(III) with the sulfate-reducing microorganism Desulfosporosinus hippei DSM 8344, a representative of the genus Desulfosporosinus that naturally occurs in clay rock and bentonite, was investigated. Eu(III) is often used as a non-radioactive analogue for the trivalent actinides Pu(III), Am(III), and Cm(III), which contribute to a major part of the radiotoxicity of the nuclear waste. D. hippei DSM 8344 showed a weak interaction with Eu(III), most likely due to a complexation with lactate in artificial Opalinus Clay pore water. Hence, a low removal of the lanthanide from the supernatant was observed. Scanning transmission electron microscopy coupled with energy-dispersive X-ray spectroscopy revealed a bioprecipitation of Eu(III) with phosphates potentially excreted from the cells. This demonstrates that the ongoing interaction mechanisms are more complex than a simple biosorption process. The bioprecipitation was also verified by luminescence spectroscopy, which showed that the formation of the Eu(III) phosphate compounds starts almost immediately after the addition of the cells. Moreover, chemical microscopy provided information on the local distribution of the different Eu(III) species in the formed cell aggregates. These results provide first insights into the interaction mechanisms of Eu(III) with sulfate-reducing bacteria and contribute to a comprehensive safety concept for a high-level radioactive waste repository, as well as to a better understanding of the fate of heavy metals (especially rare earth elements) in the environment.
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http://dx.doi.org/10.1016/j.ecoenv.2023.115474 | DOI Listing |
Water Res
August 2025
Guangzhou Landscape Architecture Group Co., Ltd., Guangzhou 510000, PR China; Guangzhou Municipal Construction Group Co., Ltd., Guangzhou 510030, PR China.
Enhanced ammonium (10.6 - 14.7%) and total inorganic nitrogen (TIN, 4.
View Article and Find Full Text PDFAnaerobic methanotrophic archaea (ANME) are crucial to planetary carbon cycling. They oxidise methane in anoxic niches by transferring electrons to nitrate, metal oxides, or sulfate-reducing bacteria. No ANMEs have been isolated, hampering the biochemical investigation of anaerobic methane oxidation.
View Article and Find Full Text PDFEnviron Pollut
August 2025
Centro de Química Estrutural, Institute of Molecular Sciences and Department of Chemical Engineering, Instituto Superior Técnico, University of Lisbon, Av. Rovisco Pais 1, Lisboa, 1049-001, Portugal; Centre for Northern Studies, Université Laval, Québec, QC, Canada. Electronic address: joao.cana
Mercury (Hg) is a natural occurring element but is often emitted from anthropogenic sources and reaches the Arctic via long-range atmospheric transport. Organic matter (OM)-rich thermokarst lakes are characteristic features of the permafrost landscape in this region, where monomethylmercury (MMHg) production can be enhanced, as this process is mainly carried out by prokaryotes. To better understand the complex Hg biogeochemical cycle, two distinct thermokarst lakes (SAS 1A and SAS 2A) in sporadic permafrost in the Sasapimakwananistikw (SAS) River Valley, Canadian Subarctic, were sampled during winter and summer of 2022.
View Article and Find Full Text PDFMicroorganisms
August 2025
The Guangxi Key Laboratory of Beibu Gulf Marine Biodiversity Conservation, College of Marine Sciences, Beibu Gulf University, Qinzhou 535011, China.
The Sanniang Bay (SNB) and Dafeng River Estuary (DFR) in the Northern Beibu Gulf, China, are critical habitats for the Indo-Pacific humpback dolphin (). However, whether and how the decreased dissolved oxygen (DO) has happened in bottom seawater remains poorly understood. This study investigated DO depletion and microbial community responses using a multidisciplinary approach.
View Article and Find Full Text PDFBraz J Microbiol
August 2025
Poços de Caldas, Federal University of Alfenas, Rodovia José Aurélio Vilela, 11999 (BR 267 Km 533), Poços de Caldas, Minas Gerais, Brazil.
Acidophilic sulfate-reducing bacteria (SRB) are anaerobic microorganisms capable of precipitating metals and raising pH levels in acidic drainage waters. Limited genera have been isolated from acidic sediments. This study aimed to characterize enrichment cultures of acidophilic SRB communities found in uranium mine sediments in Minas Gerais, Brazil.
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