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Keywords = phytoplankton and bottom sediments microbial diversity

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31 pages, 45064 KB  
Article
The Role of Phytoplankton and Sediment Microbial Community on Sr, U, Pu, and Am Behavior in Freshwater Lake Dryazlo
by Marina Popova, Vasiliy Riabov, Nadezhda Popova, Grigoriy Artemiev and Alexey Safonov
Biology 2026, 15(9), 724; https://doi.org/10.3390/biology15090724 - 2 May 2026
Cited by 1 | Viewed by 843
Abstract
Radionuclide contamination of surface water bodies poses a significant environmental challenge, particularly for low-productivity dystrophic systems where natural self-purification capacity is limited. This study aimed to assess the potential of phytoplankton and bottom sediments as biogeochemical barriers for radionuclides. Laboratory modeling of 90 [...] Read more.
Radionuclide contamination of surface water bodies poses a significant environmental challenge, particularly for low-productivity dystrophic systems where natural self-purification capacity is limited. This study aimed to assess the potential of phytoplankton and bottom sediments as biogeochemical barriers for radionuclides. Laboratory modeling of 90Sr, 233U, 239Pu, and 241Am accumulation was conducted using samples of Lake Dryazlo (Tver Oblast) water and bottom sediments as a representative dystrophic model system. Sorption onto phytoplankton biomass over a single growing season was estimated at 1.89 × 104, 5.41 × 104, 6.64 × 104, and 4.04 × 104 Bq g−1 dry biomass for 90Sr, 233U, 239Pu, and 241Am, respectively. Actinide immobilization in bottom sediments depended on mineral composition and microbial community activity. Ammophos addition increased radionuclide removal from the liquid phase by 2–5-fold through enhanced phytoplankton productivity, and promoted actinide fixation via phosphate mineral phase formation and stimulation of anaerobic sulfur- and iron-cycling bacteria. These results demonstrate a viable biogeochemical barrier approach applicable to the decommissioning of radioactive waste storage ponds and remediation of radionuclide-contaminated water bodies. Full article
(This article belongs to the Section Marine and Freshwater Biology)
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22 pages, 2832 KB  
Article
Bacterial Dimethylsulfoniopropionate Biosynthesis in the East China Sea
by Ji Liu, Yunhui Zhang, Jingli Liu, Haohui Zhong, Beth T. Williams, Yanfen Zheng, Andrew R. J. Curson, Chuang Sun, Hao Sun, Delei Song, Brett Wagner Mackenzie, Ana Bermejo Martínez, Jonathan D. Todd and Xiao-Hua Zhang
Microorganisms 2021, 9(3), 657; https://doi.org/10.3390/microorganisms9030657 - 22 Mar 2021
Cited by 23 | Viewed by 5542
Abstract
Dimethylsulfoniopropionate (DMSP) is one of Earth’s most abundant organosulfur molecules. Recently, many marine heterotrophic bacteria were shown to produce DMSP, but few studies have combined culture-dependent and independent techniques to study their abundance, distribution, diversity and activity in seawater or sediment environments. Here [...] Read more.
Dimethylsulfoniopropionate (DMSP) is one of Earth’s most abundant organosulfur molecules. Recently, many marine heterotrophic bacteria were shown to produce DMSP, but few studies have combined culture-dependent and independent techniques to study their abundance, distribution, diversity and activity in seawater or sediment environments. Here we investigate bacterial DMSP production potential in East China Sea (ECS) samples. Total DMSP (DMSPt) concentration in ECS seawater was highest in surface waters (SW) where phytoplankton were most abundant, and it decreased with depth to near bottom waters. However, the percentage of DMSPt mainly apportioned to bacteria increased from the surface to the near bottom water. The highest DMSP concentration was detected in ECS oxic surface sediment (OSS) where phytoplankton were not abundant. Bacteria with the genetic potential to produce DMSP and relevant biosynthesis gene transcripts were prominent in all ECS seawater and sediment samples. Their abundance also increased with depth and was highest in the OSS samples. Microbial enrichments for DMSP-producing bacteria from sediment and seawater identified many novel taxonomic groups of DMSP-producing bacteria. Different profiles of DMSP-producing bacteria existed between seawater and sediment samples and there are still novel DMSP-producing bacterial groups to be discovered in these environments. This study shows that heterotrophic bacteria significantly contribute to the marine DMSP pool and that their contribution increases with water depth and is highest in seabed surface sediment where DMSP catabolic potential is lowest. Furthermore, distinct bacterial groups likely produce DMSP in seawater and sediment samples, and many novel producing taxa exist, especially in the sediment. Full article
(This article belongs to the Section Environmental Microbiology)
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