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藁科 友朗*; 佐藤 朝子*; 比内 浩; Shaikhutdinov, N.*; Shagimardanova, E.*; 森 宙史*; 玉木 聡志*; 斎藤 元文*; 眞田 幸尚; 佐々木 祥人; et al.
Applied and Environmental Microbiology, 90(4), p.e02113-23_1 - e02113-23_23, 2024/04
被引用回数:0 パーセンタイル:0.00(Biotechnology & Applied Microbiology)A major incident occurred at the Fukushima Daiichi Nuclear Power Station following the tsunami triggered by the Tohoku-Pacific Ocean Earthquake in March 2011, whereby seawater entered the torus room in the basement of the reactor building. Here, we identify and analyze the bacterial communities in the torus room water and several environmental samples. Samples of the torus room water (1 10 BqCs/L) were collected by the Tokyo Electric Power Company Holdings from two sampling points between 30 cm and 1 m from the bottom of the room (TW1) and the bottom layer (TW2). A structural analysis of the bacterial communities based on 16S rRNA amplicon sequencing revealed that the predominant bacterial genera in TW1 and TW2 were similar. TW1 primarily contained the genus Limnobacter, a thiosulfate-oxidizing bacterium. -Irradiation tests on Limnobacter thiooxidans, the most closely related phylogenetically found in TW1, indicated that its radiation resistance was similar to ordinary bacteria. TW2 predominantly contained the genus Brevirhabdus, a manganese- oxidizing bacterium. Although bacterial diversity in the torus room water was lower than seawater near Fukushima, 70% of identified genera were associated with metal corrosion. Latent environment allocation - an analytical technique that estimates habitat distributions and co-detection analyses - revealed that the microbial communities in the torus room water originated from a distinct blend of natural marine microbial and artificial bacterial communities typical of biofilms, sludge, and wastewater. Understanding the specific bacteria linked to metal corrosion in damaged plants is important for advancing decommissioning efforts.
堀池 巧*; 土津田 雄馬*; 中野 友里子*; 落合 朝須美*; 宇都宮 聡*; 大貫 敏彦; 山下 光雄*
Applied and Environmental Microbiology, 83(20), p.e00855-17_1 - e00855-17_11, 2017/10
被引用回数:18 パーセンタイル:60.40(Biotechnology & Applied Microbiology)福島第一原子力発電所事故により、放射性ストロンチウムの一部が海洋に漏出した。塩濃度が高い条件では一般的な吸着剤によるSrの除去効率が低いので、本研究では生物起源鉱物による塩水中からの水溶性Srの除去を検討した。海底堆積物から単離したバチルス属細菌のTK2k株は、塩水中のSrの99%以上を除去した。Srはまず細胞表面に吸着し、その後細胞外に形成した炭酸塩鉱物に取り込まれることを明らかにした。