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Bioaccumulation of 137Cs and 60Co by bacteria isolated from spent nuclear fuel pools
Authors:L.?Ti?áková,M.?Pipí?ka  author-information"  >  author-information__contact u-icon-before"  >  mailto:pipiskam@gmail.com"   title="  pipiskam@gmail.com"   itemprop="  email"   data-track="  click"   data-track-action="  Email author"   data-track-label="  "  >Email author,A.?Godány,M.?Horník,B.?Vidová,J.?Augustín
Affiliation:1. Department of Medical Radiation Engineering, Science and Research Branch, Islamic Azad University, Tehran, Iran
2. Agricultural, Medical and Industrial Research School, Nuclear Science and Technology Research Institute, P.O. Box 31485/498, Karaj, Tehran, Iran
3. Department of Energy Science, Sungkyunkwan University, 300 Cheongcheon-dong, Suwon, Korea
Abstract:This paper is focused on a characterization of bacterial contamination in pool water of the interim spent fuel storage (JAVYS Inc.) in Slovak Republic and on bioaccumulation of 137Cs and 60Co by isolated bacteria. Bacterial community in pool water is kept on very low level by extremely low concentration of solutes in deionized water and by the efficient water filtration system. Based on standard methods and sequencing of 16S rDNA four pure bacterial cultures were identified as Kocuria palustris, Micrococcus luteus, Ochrobactrum spp. and Pseudomonas aeruginosa. Isolated aerobic bacteria were able to bioaccumulate 137Cs and 60Co in laboratory experiments. The mechanism of Co and Cs binding involve rapid interactions with anionic groups of the components of cell surface and in the case of Cs+ ions is followed by transport processes across cytoplasm membranes and by intracellular distribution. The maximum specific uptake of Cs+ after 48 h cultivation in mineral medium (MM) reached 7.54 ± 0.48 μmol g?1 dw (Ochrobactrum spp.), 19.6 ± 0.1 μmol g?1 dw (M. luteus) and 20.1 ± 2.2 μmol g?1 dw (K. palustris). The maximum specific uptake of Co2+ after 24 h cultivation in MM reached 31.1 ± 3.5 μmol g?1 dw (Ochrobactrum spp.), 86.6 ± 12.2 μmol g?1 dw (M. luteus) and 16.9 ± 1.2 μmol g?1 dw (K. palustris). These results suggest that due to the long lasting uptake of 137Cs, 60Co and other radionuclides by biofilm in pool water high specific radioactivities (Bq m?2) can be expected on stainless steel walls of pools.
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