胞外聚合物
生物膜
吸附
化学
舍瓦内拉
多糖
希瓦氏菌属
氧化还原
外聚物
溶解
反应性(心理学)
细胞外
生物修复
核化学
微生物学
细菌
生物化学
无机化学
有机化学
吸附
生物
病理
遗传学
医学
替代医学
作者
Bin Cao,Bulbul Ahmed,David W. Kennedy,Zhe-Ming Wang,Liang Shi,Matthew J. Marshall,Jim Fredrickson,Nancy Isern,Paul D. Majors,Haluk Beyenal
摘要
The goal of this study was to quantify the contribution of extracellular polymeric substances (EPS) to U(VI) immobilization by Shewanella sp. HRCR-1. Through comparison of U(VI) immobilization using cells with bound EPS (bEPS) and cells with minimal EPS, we show that (i) bEPS from Shewanella sp. HRCR-1 biofilms contribute significantly to U(VI) immobilization, especially at low initial U(VI) concentrations, through both sorption and reduction; (ii) bEPS can be considered a functional extension of the cells for U(VI) immobilization and they likely play more important roles at lower initial U(VI) concentrations; and (iii) the U(VI) reduction efficiency is dependent upon the initial U(VI) concentration and decreases at lower concentrations. To quantify the relative contributions of sorption and reduction to U(VI) immobilization by EPS fractions, we isolated loosely associated EPS (laEPS) and bEPS from Shewanella sp. HRCR-1 biofilms grown in a hollow fiber membrane biofilm reactor and tested their reactivity with U(VI). We found that, when reduced, the isolated cell-free EPS fractions could reduce U(VI). Polysaccharides in the EPS likely contributed to U(VI) sorption and dominated the reactivity of laEPS, while redox active components (e.g., outer membrane c-type cytochromes), especially in bEPS, possibly facilitated U(VI) reduction.
科研通智能强力驱动
Strongly Powered by AbleSci AI