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Bacterial extracellular polymeric substance (EPS): A carrier of heavy metals in the marine food-chain

机译:细菌细胞外聚合物(EPS):海洋食物链中的重金属载体

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The ecological implications of metal binding properties of bacterial EPS and its possible role in the bioaccumulation of pollutants in the marine food-chain was investigated using a partially purified and chemically characterized microbial EPS isolated from a species of Marinobacter. Various factors influencing metal sorption by the EPS including the influence of initial metal concentrations, incubation time, pH and sodium chloride concentrations on binding of lead (Pb~(2+)) and copper (Cu~(2+)) were evaluated. The bacterial EPS selectively bound more amount of Cu~(2+) per mg of EPS than Pb~(2+). Both copper and lead were sorbed more at near neutral pH than acidic pH. The sorption of Cu~(2+) increased with increasing copper concentration. The estimated maximum binding ability (MBA) of the EPS was 182 nmol copper and 13 nmol lead mg~(-1) EPS. However, the sorption of these metals decreased with the increase in sodium chloride concentration. Furthermore, up to 35% of ~(14)C-labeled Marinobacter was ingested by a benthic polychaete Hediste diversicolor. On an average, 29% of the ingested EPS was absorbed into tissues and 49% of the EPS was respired. It was apparent that the animals used the EPS as a source of energy and nutrition. The labile nature of the bacterial EPS and its ability to bind heavy metals might route the bound metals through the marine food chain, thereby transferring and aiding bioaccumulation of metal pollutants in the higher trophic animals.
机译:细菌EPS的金属结合特性的生态学意义及其在海洋食物链中污染物的生物富集中的可能作用是使用从一种Marinobacter菌种中分离出来的经过部分纯化和化学表征的微生物EPS进行研究的。评估了影响EPS吸附金属的各种因素,包括初始金属浓度,孵育时间,pH和氯化钠浓度对铅(Pb〜(2+))和铜(Cu〜(2+))结合的影响。细菌EPS与Pb〜(2+)相比,每毫克EPS选择性结合更多的Cu〜(2+)。铜和铅在接近中性pH时比酸性pH吸附更多。 Cu〜(2+)的吸附量随铜浓度的增加而增加。 EPS的估计最大结合能力(MBA)为182 nmol铜和13 nmol铅mg〜(-1)EPS。但是,这些金属的吸附随着氯化钠浓度的增加而降低。此外,底栖多毛杂种Hediste diversicolor摄取了约35%的〜(14)C标记的Marinobacter。平均而言,摄入的EPS的29%被组织吸收,而EPS的49%被呼吸。显然,这些动物将EPS用作能量和营养的来源。细菌EPS的不稳定性质及其结合重金属的能力可能使结合的金属通过海洋食物链,从而转移并帮助高营养动物中金属污染物的生物蓄积。

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