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Metal adsorption onto bacterial surfaces: Development of a predictive approach

机译:金属在细菌表面的吸附:一种预测方法的发展

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Aqueous metal cation adsorption onto bacterial surfaces can be successfully modeled by means of a surface complexation approach. However, relatively few stability constants for metal-bacterial surface complexes have been measured. In order to determine the bacterial adsorption behavior of cations that have not been studied in the laboratory, predictive techniques are required that enable estimation of the stability constants of bacterial surface complexes. In this study, we use a linear free-energy approach to compare previously measured stability constants for Bacillus subtilis metal-carboxyl surface complexes with aqueous metal-organic acid anion stability constants. The organic acids that we consider are acetic, oxalic, citric, and tiron. We add to this limited data set by conducting metal adsorption experiments onto Bacillus subtilis, determining bacterial surface stability constants for Co, Nd, Ni, Sr, and, Zn. The adsorption behavior of each of the metals studied here was described well by considering metal-carboxyl bacterial surface complexation only, except for the Zn adsorption behavior, which required carboxyl and phosphoryl complexation to obtain a suitable fit to the data. The best correlation between bacterial carboxyl surface complexes and aqueous organic acid anion stability constants was obtained by means of metal-acetate aqueous complexes, with a linear correlation coefficient of 0.97. This correlation applies only to unhydrolyzed aqueous cations and only to carboxyl binding of those cations, and it does not predict the binding behavior under conditions where metal binding to other bacterial surface site types occurs. However, the relationship derived in this study permits estimation of the carboxyl site adsorption behavior of a wide range of aqueous metal cations for which there is an absence of experimental data. This technique, coupled with the observation of similar adsorption behaviors across bacterial species (Yee and Fein, 2001), enables estimation of the effects of bacterial adsorption on metal mobilities for a large number of environmental and geologic applications.
机译:可以通过表面络合方法成功地模拟金属阳离子在细菌表面上的吸附。然而,已经测量出金属-细菌表面配合物的相对较少的稳定常数。为了确定尚未在实验室中研究过的阳离子的细菌吸附行为,需要使用预测技术来估计细菌表面复合物的稳定性常数。在这项研究中,我们使用线性自由能方法来比较先前测得的枯草芽孢杆菌金属-羧基表面复合物的稳定常数与水性金属-有机酸阴离子的稳定常数。我们认为的有机酸是乙酸,草酸,柠檬酸和铁。通过对枯草芽孢杆菌进行金属吸附实验,确定Co,Nd,Ni,Sr和Zn的细菌表面稳定性常数,我们将其添加到此有限的数据集中。通过仅考虑金属-羧基细菌表面络合,可以很好地描述此处研究的每种金属的吸附行为,但锌的吸附行为除外,锌的吸附行为需要羧基和磷酰基的络合才能获得与数据的合适拟合。通过金属乙酸盐水溶液络合物获得细菌羧基表面络合物与有机酸阴离子稳定常数之间的最佳相关性,线性相关系数为0.97。这种相关性仅适用于未水解的水性阳离子,并且仅适用于这些阳离子的羧基结合,并且不能预测在发生金属与其他细菌表面位点结合的条件下的结合行为。然而,在这项研究中得出的关系允许估计没有实验数据的各种水性金属阳离子的羧基位点吸附行为。这种技术,加上观察到的跨细菌物种相似的吸附行为(Yee和Fein,2001),使得能够估计在许多环境和地质应用中细菌吸附对金属迁移率的影响。

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