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分子模拟和 X 射线散射解析的金属-多磷酸盐配合物的分子配位、结构和稳定性:多磷酸盐生物命运的结构见解。

Molecular Coordination, Structure, and Stability of Metal-Polyphosphate Complexes Resolved by Molecular Modeling and X-ray Scattering: Structural Insights on the Biological Fate of Polyphosphate.

机构信息

Department of Biological and Environmental Engineering, College of Agriculture and Life Sciences, Cornell University, Ithaca, New York 14853, United States.

Department of Civil and Environmental Engineering, McCormick School of Engineering and Applied Science, Northwestern University, Evanston, Illinois 60208, United States.

出版信息

Environ Sci Technol. 2021 Oct 19;55(20):14185-14193. doi: 10.1021/acs.est.1c04782. Epub 2021 Oct 8.

Abstract

Polyphosphate-accumulating organisms (PAOs), which can store high levels of phosphate (P) in the form of polyphosphate (polyP), are employed to engineer enhanced biological P removal (EBPR) from wastewaters. Co-localization of Mg and K in polyP granules of PAOs has been reported, and higher abundance of Mg-polyP granules relative to other metal complexes was correlated positively with EBPR performance stability. However, the underlying mechanism remains unknown. Here, we obtained molecular structural information of hydrated polyP complexes with four physiologically relevant metal cations (Na, K, Ca, and Mg) using computational and experimental techniques. Molecular dynamics simulations revealed that Mg-polyP and K-polyP complexes were the most and least stable of the complexes, respectively, suggesting that the co-occurrence of these complexes facilitates variable polyP bioavailability. The relative thermodynamic stability reflected the strength of metal chelation whereby the coordination distance between the polyP ligand O and the metal was 1.71-2.01 Å for Mg but this distance was 2.64-2.70 Å for K. Pair distribution function analysis of X-ray scattering data obtained with a Mg-polyP solution corroborated the theoretical Mg-polyP coordination geometry. These findings implied a possible mechanistic role of metal complexation in the P cycling traits of PAOs in engineered and natural systems.

摘要

聚磷菌(PAOs)能够以多聚磷酸盐(polyP)的形式储存高水平的磷(P),被用于从废水中进行强化生物除磷(EBPR)。已经报道了 PAOs 中多聚磷酸盐颗粒中 Mg 和 K 的共定位,并且相对于其他金属配合物,Mg-多聚磷酸盐颗粒的丰度与 EBPR 性能稳定性呈正相关。然而,其潜在机制尚不清楚。在这里,我们使用计算和实验技术获得了与四种生理相关的金属阳离子(Na、K、Ca 和 Mg)的水合多聚磷酸盐配合物的分子结构信息。分子动力学模拟表明,Mg-多聚磷酸盐和 K-多聚磷酸盐配合物是最稳定和最不稳定的配合物,这表明这些配合物的共存促进了多聚磷酸盐生物利用度的变化。相对热力学稳定性反映了金属螯合的强度,其中多聚磷酸盐配体 O 与金属之间的配位距离对于 Mg 为 1.71-2.01 Å,但对于 K 为 2.64-2.70 Å。用 Mg-多聚磷酸盐溶液获得的 X 射线散射数据的配对分布函数分析证实了理论上的 Mg-多聚磷酸盐配位几何形状。这些发现暗示了金属络合在工程和自然系统中 PAOs 的磷循环特性中的可能的机制作用。

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