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首页> 外文期刊>Crystal growth & design >Bacterial EPS in Agarose Hydrogels Directs Mineral Organization in Calcite Precipitates: Species-Specific Biosignatures of Bacillus subtilis, Mycobacterium phley, Mycobacterium smagmatis, and Pseudomonas putida EPS
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Bacterial EPS in Agarose Hydrogels Directs Mineral Organization in Calcite Precipitates: Species-Specific Biosignatures of Bacillus subtilis, Mycobacterium phley, Mycobacterium smagmatis, and Pseudomonas putida EPS

机译:琼脂糖水凝胶中的细菌EPS指导矿物质组织方解石沉淀物:枯草芽孢杆菌,分枝杆菌,分枝杆菌Smagmatis和假单胞菌普赖达eps的物种特异性生物炎

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摘要

Hydrogels present model systems for biopolymer matrices in biological structural materials, as their fabric and physicochemical properties can be tailored to mimic characteristics of polymer matrices in biological hard tissues. However, hydrogels comprise synthetic compounds and lack attributes of native biopolymers, in contrast to extracellular polymeric substance (EPS) actively secreted by microbes for protection and enhancement of physiological activities. For testing the directing influence of native biopolymers on mineralization, we precipitated calcite/gel composite aggregates from agarose gels containing EPS of Bacillus subtilis, Mycobacterium phley, Mycobacterium smagmatis, or Pseudomonas putida, respectively. We characterized the aggregates with Fourier transform infrared spectroscopy, field-emission scanning electron microscopy imaging, and electron backscatter diffraction. Relative to reference aggregates devoid of EPS, aggregates containing EPS are reduced in size and show distinctive morphologies directed by the EPS of a specific bacterium. In P. putida and M. phley composites, occluded polymers are present as membranes, for M. smagmatis and B. subtilis occluded polymers are mainly developed as networks of fibrils. Precipitate crystal subunit formation in EPS-containing composites is extensive compared to the reference crystal; subunits vary in shape, size, and organization: for M. smagmatis and B. subtilis, subunit organization is radial to spherulitic; for P. putida, it is random; for M. phley, it is coaligned in all three dimensions (single-crystal-like). Bacterial EPS changes mineral microstructure/texture in a species-specific manner, a characteristic that, when developed further, might be used as an identification tool for bacterial calcification in present/past environments.
机译:水凝胶在生物结构材料中的生物聚合物基质的现有模型系统,因为它们的织物和物理化学性质可以量身定制以模拟生物硬组织中聚合物基质的特征。然而,水凝胶包括合成化合物和天然生物聚合物的缺乏属性,与微生物的细胞外聚合物物质(EPS)相反,通过微生物的微细胞分泌,用于保护和增强生理活性。为了测试天然生物聚合物对矿化的引导影响,我们分别从含有枯草芽孢杆菌,分枝杆菌,分枝杆菌,普赖达的琼脂糖凝胶中沉淀的胶石/凝胶复合聚集体。我们用傅里叶变换红外光谱,现场排放扫描电子显微镜成像和电子反向散射衍射进行了聚集体。相对于EPS的参考骨料,含有EPS的聚集体的尺寸减小,并显示由特定细菌的EPS指导的独特形态。在P.Putida和M. Phley复合材料中,闭塞聚合物作为膜存在,对于M. Smagmatis和B.枯草芽孢杆菌闭塞聚合物主要被发展为原纤维网络。与参考晶体相比,在含EPS复合材料中沉淀在含EPS复合材料中的沉淀亚基形成;亚基在形状,大小和组织中变化:对于M. Smagmatis和B.枯草芽孢杆菌,亚单位组织是径向的;对于P. Pivida,它是随机的;对于M. Phley,它在所有三个维度(单晶硅)聚集。细菌EPS以特异性的方式改变矿物微观结构/质地,该特征在于,在进一步开发时,可以用作当前/过去环境中的细菌钙化的识别工具。

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