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将胞外聚合物(EPS)的组成与膜生物膜的物理结构和水力阻力联系起来。

Linking composition of extracellular polymeric substances (EPS) to the physical structure and hydraulic resistance of membrane biofilms.

机构信息

Eawag, Swiss Federal Institute of Aquatic Science and Technology, 8600 Dübendorf, Switzerland; ETH Zürich, Institute of Environmental Engineering, 8093 Zürich, Switzerland.

Empa - Swiss Federal Institute for Material Science and Technology, Laboratory for Mechanics of Materials and Nanostructures, Feuerwerkerstrasse 39, CH-3602 Thun, Switzerland.

出版信息

Water Res. 2018 Apr 1;132:211-221. doi: 10.1016/j.watres.2017.12.058. Epub 2017 Dec 27.

Abstract

The effect of extracellular polymeric substances (EPS) on the meso-scale physical structure and hydraulic resistance of membrane biofilms during gravity driven membrane (GDM) filtration was investigated. Biofilms were developed on the surface of ultrafiltration membranes during dead-end filtration at ultra-low pressure (70 mbar). Biofilm EPS composition (total protein, polysaccharide and eDNA) was manipulated by growing biofilms under contrasting nutrient conditions. Nutrient conditions consisted of (i) a nutrient enriched condition with a nutrient ratio of 100:30:10 (C: N: P), (ii) a phosphorus limitation (C: N: P ratio: 100:30:0), and (iii) a nitrogen limitation (C: N: P ratio: 100:0:10). The structure of the biofilm was characterised at meso-scale using Optical Coherence Tomography (OCT). Biofilm composition was analysed with respect to total organic carbon, total cellular mass and extracellular concentrations of proteins, polysaccharides, and eDNA. 2D-confocal Raman mapping was used to characterise the functional group composition and micro-scale distribution of the biofilms EPS. Our study reveals that the composition of the EPS matrix can determine the meso-scale physical structure of membrane biofilms and in turn its hydraulic resistance. Biofilms grown under P limiting conditions were characterised by dense and homogeneous physical structures with high concentrations of polysaccharides and eDNA. Biofilm grown under nutrient enriched or N limiting conditions were characterised by heterogeneous physical structures with lower concentrations of polysaccharides and eDNA. For P limiting biofilms, 2D-confocal Raman microscopy revealed a homogeneous spatial distribution of anionic functional groups in homogeneous biofilm structures with higher polysaccharide and eDNA concentrations. This study links EPS composition, physical structure and hydraulic resistance of membrane biofilms, with practical relevance for the hydraulic performances of GDM ultrafiltration.

摘要

研究了胞外聚合物(EPS)对重力驱动膜(GDM)过滤中膜生物膜中中尺度物理结构和水力阻力的影响。在超低压力(70 mbar)下进行死端过滤时,在超滤膜表面上开发了生物膜。通过在对比营养条件下生长生物膜来操纵生物膜 EPS 组成(总蛋白,多糖和 eDNA)。营养条件包括(i)营养丰富的条件,其营养比为 100:30:10(C:N:P),(ii)磷限制(C:N:P 比:100:30:0)和(iii)氮限制(C:N:P 比:100:0:10)。使用光学相干断层扫描(OCT)在中尺度上对生物膜结构进行了表征。根据总有机碳,总细胞质量以及蛋白质,多糖和 eDNA 的细胞外浓度分析了生物膜的组成。使用 2D 共焦拉曼映射来表征生物膜 EPS 的功能基团组成和微观分布。我们的研究表明,EPS 基质的组成可以确定膜生物膜的中尺度物理结构,并进而影响其水力阻力。在磷限制条件下生长的生物膜的特征是具有高密度和均匀的物理结构,并且多糖和 eDNA 的浓度较高。在营养丰富或氮限制条件下生长的生物膜的特征是具有较低多糖和 eDNA 浓度的非均质物理结构。对于磷限制的生物膜,2D 共焦拉曼显微镜揭示了具有较高多糖和 eDNA 浓度的均匀生物膜结构中阴离子功能基团的均匀空间分布。这项研究将膜生物膜的 EPS 组成,物理结构和水力阻力与 GDM 超滤的水力性能相关联,具有实际意义。

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