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探究厌氧氨氧化微生物聚集能力的机理:胞外聚合物极性、组成和分子结构的作用。

Mechanistic insight into the aggregation ability of anammox microorganisms: Roles of polarity, composition and molecular structure of extracellular polymeric substances.

机构信息

State Key Laboratory of Urban Water Resources and Environment (SKLUWRE), School of Environment, Harbin Institute of Technology, Harbin 150090, China.

State Key Laboratory of Urban Water Resources and Environment (SKLUWRE), School of Environment, Harbin Institute of Technology, Harbin 150090, China.

出版信息

Water Res. 2024 May 1;254:121438. doi: 10.1016/j.watres.2024.121438. Epub 2024 Mar 7.

Abstract

The chemical characteristics of extracellular polymeric substances (EPS) of anammox bacteria (AnAOB) play a crucial role in the rapid enrichment of AnAOB and the stable operation of wastewater anammox processes. To clarify the influential mechanisms of sludge EPS on AnAOB aggregation, multiple parameters, including the polarity distribution, composition, and molecular structure of EPS, were selected, and their quantitative relationship with AnAOB aggregation was analyzed. Compared to typical anaerobic sludge (anaerobic floc and granular sludge), the anammox sludge EPS exhibited higher levels of tryptophan-like substances (44.82-56.52 % vs. 2.57-39.81 %), polysaccharides (40.02-53.49 mg/g VSS vs. 30.22-41.69 mg/g VSS), and protein structural units including α-helices (20.70-23.98 % vs. 16.48-19.32 %), β-sheets (37.43-42.98 % vs. 25.78-36.72 %), and protonated nitrogen (N) (0.065-0.122 vs. 0.017-0.061). In contrast, it had lower contents of β-turns (20.95-27.39 % vs. 28.17-39.04 %). These biopolymers were found to originate from different genera of AnAOB. Specifically, the α-helix-rich proteins were mainly derived from Candidatus Kuenenia, whereas the extracellular proteins related to tryptophan and N were closely associated with Candidatus Brocadia. Critically, these EPS components could drive anammox aggregation through interactions. Substantial amounts of tryptophan-like substances facilitated the formation of β-sheet structures and the exposure of internal hydrophobic clusters, which benefited the anammox aggregation. Meanwhile, extracellular proteins with high N content played a pivotal role in the formation of mixed protein-polysaccharide gel networks with the electronegative regions of polysaccharides, which could be regarded as the key component in the maintenance of anammox sludge stability. These findings provide a comprehensive understanding of the multifaceted roles of EPS in driving anammox aggregation and offer valuable insights into the development of EPS regulation strategies aimed at optimizing the anammox process.

摘要

厌氧氨氧化菌(AnAOB)胞外聚合物(EPS)的化学特性在 AnAOB 的快速富集和废水厌氧氨氧化工艺的稳定运行中起着至关重要的作用。为了阐明污泥 EPS 对 AnAOB 聚集的影响机制,选择了多个参数,包括 EPS 的极性分布、组成和分子结构,并分析了它们与 AnAOB 聚集的定量关系。与典型的厌氧污泥(厌氧絮体和颗粒污泥)相比,厌氧氨氧化污泥 EPS 表现出更高水平的色氨酸样物质(44.82-56.52%比 2.57-39.81%)、多糖(40.02-53.49mg/gVSS 比 30.22-41.69mg/gVSS)和包含α-螺旋(20.70-23.98%比 16.48-19.32%)、β-折叠(37.43-42.98%比 25.78-36.72%)和质子化氮(N)(0.065-0.122比 0.017-0.061)的蛋白质结构单元。相比之下,它的β-转角含量较低(20.95-27.39%比 28.17-39.04%)。这些生物聚合物源自不同属的 AnAOB。具体而言,富含α-螺旋的蛋白质主要来自 Candidatus Kuenenia,而与色氨酸和 N 相关的细胞外蛋白则与 Candidatus Brocadia 密切相关。至关重要的是,这些 EPS 成分可以通过相互作用驱动厌氧氨氧化聚集。大量的色氨酸样物质促进了β-折叠结构的形成和内部疏水性簇的暴露,这有利于厌氧氨氧化聚集。同时,含有高 N 含量的细胞外蛋白质在与多糖的电负性区域形成混合蛋白质-多糖凝胶网络方面发挥了关键作用,这可以被视为维持厌氧氨氧化污泥稳定性的关键成分。这些发现提供了对 EPS 在驱动厌氧氨氧化聚集方面的多方面作用的全面理解,并为开发旨在优化厌氧氨氧化工艺的 EPS 调节策略提供了有价值的见解。

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