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盐度升高会引发生物膜群落中厌氧氨氧化菌功能蛋白的显著变化。

Increased salinity triggers significant changes in the functional proteins of ANAMMOX bacteria within a biofilm community.

机构信息

School of Environmental Science and Engineering, Sun Yat-sen University, Guangzhou 510275, China; Guangdong Provincial Key Laboratory of Environmental Pollution Control, Remediation Technology (Sun Yat-sen University), Guangzhou 510275, China.

Hefei Water Supply Group Co., Ltd, Anhui 230011, China.

出版信息

Chemosphere. 2018 Sep;207:655-664. doi: 10.1016/j.chemosphere.2018.05.076. Epub 2018 May 17.

Abstract

Anaerobic ammonium oxidation (ANAMMOX) processes can potentially be influenced by salinity related to variable salinity in water environment. Here, we used 16S rRNA sequencing analysis combining with iTRAQ-based quantitative proteomic approach to reveal the response of microbial community and functional proteins to salinity, which was increased from 0 to 20 g L with a step of 5 g L (designed as S5, S10, S15 and S20) compared to control reactor (without salinity stress desined as S0). The 16S rRNA sequencing analysis showed that a high salinity (20 g L, S20) decreased the abundance of genus Candidatus Jettenia but increased that of Candidatus Kuenenia. A total of 1609 differentially expressed proteins were acquired in the three comparison groups (S5:S0, S20:S0 and S20:S5). Of these, 39 proteins co-occurred in the three salt-exposed samples. Hydrazine dehydrogenase (HDH; Q1PW30) and nitrate reductase (Q1PZD8) were up-regulated more than 3-folds in the exposure of 20 g-NaCl/L. The functional enrichment analysis further showed that some proteins responsible for ion binding, catalysis and oxidation-reduction reaction were up-regulated, which explained the physiological resilience of ANAMMOX bacteria under salinity stress. Additionally, ANAMMOX bacteria responded to salinity by modulating the electron transport systems, indicating that the cells retained a high potential for proton pumping, as well as the ATP production. Furthermore, the over-expression of HDH which associated with ANAMMOX metabolism, was potentially related to the increased abundance of halophilic Candidatus Kuenenia. These findings provide a comprehensive baseline for understanding the roles of salinity stresses in shaping the functional proteins of ANAMMOX bacteria.

摘要

厌氧氨氧化(ANAMMOX)过程可能会受到水环境中可变盐度相关的盐度的影响。在这里,我们使用 16S rRNA 测序分析结合 iTRAQ 定量蛋白质组学方法,揭示微生物群落和功能蛋白对盐度的响应,盐度从 0 增加到 20 g/L,步长为 5 g/L(设计为 S5、S10、S15 和 S20),与对照反应器(无盐度胁迫,设计为 S0)相比。16S rRNA 测序分析表明,高盐度(20 g/L,S20)降低了属 Candida tus Jettenia 的丰度,但增加了属 Candida tus Kuenenia 的丰度。在三个比较组(S5:S0、S20:S0 和 S20:S5)中获得了总共 1609 个差异表达蛋白。其中,在三种盐暴露样本中共有 39 种蛋白质共同出现。肼脱氢酶(HDH;Q1PW30)和硝酸盐还原酶(Q1PZD8)在暴露于 20 g-NaCl/L 时上调超过 3 倍。功能富集分析进一步表明,一些负责离子结合、催化和氧化还原反应的蛋白质上调,这解释了 ANAMMOX 细菌在盐胁迫下的生理弹性。此外,ANAMMOX 细菌通过调节电子传递系统对盐度做出反应,表明细胞保持了高质子泵浦潜力,以及 ATP 的产生。此外,与 ANAMMOX 代谢相关的 HDH 的过表达可能与嗜盐属 Candida tus Kuenenia 的丰度增加有关。这些发现为了解盐度胁迫在塑造 ANAMMOX 细菌功能蛋白中的作用提供了一个全面的基线。

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