对用于废水处理的连续流动有氧颗粒系统的元基因组学分析
Alison T Gomeiz1, Yewei Sun2, Aaron Newborn3
1School of Systems Biology, George Mason University, 10900 University Blvd, Manassas, VA 20110, USA.
Microorganisms
|September 28, 2023
概括
废水处理中的有氧颗粒化通过交替的营养条件来增强. 较长的饥荒时期促进了更大,更密集的颗粒,改善了沉,由特定的细菌组成驱动.
科学领域:
- 环境微生物学环境微生物学
- 废水处理技术 废水处理技术
背景情况:
- 有氧颗粒化加速了废水处理中的生物质沉积.
- 在连续流反应器 (CFRs) 中实现有氧颗粒化具有挑战性.
- 交替的营养丰富 (盛宴) 和营养贫乏 (饥荒) 条件可以促进颗粒化.
研究的目的:
- 在模拟插头流反应器 (PFR) 中,在不同的盛宴与饥荒比率下形成的有氧颗粒中的细菌组成的特征.
- 研究颗粒形态和微生物社区结构之间的关系.
主要方法:
- 从三个模拟的PFR中对颗粒生物质进行了元基因组学分析.
- 细菌群落的遗传学和功能 (KEGG通路) 分析.
主要成果:
- 与传统活性污泥相比,有氧颗粒显示出不同的细菌组成.
- 饥荒时间最长的PFR产生了更大,更密集的颗粒,具有更好的沉积.
- 这些颗粒中含有更高比例的产生细胞外聚合物质 (EPS) 的细菌.
- 功能分析显示,从最长的饥荒PFR.中的颗粒中增加了分泌系统和定数感应.
结论:
- 食饥饿比率显著影响有氧颗粒的特性.
- 长时间的饥荒时期有利于开发强大的有氧颗粒,具有增强的沉性质.
- 沉积良好的颗粒中的细菌群体表现出类似生物膜的功能.
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