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Structural and Functional Interrogation of Selected Biological Nitrogen Removal Systems in the United States Denmark and Singapore Using Shotgun Metagenomics

机译:使用Shot弹枪基因组学研究美国丹麦和新加坡的选定生物脱氮系统的结构和功能询问

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摘要

Conventional biological nitrogen removal (BNR), comprised of nitrification and denitrification, is traditionally employed in wastewater treatment plants (WWTPs) to prevent eutrophication in receiving water bodies. More recently, the combination of selective ammonia to nitrite oxidation (nitritation) and autotrophic anaerobic ammonia oxidation (anammox), collectively termed deammonification, has also emerged as a possible energy- and cost-effective BNR alternative. Herein, we analyzed microbial diversity and functional potential within 13 BNR processes in the United States, Denmark, and Singapore operated with varying reactor configuration, design, and operational parameters. Using next-generation sequencing and metagenomics, gene-coding regions were aligned against a custom protein database expanded to include all published aerobic ammonia oxidizing bacteria (AOB), nitrite oxidizing bacteria (NOB), anaerobic ammonia oxidizing bacteria (AMX), and complete ammonia oxidizing bacteria (CMX). Overall contributions of these N-cycle bacteria to the total functional potential of each reactor was determined, as well as that of several organisms associated with denitrification and/or structural integrity of microbial aggregates (biofilm or granules). The potential for these engineered processes to foster a broad spectrum of microbial catabolic, anabolic, and carbon assimilation transformations was elucidated. Seeded sidestream DEMON® deammonification systems and single-stage nitritation-anammox moving bed biofilm reactors (MBBRs) and a mainstream Cleargreen reactor designed to enrich in AOB and AMX showed lower enrichment in AMX functionality than an enriched two-stage nitritation-anammox MBBR system treating mainstream wastewater. Conventional BNR systems in Singapore and the United States had distinct metagenomes, especially relating to AOB. A hydrocyclone process designed to recycle biomass granules for mainstream BNR contained almost identical structural and functional characteristics in the overflow, underflow, and inflow of mixed liquor (ALT) rather than the expected selective enrichment of specific nitrifying or AMX organisms. Inoculum used to seed a sidestream deammonification process unexpectedly contained <10% of total coding regions assigned to AMX. These results suggest the operating conditions of engineered bioprocesses shape the resident microbial structure and function far more than the bioprocess configuration itself. We also highlight the advantage of a systems- and metagenomics-based interrogation of both the microbial structure and potential function therein over targeting of individual populations or specific genes.
机译:传统上,由硝化和反硝化作用组成的常规生物脱氮(BNR)通常用于废水处理厂(WWTP)中,以防止接收水体富营养化。近来,选择性氨到亚硝酸盐氧化(硝化)和自养厌氧氨氧化(anammox)的组合(统称为脱氨)也已成为一种可能的节约能源和成本的BNR替代品。本文中,我们分析了在美国,丹麦和新加坡采用不同反应堆配置,设计和运行参数运行的13个BNR工艺中的微生物多样性和功能潜力。使用下一代测序和宏基因组学,将基因编码区与定制的蛋白质数据库进行比对,该数据库已扩展为包括所有已发布的需氧氨氧化细菌(AOB),亚硝酸盐氧化细菌(NOB),厌氧氨氧化细菌(AMX)和完全氨氧化细菌(CMX)。确定了这些N循环细菌对每个反应器总功能潜力的总体贡献,以及与微生物聚集体(生物膜或颗粒)的反硝化和/或结构完整性相关的几种生物的总体贡献。阐明了这些工程化方法促进广泛的微生物分解代谢,合成代谢和碳同化转化的潜力。播种的侧流DEMON®脱氨系统,单级硝化-厌氧氨氧化移动床生物膜反应器(MBBR)和旨在富集AOB和AMX的主流Cleargreen反应器显示出的AMX功能富集度低于浓缩的两级硝化-厌氧氨氧化MBBR系统处理主流废水。新加坡和美国的常规BNR系统具有截然不同的元基因组,特别是与AOB相关的。设计用于回收主流BNR的生物质颗粒的水力旋流器工艺在混合液(ALT)的溢流,下溢和流入中包含几乎相同的结构和功能特征,而不是特定硝化或AMX生物的预期选择性富集。用来接种侧流脱氨过程的接种物出乎意料地少于分配给AMX的总编码区的10%。这些结果表明,经过工程改造的生物过程的运行条件比生物过程结构本身更能影响驻留的微生物结构和功能。我们还强调了基于系统和宏基因组学的微生物结构和其中潜在功能的询问优于针对单个人群或特定基因的询问的优势。

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