Microbiomes and Planctomycete diversity in large-scale aquaria habitats

厌氧氨氧化菌 浮霉菌门 生物 氮气循环 16S核糖体RNA 念珠菌 细菌 基因组 生态学 蛋白质细菌 反硝化 环境化学 化学 氮气 基因 生物化学 遗传学 有机化学 反硝化细菌
作者
Claire E. Elbon,Gary R. LeCleir,Matthew J. Tuttle,Sophie Jurgensen,Thomas G. Demas,Christian J. Keller,T. Stewart,Alison Buchan
出处
期刊:PLOS ONE [Public Library of Science]
卷期号:17 (5): e0267881-e0267881 被引量:6
标识
DOI:10.1371/journal.pone.0267881
摘要

In commercial large-scale aquaria, controlling levels of nitrogenous compounds is essential for macrofauna health. Naturally occurring bacteria are capable of transforming toxic nitrogen species into their more benign counterparts and play important roles in maintaining aquaria health. Nitrification, the microbially-mediated transformation of ammonium and nitrite to nitrate, is a common and encouraged process for management of both commercial and home aquaria. A potentially competing microbial process that transforms ammonium and nitrite to dinitrogen gas (anaerobic ammonium oxidation [anammox]) is mediated by some bacteria within the phylum Planctomycetes. Anammox has been harnessed for nitrogen removal during wastewater treatment, as the nitrogenous end product is released into the atmosphere rather than in aqueous discharge. Whether anammox bacteria could be similarly utilized in commercial aquaria is an open question. As a first step in assessing the viability of this practice, we (i) characterized microbial communities from water and sand filtration systems for four habitats at the Tennessee Aquarium and (ii) examined the abundance and anammox potential of Planctomycetes using culture-independent approaches. 16S rRNA gene amplicon sequencing revealed distinct, yet stable, microbial communities and the presence of Planctomycetes (~1–15% of library reads) in all sampled habitats. Preliminary metagenomic analyses identified the genetic potential for multiple complete nitrogen metabolism pathways. However, no known genes diagnostic for the anammox reaction were found in this survey. To better understand the diversity of this group of bacteria in these systems, a targeted Planctomycete-specific 16S rRNA gene-based PCR approach was used. This effort recovered amplicons that share <95% 16S rRNA gene sequence identity to previously characterized Planctomycetes, suggesting novel strains within this phylum reside within aquaria.
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