School of Civil Engineering, Wuhan University, Wuhan 430072, China.
School of Civil Engineering, Wuhan University, Wuhan 430072, China.
Bioresour Technol. 2016 Aug;214:1-8. doi: 10.1016/j.biortech.2016.04.088. Epub 2016 Apr 20.
The evolution of the bacterial population during formation of denitrifying phosphorus removal granular sludge was investigated using high-throughput pyrosequencing. As a result, mature granules with a compact structure were obtained in an anaerobic/aerobic/anoxic (A/O/A) sequencing batch reactor under an organic loading rate as low as 0.3kg COD/(m(3)·d). Rod-shaped microbes were observed to cover with the outer surface of granules. Besides, reliable COD and simultaneous nitrogen and phosphorus removal efficiencies were achieved over the whole operation period. MiSeq pyrosequencing analysis illustrated that both the microbial diversity and richness increased sharply during the granulation process, whereas they stayed stable after the presence of granules. Some microorganisms seemed to contribute to the formation of granules, and some were identified as functional bacterial groups responsible for constructing the biological reactor.
采用高通量焦磷酸测序技术研究了反硝化除磷颗粒污泥形成过程中细菌种群的演变。结果表明,在有机负荷率低至 0.3kg COD/(m³·d)的条件下,在厌氧/好氧/缺氧(A/O/A)序批式反应器中可获得具有紧凑结构的成熟颗粒。观察到杆状微生物覆盖在颗粒的外表面。此外,在整个运行期间实现了可靠的 COD 和同步脱氮除磷效率。MiSeq 焦磷酸测序分析表明,在制粒过程中微生物多样性和丰富度急剧增加,而在颗粒存在后则保持稳定。一些微生物似乎有助于颗粒的形成,而一些被鉴定为负责构建生物反应器的功能细菌群。
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