High Dissolved Oxygen Selection against Nitrospira Sublineage I in Full-Scale Activated Sludge
Author(s) -
Yingyu Law,
Artur Matysik,
Xueming Chen,
Sara Swa Thi,
Thi Quynh Ngoc Nguyen,
Guanglei Qiu,
Gayathri Natarajan,
Rohan B. H. Williams,
BingJie Ni,
Thomas Seviour,
Stefan Wuertz
Publication year - 2019
Publication title -
environmental science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.851
H-Index - 397
eISSN - 1520-5851
pISSN - 0013-936X
DOI - 10.1021/acs.est.9b00955
Subject(s) - nitrospira , activated sludge , nitrite , oxygen , chemistry , nitrobacter , oxidizing agent , population , nitrosomonas , environmental chemistry , sewage treatment , nitrification , biology , environmental engineering , nitrate , nitrogen , environmental science , organic chemistry , demography , sociology
A single Nitrospira sublineage I OTU was found to perform nitrite oxidation in full-scale domestic wastewater treatment plants (WWTPs) in the tropics. This taxon had an apparent oxygen affinity constant lower than that of the full-scale domestic activated sludge cohabitating ammonia oxidizing bacteria (AOB) (0.09 ± 0.02 g m versus 0.3 ± 0.03 g O m). Thus, nitrite oxidizing bacteria (NOB) may in fact thrive under conditions of low oxygen supply. Low dissolved oxygen (DO) conditions enriched for and high aeration inhibited the NOB in a long-term lab-scale reactor. The relative abundance of Nitrospira sublineage I gradually decreased with increasing DO until it was washed out. Nitritation was sustained even after the DO was lowered subsequently. The morphologies of AOB and NOB microcolonies responded to DO levels in accordance with their oxygen affinities. NOB formed densely packed spherical clusters with a low surface area-to-volume ratio compared to the Nitrosomonas-like AOB clusters, which maintained a porous and non-spherical morphology. In conclusion, the effect of oxygen on AOB/NOB population dynamics depends on which OTU predominates given that oxygen affinities are species-specific, and this should be elucidated when devising operating strategies to achieve mainstream partial nitritation.
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