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Characteristics and comparisons of the aerobic and anaerobic denitrification of a Klebsiella oxytoca strain: Performance, electron transfer pathway, and mechanism

反硝化 无氧运动 好氧反硝化 亚硝酸盐还原酶 化学 亚硝酸盐 硝酸还原酶 催产克雷伯菌 还原酶 无氧呼吸 反硝化细菌 氧化亚氮还原酶 生物化学 硝酸盐 氮气 食品科学 生物 肺炎克雷伯菌 大肠杆菌 基因 有机化学 生理学
作者
Cheng-Jia Ju,Shareen Niyazi,Wen-yin Cao,Quan Wang,Rongping Chen,Lei Yu
出处
期刊:Journal of Environmental Management [Elsevier BV]
卷期号:338: 117787-117787 被引量:18
标识
DOI:10.1016/j.jenvman.2023.117787
摘要

The performance and electron (e-) transfer mechanisms of anaerobic and aerobic denitrification by strain Klebsiella were investigated in this study. The RT-PCR results demonstrated that the membrane bound nitrate reductase gene (narG) and Cu-nitrite reductase gene (nirK) were responsible for both aerobic and anerobic denitrification. The extreme low gene relative abundance of nirK might be responsible for the severe accumulation of NO2--N (nitrogen in the form of NO2- ion) under anaerobic condition. Moreover, the nitrite reductase (Nir) activity was 0.31 μg NO2--N min-1 mg-1 protein under anaerobic conditions, which was lower than that under aerobic conditions (0.38 μg NO2--N min-1 mg-1 protein). By using respiration chain inhibitors, the e- transfer pathways of anaerobic and aerobic denitrification of Klebsiella strain were constructed. Fe-S protein and Complex III were the core components under anaerobic conditions, while Coenzyme Q (CoQ), Complexes I and III played a key role in aerobic denitrification. Nitrogen assimilation was found to be the main way to generate NH4+-N (nitrogen in the form of NH4+ ion) during anaerobic denitrification, and also served as the primary nitrogen removal way under aerobic condition. The results of this study may help to improve the understanding of the core components of strain Klebsiella during aerobic and anaerobic denitrifications, and may suggest potential applications of the strain for nitrogen-containing wastewater.
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