硝化细菌
硝化作用
谷氨酸合酶
生物化学
亚硝酸盐
铵
谷氨酸脱氢酶
生物
新陈代谢
微生物学
化学
硝酸盐
谷氨酸受体
氮气
有机化学
生态学
受体
作者
Luis A. Sayavedra‐Soto,Rebecca V. Ferrell,Michael D. Dobie,Brett L. Mellbye,Frank Chaplen,Alex Buchanan,Jeff H. Chang,Peter J. Bottomley,Daniel J. Arp
出处
期刊:Fems Microbiology Letters
[Oxford University Press]
日期:2015-01-09
卷期号:362 (3): 1-7
被引量:126
标识
DOI:10.1093/femsle/fnu040
摘要
Nitrobacter winogradskyi Nb-255 is a nitrite-oxidizing bacterium that can grow solely on nitrite (NO2(-)) as a source of energy and nitrogen. In most natural situations, NO2(-) oxidation is coupled closely to ammonium (NH4(+)) oxidation by bacteria and archaea and, conceptually, N. winogradskyi can save energy using NH4(+) to meet its N-biosynthetic requirements. Interestingly, NH4(+) delayed the growth of N. winogradskyi when at concentrations higher than 35 mM, but grew well at concentrations below 25 mM NH4(+) while adjusting the expression of 24% of its genes. Notable genes that changed in expression included those with roles in nitrogen and carbon assimilation. Contrary to expectations, higher expression of glutamate synthase (GOGAT), instead of glutamate dehydrogenase, was detected at higher NH4(+) concentration. Genes in assimilatory NO2(-) metabolism and the degradation of glycogen and biofilm/motility were downregulated when N. winogradskyi was grown in the presence of NH4(+). Nitrobacter winogradskyi grown in medium with 25 mM NH4(+) upregulated genes in post-translational modification, protein turnover, biogenesis and chaperons. The data suggest that N. winogradskyi physiology is modified in the presence of NH4(+) and is likely to be modified during coupled nitrification with NH3 oxidizers.
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