A Nitrospira metagenome illuminates the physiology and evolution of globally important nitrite-oxidizing bacteria

硝基螺 生物 古细菌 生物化学 基因组 细菌 蛋白质细菌 硝化细菌 厌氧氨氧化菌 亚硝酸盐 微生物学 化学 遗传学 硝酸盐 生态学 基因 反硝化 微生物种群生物学 16S核糖体RNA 氮气 反硝化细菌 有机化学
作者
Sebastian Lücker,Michael Wagner,Frank Maixner,Éric Pelletier,Hanna Koch,Benoît Vacherie,Thomas Rattei,Jaap S. Sinninghe Damsté,Eva Spieck,Denis Le Paslier,Holger Daims
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:107 (30): 13479-13484 被引量:766
标识
DOI:10.1073/pnas.1003860107
摘要

Nitrospira are barely studied and mostly uncultured nitrite-oxidizing bacteria, which are, according to molecular data, among the most diverse and widespread nitrifiers in natural ecosystems and biological wastewater treatment. Here, environmental genomics was used to reconstruct the complete genome of “ Candidatus Nitrospira defluvii” from an activated sludge enrichment culture. On the basis of this first-deciphered Nitrospira genome and of experimental data, we show that Ca . N. defluvii differs dramatically from other known nitrite oxidizers in the key enzyme nitrite oxidoreductase (NXR), in the composition of the respiratory chain, and in the pathway used for autotrophic carbon fixation, suggesting multiple independent evolution of chemolithoautotrophic nitrite oxidation. Adaptations of Ca . N. defluvii to substrate-limited conditions include an unusual periplasmic NXR, which is constitutively expressed, and pathways for the transport, oxidation, and assimilation of simple organic compounds that allow a mixotrophic lifestyle. The reverse tricarboxylic acid cycle as the pathway for CO 2 fixation and the lack of most classical defense mechanisms against oxidative stress suggest that Nitrospira evolved from microaerophilic or even anaerobic ancestors. Unexpectedly, comparative genomic analyses indicate functionally significant lateral gene-transfer events between the genus Nitrospira and anaerobic ammonium-oxidizing planctomycetes, which share highly similar forms of NXR and other proteins reflecting that two key processes of the nitrogen cycle are evolutionarily connected.
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