An acid-tolerant ammonia-oxidizing γ-proteobacterium from soil

被引:0
作者
Masahito Hayatsu
Kanako Tago
Ikuo Uchiyama
Atsushi Toyoda
Yong Wang
Yumi Shimomura
Takashi Okubo
Futoshi Kurisu
Yuhei Hirono
Kunihiko Nonaka
Hiroko Akiyama
Takehiko Itoh
Hideto Takami
机构
[1] Institute of Agro-Environmental Science,
[2] National Agriculture and Food Research Organization (NARO),undefined
[3] National Institute for Basic Biology,undefined
[4] Center for Information Biology,undefined
[5] National Institute of Genetics,undefined
[6] Research Center for Water Environment Technology,undefined
[7] Graduate School of Engineering,undefined
[8] The University of Tokyo,undefined
[9] Institute of Fruit Tree and Tea Science,undefined
[10] NARO,undefined
[11] Graduate School of Bioscience and Biotechnology,undefined
[12] Tokyo Institute of Technology,undefined
[13] Yokohama Institute,undefined
[14] Japan Agency for Marine-Earth Science and Technology (JAMSTEC),undefined
来源
The ISME Journal | 2017年 / 11卷
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摘要
Nitrification, the microbial oxidation of ammonia to nitrate via nitrite, occurs in a wide range of acidic soils. However, the ammonia-oxidizing bacteria (AOB) that have been isolated from soil to date are acid-sensitive. Here we report the isolation and characterization of an acid-adapted AOB from an acidic agricultural soil. The isolated AOB, strain TAO100, is classified within the Gammaproteobacteria based on phylogenetic characteristics. TAO100 can grow in the pH range of 5–7.5 and survive in highly acidic conditions until pH 2 by forming cell aggregates. Whereas all known gammaproteobacterial AOB (γ-AOB) species, which have been isolated from marine and saline aquatic environments, are halophiles, TAO100 is not phenotypically halophilic. Thus, TAO100 represents the first soil-originated and non-halophilic γ-AOB. The TAO100 genome is considerably smaller than those of other γ-AOB and lacks several genes associated with salt tolerance which are unnecessary for survival in soil. The ammonia monooxygenase subunit A gene of TAO100 and its transcript are higher in abundance than those of ammonia-oxidizing archaea and betaproteobacterial AOB in the strongly acidic soil. These results indicate that TAO100 plays an important role in the nitrification of acidic soils. Based on these results, we propose TAO100 as a novel species of a new genus, Candidatus Nitrosoglobus terrae.
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页码:1130 / 1141
页数:11
相关论文
共 226 条
[1]  
Allison SM(1993)Ammonia oxidation at low pH by attached populations of nitrifying bacteria Soil Biol Biochem 25 935-941
[2]  
Prosser JI(1980)Specific inhibition of nitrite oxidation by chlorate and its use in assessing nitrification in soils and sediments Appl Environ Microbiol 39 505-510
[3]  
Belser LW(2011)Isolation, cultivation, and characterization of ammonia-oxidizing bacteria and archaea adapted to low ammonium concentrations Methods Enzymol 486 55-88
[4]  
Mays EL(2005)Controls on nitrogen cycling in terrestrial ecosystems: a synthetic analysis of literature data Ecol Monogr 75 139-157
[5]  
Bollmann A(2001)Autotrophic ammonia oxidation at low pH through urea hydrolysis Appl Environ Microbiol 67 2952-2957
[6]  
French E(2011) sp. nov., a new species of marine obligate ammonia-oxidizing bacteria that is not omnipresent in the world's oceans: calls to validate the names ' FEMS Microbiol Ecol 76 39-48
[7]  
Laanbroek HJ(2015)' and ' Nature 52 504-509
[8]  
Booth MS(1989)' Soil Biol Biochem 21 349-354
[9]  
Stark JM(1991)Complete nitrification by Appl Environ Microbiol 57 3600-3604
[10]  
Rastetter E(2001) bacteria Soil Biol Biochem 33 853-866