Literature DB >> 22158986

Niche specialization of terrestrial archaeal ammonia oxidizers.

Cécile Gubry-Rangin1, Brigitte Hai, Christopher Quince, Marion Engel, Bruce C Thomson, Phillip James, Michael Schloter, Robert I Griffiths, James I Prosser, Graeme W Nicol.   

Abstract

Soil pH is a major determinant of microbial ecosystem processes and potentially a major driver of evolution, adaptation, and diversity of ammonia oxidizers, which control soil nitrification. Archaea are major components of soil microbial communities and contribute significantly to ammonia oxidation in some soils. To determine whether pH drives evolutionary adaptation and community structure of soil archaeal ammonia oxidizers, sequences of amoA, a key functional gene of ammonia oxidation, were examined in soils at global, regional, and local scales. Globally distributed database sequences clustered into 18 well-supported phylogenetic lineages that dominated specific soil pH ranges classified as acidic (pH <5), acido-neutral (5 ≤ pH <7), or alkalinophilic (pH ≥ 7). To determine whether patterns were reproduced at regional and local scales, amoA gene fragments were amplified from DNA extracted from 47 soils in the United Kingdom (pH 3.5-8.7), including a pH-gradient formed by seven soils at a single site (pH 4.5-7.5). High-throughput sequencing and analysis of amoA gene fragments identified an additional, previously undiscovered phylogenetic lineage and revealed similar pH-associated distribution patterns at global, regional, and local scales, which were most evident for the five most abundant clusters. Archaeal amoA abundance and diversity increased with soil pH, which was the only physicochemical characteristic measured that significantly influenced community structure. These results suggest evolution based on specific adaptations to soil pH and niche specialization, resulting in a global distribution of archaeal lineages that have important consequences for soil ecosystem function and nitrogen cycling.

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Year:  2011        PMID: 22158986      PMCID: PMC3248517          DOI: 10.1073/pnas.1109000108

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  39 in total

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  103 in total

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7.  pH as a Driver for Ammonia-Oxidizing Archaea in Forest Soils.

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8.  Coupling of diversification and pH adaptation during the evolution of terrestrial Thaumarchaeota.

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10.  Consistent responses of soil microbial communities to elevated nutrient inputs in grasslands across the globe.

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