Global Occurrence of Archaeal amoA Genes in Terrestrial Hot Springs
- 15 October 2008
- journal article
- research article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 74 (20) , 6417-6426
- https://doi.org/10.1128/aem.00843-08
Abstract
Despite the ubiquity of ammonium in geothermal environments and the thermodynamic favorability of aerobic ammonia oxidation, thermophilic ammonia-oxidizing microorganisms belonging to the crenarchaeota kingdom have only recently been described. In this study, we analyzed microbial mats and surface sediments from 21 hot spring samples (pH 3.4 to 9.0; temperature, 41 to 86°C) from the United States, China, and Russia and obtained 846 putative archaeal ammonia monooxygenase large-subunit ( amoA ) gene and transcript sequences, representing a total of 41 amoA operational taxonomic units (OTUs) at 2% identity. The amoA gene sequences were highly diverse, yet they clustered within two major clades of archaeal amoA sequences known from water columns, sediments, and soils: clusters A and B. Eighty-four percent (711/846) of the sequences belonged to cluster A, which is typically found in water columns and sediments, whereas 16% (135/846) belonged to cluster B, which is typically found in soils and sediments. Although a few amoA OTUs were present in several geothermal regions, most were specific to a single region. In addition, cluster A amoA genes formed geographic groups, while cluster B sequences did not group geographically. With the exception of only one hot spring, principal-component analysis and UPGMA (unweighted-pair group method using average linkages) based on the UniFrac metric derived from cluster A grouped the springs by location, regardless of temperature or bulk water pH, suggesting that geography may play a role in structuring communities of putative ammonia-oxidizing archaea (AOA). The amoA genes were distinct from those of low-temperature environments; in particular, pair-wise comparisons between hot spring amoA genes and those from sympatric soils showed less than 85% sequence identity, underscoring the distinctness of hot spring archaeal communities from those of the surrounding soil system. Reverse transcription-PCR showed that amoA genes were transcribed in situ in one spring and the transcripts were closely related to the amoA genes amplified from the same spring. Our study demonstrates the global occurrence of putative archaeal amoA genes in a wide variety of terrestrial hot springs and suggests that geography may play an important role in selecting different assemblages of AOA.This publication has 43 references indexed in Scilit:
- Factors Controlling the Distribution of Archaeal Tetraethers in Terrestrial Hot SpringsApplied and Environmental Microbiology, 2008
- A moderately thermophilic ammonia-oxidizing crenarchaeote from a hot springProceedings of the National Academy of Sciences, 2008
- Archaeal and Bacterial Glycerol Dialkyl Glycerol Tetraether Lipids in Hot Springs of Yellowstone National ParkApplied and Environmental Microbiology, 2007
- Microbial Community Biofabrics in a Geothermal Mine AditApplied and Environmental Microbiology, 2007
- Distribution and Diversity of Archaeal Ammonia Monooxygenase Genes Associated with CoralsApplied and Environmental Microbiology, 2007
- Linking crenarchaeal and bacterial nitrification to anammox in the Black SeaProceedings of the National Academy of Sciences, 2007
- Communities of Archaea and Bacteria in a Subsurface Radioactive Thermal Spring in the Austrian Central Alps, and Evidence of Ammonia-Oxidizing CrenarchaeotaApplied and Environmental Microbiology, 2007
- Diversity of Ammonia-Oxidizing Archaea and Bacteria in the Sediments of a Hypernutrified Subtropical Estuary: Bahía del Tóbari, MexicoApplied and Environmental Microbiology, 2006
- Archaeal nitrification in the oceanProceedings of the National Academy of Sciences, 2006
- Thermophilic Temperature Optimum for Crenarchaeol Synthesis and Its Implication for Archaeal EvolutionApplied and Environmental Microbiology, 2006