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Dominant nitrogen metabolisms of a warm, seasonally anoxic freshwater ecosystem revealed using genome resolved metatranscriptomics.
Fadum, J M; Borton, M A; Daly, R A; Wrighton, K C; Hall, E K.
Affiliation
  • Fadum JM; Graduate Degree Program in Ecology, Colorado State University, Fort Collins, Colorado, USA.
  • Borton MA; Department of Ecosystem Science and Sustainability, Colorado State University, Fort Collins, Colorado, USA.
  • Daly RA; Department of Soil and Crop Sciences, Colorado State University, Fort Collins, Colorado, USA.
  • Wrighton KC; Department of Soil and Crop Sciences, Colorado State University, Fort Collins, Colorado, USA.
  • Hall EK; Graduate Degree Program in Ecology, Colorado State University, Fort Collins, Colorado, USA.
mSystems ; 9(2): e0105923, 2024 Feb 20.
Article de En | MEDLINE | ID: mdl-38259093
ABSTRACT
Nitrogen (N) availability is one of the principal drivers of primary productivity across aquatic ecosystems. However, the microbial communities and emergent metabolisms that govern N cycling in tropical lakes are both distinct from and poorly understood relative to those found in temperate lakes. This latitudinal difference is largely due to the warm (>20°C) temperatures of tropical lake anoxic hypolimnions (deepest portion of a stratified water column), which result in unique anaerobic metabolisms operating without the temperature constraints found in lakes at temperate latitudes. As such, tropical hypolimnions provide a platform for exploring microbial membership and functional diversity. To better understand N metabolism in warm anoxic waters, we combined measurements of geochemistry and water column thermophysical structure with genome-resolved metatranscriptomic analyses of the water column microbiome in Lake Yojoa, Honduras. We sampled above and below the oxycline in June 2021, when the water column was stratified, and again at the same depths and locations in January 2022, when the water column was mixed. We identified 335 different lineages and significantly different microbiome membership between seasons and, when stratified, between depths. Notably, nrfA (indicative of dissimilatory nitrate reduction to ammonium) was upregulated relative to other N metabolism genes in the June hypolimnion. This work highlights the taxonomic and functional diversity of microbial communities in warm and anoxic inland waters, providing insight into the contemporary microbial ecology of tropical ecosystems as well as inland waters at higher latitudes as water columns continue to warm in the face of global change.IMPORTANCEIn aquatic ecosystems where primary productivity is limited by nitrogen (N), whether continuously, seasonally, or in concert with additional nutrient limitations, increased inorganic N availability can reshape ecosystem structure and function, potentially resulting in eutrophication and even harmful algal blooms. Whereas microbial metabolic processes such as mineralization and dissimilatory nitrate reduction to ammonium increase inorganic N availability, denitrification removes bioavailable N from the ecosystem. Therefore, understanding these key microbial mechanisms is critical to the sustainable management and environmental stewardship of inland freshwater resources. This study identifies and characterizes these crucial metabolisms in a warm, seasonally anoxic ecosystem. Results are contextualized by an ecological understanding of the study system derived from a multi-year continuous monitoring effort. This unique data set is the first of its kind in this largely understudied ecosystem (tropical lakes) and also provides insight into microbiome function and associated taxa in warm, anoxic freshwaters.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Écosystème / Composés d'ammonium Langue: En Journal: MSystems Année: 2024 Type de document: Article Pays d'affiliation: États-Unis d'Amérique

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Écosystème / Composés d'ammonium Langue: En Journal: MSystems Année: 2024 Type de document: Article Pays d'affiliation: États-Unis d'Amérique