Literature DB >> 24375144

Soil microbial community responses to a decade of warming as revealed by comparative metagenomics.

Chengwei Luo1, Luis M Rodriguez-R, Eric R Johnston, Liyou Wu, Lei Cheng, Kai Xue, Qichao Tu, Ye Deng, Zhili He, Jason Zhou Shi, Mengting Maggie Yuan, Rebecca A Sherry, Dejun Li, Yiqi Luo, Edward A G Schuur, Patrick Chain, James M Tiedje, Jizhong Zhou, Konstantinos T Konstantinidis.   

Abstract

Soil microbial communities are extremely complex, being composed of thousands of low-abundance species (<0.1% of total). How such complex communities respond to natural or human-induced fluctuations, including major perturbations such as global climate change, remains poorly understood, severely limiting our predictive ability for soil ecosystem functioning and resilience. In this study, we compared 12 whole-community shotgun metagenomic data sets from a grassland soil in the Midwestern United States, half representing soil that had undergone infrared warming by 2°C for 10 years, which simulated the effects of climate change, and the other half representing the adjacent soil that received no warming and thus, served as controls. Our analyses revealed that the heated communities showed significant shifts in composition and predicted metabolism, and these shifts were community wide as opposed to being attributable to a few taxa. Key metabolic pathways related to carbon turnover, such as cellulose degradation (∼13%) and CO2 production (∼10%), and to nitrogen cycling, including denitrification (∼12%), were enriched under warming, which was consistent with independent physicochemical measurements. These community shifts were interlinked, in part, with higher primary productivity of the aboveground plant communities stimulated by warming, revealing that most of the additional, plant-derived soil carbon was likely respired by microbial activity. Warming also enriched for a higher abundance of sporulation genes and genomes with higher G+C content. Collectively, our results indicate that microbial communities of temperate grassland soils play important roles in mediating feedback responses to climate change and advance the understanding of the molecular mechanisms of community adaptation to environmental perturbations.

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Year:  2013        PMID: 24375144      PMCID: PMC3957593          DOI: 10.1128/AEM.03712-13

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  49 in total

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  39 in total

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Journal:  Appl Environ Microbiol       Date:  2016-04-18       Impact factor: 4.792

6.  Metagenomic Characterization of Soil Microbial Communities in the Luquillo Experimental Forest (Puerto Rico) and Implications for Nitrogen Cycling.

Authors:  Smruthi Karthikeyan; Luis H Orellana; Eric R Johnston; Janet K Hatt; Frank E Löffler; Héctor L Ayala-Del-Río; Grizelle González; Konstantinos T Konstantinidis
Journal:  Appl Environ Microbiol       Date:  2021-05-26       Impact factor: 4.792

7.  Application of young maize plant residues alters the microbiome composition and its functioning in a soil under conservation agriculture: a metagenomics study.

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8.  Year-Round Shotgun Metagenomes Reveal Stable Microbial Communities in Agricultural Soils and Novel Ammonia Oxidizers Responding to Fertilization.

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10.  Nitrogen Cycling Potential of a Grassland Litter Microbial Community.

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