Warmer and drier ecosystems select for smaller bacterial genomes in global soils
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[1] H. Zhang,et al. 5300‐Year‐old soil carbon is less primed than young soil organic matter , 2022, Global change biology.
[2] F. Aylward,et al. Genome size distributions in bacteria and archaea are strongly linked to evolutionary history at broad phylogenetic scales , 2022, PLoS genetics.
[3] B. Li,et al. The r/K selection theory and its application in biological wastewater treatment processes. , 2022, The Science of the total environment.
[4] Anna K. Simonsen. Environmental stress leads to genome streamlining in a widely distributed species of soil bacteria , 2021, The ISME Journal.
[5] M. Torn,et al. Metabolic capabilities mute positive response to direct and indirect impacts of warming throughout the soil profile , 2021, Nature Communications.
[6] I. Paulsen,et al. Cell size, genome size, and maximum growth rate are near‐independent dimensions of ecological variation across bacteria and archaea , 2021, Ecology and evolution.
[7] Lisa R. Moore,et al. Aerobic bacteria and archaea tend to have larger and more versatile genomes , 2021, Oikos.
[8] T. Woyke,et al. A Genomic Perspective Across Earth’s Microbiomes Reveals That Genome Size in Archaea and Bacteria Is Linked to Ecosystem Type and Trophic Strategy , 2021, bioRxiv.
[9] Lisa R. Moore,et al. A synthesis of bacterial and archaeal phenotypic trait data , 2020, Scientific Data.
[10] D. Segrè,et al. Microbial carbon use efficiency predicted from genome-scale metabolic models , 2019, Nature Communications.
[11] B. Hungate,et al. Predictive genomic traits for bacterial growth in culture versus actual growth in soil , 2019, The ISME Journal.
[12] Taylor K. Dunivin,et al. Ecological selection for small microbial genomes along a temperate-to-thermal soil gradient , 2018, Nature Microbiology.
[13] N. Fierer,et al. A global atlas of the dominant bacteria found in soil , 2018, Science.
[14] H. Buckley,et al. Following Rapoport's Rule: the geographic range and genome size of bacterial taxa decline at warmer latitudes , 2017, Environmental microbiology.
[15] C. ter Braak,et al. Linking trait variation to the environment: critical issues with community‐weighted mean correlation resolved by the fourth‐corner approach , 2017 .
[16] Anna Norberg,et al. How to make more out of community data? A conceptual framework and its implementation as models and software. , 2017, Ecology letters.
[17] L. Alonso-Sáez,et al. Experimental Warming Decreases the Average Size and Nucleic Acid Content of Marine Bacterial Communities , 2016, Front. Microbiol..
[18] T. Ferenci. Trade-off Mechanisms Shaping the Diversity of Bacteria. , 2016, Trends in microbiology.
[19] Jay T. Lennon,et al. Microbiomes in light of traits: A phylogenetic perspective , 2015, Science.
[20] Noah Fierer,et al. Consistent responses of soil microbial communities to elevated nutrient inputs in grasslands across the globe , 2015, Proceedings of the National Academy of Sciences.
[21] Andreas Wagner,et al. Growth Temperature and Genome Size in Bacteria Are Negatively Correlated, Suggesting Genomic Streamlining During Thermal Adaptation , 2013, Genome biology and evolution.
[22] Pari Skamnioti,et al. Genome Expansion and Gene Loss in Powdery Mildew Fungi Reveal Tradeoffs in Extreme Parasitism , 2010, Science.
[23] B. Bohannan,et al. Microbial Biogeography: From Taxonomy to Traits , 2008, Science.
[24] Adam Kleczkowski,et al. Biodiversity and ecosystem function in soil , 2005 .
[25] D. Petrov,et al. The large genome constraint hypothesis: evolution, ecology and phenotype. , 2005, Annals of botany.
[26] K. Konstantinidis,et al. Trends between gene content and genome size in prokaryotic species with larger genomes. , 2004, Proceedings of the National Academy of Sciences of the United States of America.