Contribution of soil bacteria to the atmosphere across biomes.

Sci Total Environ

Yale-NUS College, National University of Singapore, Singapore; Department of Biological Sciences, National University of Singapore, Singapore; Institute of Nature and Environmental Technology, Kanazawa University, Kanazawa, Japan. Electronic address:

Published: May 2023

AI Article Synopsis

  • The study examines the diversity of bacteria in the atmospheric boundary layer across twelve different global locations, identifying how various biomes influence this diversity.
  • It finds that atmospheric bacterial diversity negatively correlates with mean annual precipitation, while it positively correlates with mean annual temperature, and highlights unique community structures for both atmosphere and soil at each site.
  • The research emphasizes that local soils play a more significant role than distant soils in shaping atmospheric diversity, especially in semi-arid and arid regions, underscoring the complex interactions in atmospheric microbiota and their impact on ecosystems.

Article Abstract

The dispersion of microorganisms through the atmosphere is a continual and essential process that underpins biogeography and ecosystem development and function. Despite the ubiquity of atmospheric microorganisms globally, specific knowledge of the determinants of atmospheric microbial diversity at any given location remains unresolved. Here we describe bacterial diversity in the atmospheric boundary layer and underlying soil at twelve globally distributed locations encompassing all major biomes, and characterise the contribution of local and distant soils to the observed atmospheric community. Across biomes the diversity of bacteria in the atmosphere was negatively correlated with mean annual precipitation but positively correlated to mean annual temperature. We identified distinct non-randomly assembled atmosphere and soil communities from each location, and some broad trends persisted across biomes including the enrichment of desiccation and UV tolerant taxa in the atmospheric community. Source tracking revealed that local soils were more influential than distant soil sources in determining observed diversity in the atmosphere, with more emissive semi-arid and arid biomes contributing most to signatures from distant soil. Our findings highlight complexities in the atmospheric microbiota that are relevant to understanding regional and global ecosystem connectivity.

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Source
http://dx.doi.org/10.1016/j.scitotenv.2023.162137DOI Listing

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