DeTiare Leifi, Sarah C Peterson, Jakob L Young, Gregory T Carling, Janice Brahney, Michael C Duniway, Beth A Newingham, Nicholas Webb, Travis Nauman, Zachary T Aanderud
Journal: Frontiers in microbiology 2026;17():1856083
PMID: 42798651
INTRODUCTION
Changing frequency and intensity of dust emissions impacts ecosystems and human health. Dust carries microbes, nutrients, heavy metals, and other materials that may change environmental biogeochemistry at deposition sites. Identifying dust sources provides key information on where and when mitigation strategies should be employed. However, commonly used geochemical or isotopic tracers are often not capable of distinguishing between geographic regions.
METHODS
We explored whether soil bacterial communities may provide distinct fingerprints of dust sources in the western United States. We identified bacterial core communities of dust from ten locations monitored by the National Wind Erosion Research Network (NWERN) with varied land use (cropland, rangeland, and playa), and compared communities to location, soil, and regional characteristics. Samples were collected monthly from Modified Wilson and Cooke (MWAC) samplers, composited by season (spring, summer, and fall), and analyzed using 16S rRNA sequencing.
RESULTS
We found distinct bacterial core communities that reflected dust source characteristics. In order of importance, precipitation levels (p = 0.0001), location (p = 0.0001), soil texture (p = 0.0001), seasonality (p = 0.0001), and elevation (p = 0.0002) were correlated with bacterial community composition.
DISCUSSION
Distinct bacterial core communities were associated with site characteristics such as biocrusts, playas, and military base proximity. Our results suggest that the use of core microbiomes may offer a fingerprinting method to identify dust source regions.
Copyright © 2026 Leifi, Peterson, Young, Carling, Brahney, Duniway, Newingham, Webb, Nauman and Aanderud.
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© Copyright 2026, Nutrition Evidence
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