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Published on: August 13, 2020
Dust storm-driven dispersal of potential pathogens and antibiotic resistance genes in the Eastern Mediterranean
Burak Adnan Erkorkmaz1, David Zeevi2, Yinon Rudich1
1Department of Earth and Planetary Sciences, Weizmann Institute of Science, Rehovot 7610001, Israel.
Abstract:
The atmosphere hosts a microbiome that connects distant ecosystems yet remains relatively unexplored. In this study, we tested the hypothesis that dust storms enhance the spread of pathogenic microorganisms and whether these microorganisms carry antibiotic resistance and virulence-related genes in the Eastern Mediterranean. We collected air samples during a seasonal transition period, capturing data from 13 dusty days originating from Middle Eastern sources, including the Saharan Desert, Iraq, Iran, and Saudi Arabia, and 32 clear days, with temperatures ranging from 16.5 to 27.1 °C. Using metagenomic analysis, we identified several facultative pathogens like Klebsiella pneumoniae, Stenotrophomonas maltophilia, and Aspergillus fumigatus, which are linked to human respiratory diseases, and others like Zymoseptoria tritici, Fusarium poae, and Puccinia striiformis, which are harmful to wheat. The abundance of these pathogens increased during dust storms and with rising temperatures. Although we did not find strong evidence that these species harbored antibiotic resistance or virulence-related genes, which could be linked to their pathogenic potential, dust storms transported up to 125 times more total antibiotic resistance genes, as measured by RPKM abundance, compared to clear conditions. These levels during dust storms far exceeded those found in other ecosystems. While further research is needed to determine whether dust storms and temperature variations pose an immediate threat to public health and the environment, our findings underscore the importance of continuous monitoring of atmospheric microbiomes. This surveillance is crucial for assessing potential risks to human health and ecosystem stability, particularly in the face of accelerating global climate change.
Insights
Dust storms significantly increase the atmospheric transport of antibiotic resistance genes in the Eastern Mediterranean. While specific pathogens were identified, their direct link to resistance genes requires further investigation.
Area of Science:
- Environmental microbiology
- Atmospheric science
- Microbial ecology
Background:
- The atmospheric microbiome connects ecosystems but is understudied.
- Dust storms are potential vectors for microbial dispersal.
- Antibiotic resistance and virulence genes in airborne microbes are a growing concern.
Purpose of the Study:
- To investigate if dust storms enhance the spread of pathogenic microorganisms in the Eastern Mediterranean.
- To determine if these airborne microbes carry antibiotic resistance and virulence genes.
- To assess the impact of dust storms and temperature on microbial transport.
Main Methods:
- Air samples collected during dusty and clear days in the Eastern Mediterranean.
- Metagenomic analysis to identify airborne microorganisms and genes.
- Quantification of total antibiotic resistance genes (ARGs) using RPKM abundance.
Main Results:
- Facultative pathogens (e.g., Klebsiella pneumoniae, Aspergillus fumigatus) and plant pathogens (e.g., Zymoseptoria tritici) were identified.
- Pathogen abundance increased during dust storms and with higher temperatures.
- Dust storms transported significantly higher levels of total ARGs (up to 125 times more) compared to clear conditions.
Conclusions:
- Dust storms act as major conduits for the dispersal of antibiotic resistance genes.
- While specific pathogens were found, their direct carriage of ARGs needs more research.
- Continuous monitoring of atmospheric microbiomes is vital for assessing public health and ecological risks, especially with climate change.
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