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Soil microbes produce an immense diversity of metabolites, including volatile organic compounds (VOCs), which can shape the structure and function of microbial communities. VOCs mediate a multitude of microbe-microbe interactions, including antagonism. Despite their importance, the diversity and functional relevance of most microbial volatiles remain uncharacterized. We assembled a taxonomically diverse collection of 48 isolated from soil and airborne dust and surveyed the VOCs produced by these strains on two different medium types using gas chromatography-mass spectrometry (GC-MS). We detected 126 distinct VOCs and structurally identified approximately 20% of these compounds, which were predominately C to C hetero-VOCs, including (oxygenated) alcohols, ketones, esters, and nitrogen- and sulfur-containing compounds. Each strain produced a unique VOC profile. While the most common VOCs were likely by-products of primary metabolism, most of the VOCs were strain specific. We observed a strong taxonomic and phylogenetic signal for VOC profiles, suggesting their role in finer-scale patterns of ecological diversity. Finally, we investigated the functional potential of these VOCs by assessing their effects on growth rates of both pathogenic and nonpathogenic pseudomonad strains. We identified sets of VOCs that correlated with growth inhibition and stimulation, information that may facilitate the development of microbial VOC-based pathogen control strategies. Soil microbes produce a diverse array of natural products, including volatile organic compounds (VOCs). Volatile compounds are important molecules in soil habitats, where they mediate interactions between bacteria, fungi, insects, plants, and animals. We measured the VOCs produced by a broad diversity of soil- and dust-dwelling . We detected a total of 126 unique volatile compounds, and each strain produced a unique combination of VOCs. While some of the compounds were produced by many strains, most were strain specific. Importantly, VOC profiles were more similar between closely related strains, indicating that evolutionary and ecological processes generate predictable patterns of VOC production. Finally, we observed that actinobacterial VOCs had both stimulatory and inhibitory effects on the growth of bacteria that represent a plant-beneficial symbiont and a plant-pathogenic strain, information that may lead to the development of novel strategies for plant disease prevention.
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http://dx.doi.org/10.1128/mSystems.00295-18 | DOI Listing |
Br J Anaesth
September 2025
Department of Anesthesiology, Perioperative and Pain Medicine, School of Medicine, Stanford University, Stanford, CA, USA. Electronic address:
clinicaltrials.gov NCT04564196.
View Article and Find Full Text PDFInd Health
September 2025
Ministry of Employment and Labor, Republic of Korea.
Research on worker exposure to volatile organic compounds (VOCs) during asphalt paving operations remains significantly limited, and regulatory frameworks governing such exposures are also insufficient. Previous studies have primarily focused on a limited number of major VOCs. However, this study employs high-resolution, high-performance Proton Transfer Reaction Time-of-Flight Mass Spectrometry (PTR-ToF-MS) to comprehensively evaluate exposure levels to 25 different VOCs.
View Article and Find Full Text PDFSci Justice
September 2025
Department of Chemistry, Eberly College of Science, The Pennsylvania State University, University Park, PA, United States. Electronic address:
Given that a variety of factors can affect the decomposition process, it can be difficult to determine the post-mortem interval (PMI). The process is highly dependent on microbial activity, and volatile organic compounds (VOCs) are a by-product of this activity. Given both have been proposed to assist in PMI determination, a deeper understanding of this relationship is needed.
View Article and Find Full Text PDFCurr Opin Insect Sci
September 2025
Department of Entomology, University of Illinois Urbana-Champaign, Urbana, IL, 61801, USA. Electronic address:
The association of plants with beneficial soil microbes, including arbuscular mycorrhizal fungi (AMF) and plant growth-promoting rhizobacteria (PGPR), can enhance plant growth and nutrient uptake while modifying plant traits including growth rate, architecture, nutritional quality, secondary metabolites, phytohormones and volatile organic compounds (VOCs), necessary for interactions with insect pests and their natural enemies. Microbe-induced effects on insect herbivores and their natural enemies can be positive, neutral, or negative and are context dependent, creating the need for continued synthesis of published research to identify emerging patterns, recognize limitations, and guide future research. This perspective highlights three key pathways through which beneficial soil microbes drive interactions among agricultural plants, insect pests, and their natural enemies through the lens of applied research: (1) alterations in plant growth rate, architecture, and nutritional quality; (2) modifications of plant secondary metabolites and phytohormones; and (3) modifications in the emissions of volatile organic compounds.
View Article and Find Full Text PDFJ Hazard Mater
September 2025
School of Ecology and Environment, Zhengzhou University, Zhengzhou 450001, China; Henan Key Laboratory of Environmental Chemistry and Low Carbon Technology, Zhengzhou 450001, China. Electronic address:
Solid electrolyte cell is a novel gas purification approach, which has unique superiority in simultaneous nitrogen oxides (NO) and volatile organic compounds (VOCs) removal. The development of effective electrode materials and the comprehensive understanding of reaction mechanisms are essential to advancing this technology. In this study, LaPrBaNiO (x = 0, 0.
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