Our prior work shows that azinphos-methyl pesticide exposure is associated with altered oral microbiomes in exposed farmworkers. Here we extend this analysis to show the same association pattern is also evident in their children. Oral buccal swab samples were analyzed at two time points, the apple thinning season in spring-summer 2005 for 78 children and 101 adults and the non-spray season in winter 2006 for 62 children and 82 adults. The pesticide exposure for the children were defined by the farmworker occupation of the cohabitating household adult and the blood azinphos-methyl detection of the cohabitating adult. Oral buccal swab 16S rRNA sequencing determined taxonomic microbiota proportional composition from concurrent samples from both adults and children. Analysis of the identified bacteria showed significant proportional changes for 12 of 23 common oral microbiome genera in association with azinphos-methyl detection and farmworker occupation. The most common significantly altered genera had reductions in the abundance of Streptococcus, suggesting an anti-microbial effect of the pesticide. Principal component analysis of the microbiome identified two primary clusters, with association of principal component 1 to azinphos-methyl blood detection and farmworker occupational status of the household. The children's buccal microbiota composition clustered with their household adult in ∼95% of the households. Household adult farmworker occupation and household pesticide exposure is associated with significant alterations in their children's oral microbiome composition. This suggests that parental occupational exposure and pesticide take-home exposure pathways elicit alteration of their children's microbiomes.
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http://dx.doi.org/10.1016/j.ijheh.2022.114090 | DOI Listing |
BMC Oral Health
January 2025
Basic Medical and Dental Sciences Department, College of Dentistry, Ajman University, Ajman, UAE.
Arch Oral Biol
December 2024
Department of Orofacial Pain and TMJ Disorders, Eastman Institute for Oral Health, University of Rochester, NY, USA. Electronic address:
Objectives: This systematic review investigates the association of oral microbiome dysbiosis with Sjogren Syndrome (SS).
Materials And Methods: Indexed databases (PubMed/Medline, EMBASE, OVID, Web of Science, and Scopus) were independently searched for relevant manuscripts published until August 2024. Clinical studies on oral microbial flora count and diversity in SS patients were included.
Microb Biotechnol
January 2025
Department of Animal Biotechnology, Dankook University, Cheonan, Korea.
The coronavirus disease 2019 (COVID-19) is a fatal disease caused by severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2). To date, several vaccines have been developed to combat the spread of this virus. Mucosal vaccines using food-grade bacteria, such as Lactobacillus spp.
View Article and Find Full Text PDFJ Public Health Dent
January 2025
Dental Public Health, Centre for Host-Microbiome Interactions, Faculty of Dentistry, Oral and Craniofacial Sciences, King's College London, London, UK.
Objective: To evaluate the effect of childhood dental attendance pattern on self-rated oral health in middle adulthood among the British population.
Methods: Data from the 1970 British Cohort Study involving participants born in England, Scotland, and Wales were used. Self-rated oral health was assessed at age 46.
Microbiome
January 2025
Novo Nordisk Foundation Center for Basic Metabolic Research, University of Copenhagen, Blegdamsvej 3B, Copenhagen, 2200, Denmark.
Background: Saliva is a protein-rich body fluid for noninvasive discovery of biomolecules, containing both human and microbial components, associated with various chronic diseases. Type-2 diabetes (T2D) imposes a significant health and socio-economic burden. Prior research on T2D salivary microbiome utilized methods such as metagenomics, metatranscriptomics, 16S rRNA sequencing, and low-throughput proteomics.
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