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Published on: February 24, 2021
Peanut protein in household dust is related to household peanut consumption and is biologically active
Helen A Brough1, Alexandra F Santos2, Kerry Makinson3
1Department of Paediatric Allergy, MRC & Asthma UK Centre in Allergic Mechanisms of Asthma, Division of Asthma, Allergy and Lung Biology, King's College London and Guy's and St Thomas' NHS Foundation Trust, London, United Kingdom; Faculty of Medicine, University of Southampton, Southampton, United Kingdom.
Insights
Household peanut consumption (HPC) correlates with peanut protein in infant environments. Peanut dust is biologically active, suggesting a potential route for early peanut sensitization in infants.
Area of Science:
- Allergy and Immunology
- Environmental Health
- Pediatrics
Background:
- Peanut allergy poses a significant public health challenge.
- Understanding infant sensitization routes is crucial for prevention.
- Previous studies linked household peanut consumption (HPC) to allergy risk but didn't quantify direct exposure.
Purpose of the Study:
- To investigate the link between reported HPC and infant environmental peanut protein levels.
- To assess the biological activity of environmental peanut protein.
Main Methods:
- Quantified peanut protein in dust and wipe samples from 45 infant homes using ELISA.
- Correlated environmental peanut levels with HPC via a validated food frequency questionnaire.
- Assessed peanut protein's biological activity using a basophil activation assay.
Main Results:
- Positive correlation found between HPC and peanut protein levels in infant bedding and play areas.
- HPC was the strongest predictor of peanut protein in these environments.
- Peanut dust induced dose-dependent basophil activation in children with peanut allergy.
Conclusions:
- Infant environmental peanut exposure is primarily linked to household peanut consumption.
- Biologically active peanut protein in dust represents a potential pathway for infant sensitization.
Background:
Peanut allergy is an important public health concern. To understand the pathogenesis of peanut allergy, we need to determine the route by which children become sensitized. A dose-response between household peanut consumption (HPC; used as an indirect marker of environmental peanut exposure) and the development of peanut allergy has been observed; however, environmental peanut exposure was not directly quantified.
Objective:
We sought to explore the relationship between reported HPC and peanut protein levels in an infant's home environment and to determine the biological activity of environmental peanut.
Methods:
Peanut protein was quantified in wipe and dust samples collected from 45 homes with infants by using a polyclonal peanut ELISA. Environmental peanut protein levels were compared with peanut consumption assessed by using a validated peanut food frequency questionnaire and other clinical and household factors. Biological activity of peanut protein in dust was assessed with a basophil activation assay.
Results:
There was a positive correlation between peanut protein levels in the infant's bed, crib rail, and play area and reported HPC over 1 and 6 months. On multivariate regression analysis, HPC was the most important variable associated with peanut protein levels in the infant's bed sheet and play area. Dust samples containing high peanut protein levels induced dose-dependent activation of basophils in children with peanut allergy.
Conclusions:
We have shown that an infant's environmental exposure to peanut is most likely to be due to HPC. Peanut protein in dust is biologically active and should be assessed as a route of possible early peanut sensitization in infants.
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