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Published on: August 22, 2018
Reaerosolization of MS2 bacteriophage from an N95 filtering facepiece respirator by simulated coughing
Edward M Fisher1, Aaron W Richardson, Shannon D Harpest
1National Institute for Occupational Safety and Health, National Personal Protective Technology Laboratory, Pittsburgh, PA 15236, USA.
Abstract:
The supply of N95 filtering facepiece respirators (FFRs) may not be adequate to match demand during a pandemic outbreak. One possible strategy to maintain supplies in healthcare settings is to extend FFR use for multiple patient encounters; however, contaminated FFRs may serve as a source for the airborne transmission of virus particles. In this study, reaerosolization of virus particles from contaminated FFRs was examined using bacteriophage MS2 as a surrogate for airborne pathogenic viruses. MS2 was applied to FFRs as droplets or droplet nuclei. A simulated cough (370 l min(-1) peak flow) provided reverse airflow through the contaminated FFR. The number and size of the reaerosolized particles were measured using gelatin filters and an Andersen Cascade Impactor (ACI). Two droplet nuclei challenges produced higher percentages of reaerosolized particles (0.21 and 0.08%) than a droplet challenge (<0.0001%). Overall, the ACI-determined size distribution of the reaerosolized particles was larger than the characterized loading virus aerosol. This study demonstrates that only a small percentage of viable MS2 viruses was reaerosolized from FFRs by reverse airflow under the conditions evaluated, suggesting that the risks of exposure due to reaerosolization associated with extended use can be considered negligible for most respiratory viruses. However, risk assessments should be updated as new viruses emerge and better workplace exposure data becomes available.
Insights
Extended use of N95 respirators during pandemics is feasible. Reaerosolization of virus particles from contaminated N95 filtering facepiece respirators (FFRs) is minimal, suggesting low risk for healthcare workers.
Area of Science:
- Occupational Health
- Infectious Disease Control
- Aerosol Science
Background:
- N95 filtering facepiece respirator (FFR) supply shortages can occur during pandemics.
- Extended use of FFRs is a strategy to conserve supplies.
- Contaminated FFRs could potentially transmit airborne viruses.
Purpose of the Study:
- To investigate the potential for virus particle reaerosolization from contaminated N95 FFRs.
- To assess the risk of airborne transmission from reused FFRs.
Main Methods:
- Bacteriophage MS2 used as a surrogate for airborne viruses.
- MS2 applied to FFRs as droplets or droplet nuclei.
- Simulated cough generated reverse airflow through FFRs.
- Reaerosolized particles quantified using gelatin filters and an Andersen Cascade Impactor (ACI).
Main Results:
- Droplet nuclei challenges resulted in higher reaerosolization percentages (0.21% and 0.08%) compared to droplet challenges (<0.0001%).
- The size distribution of reaerosolized particles was larger than the initial MS2 aerosol.
- Only a small percentage of viable MS2 viruses was reaerosolized under tested conditions.
Conclusions:
- Reaerosolization of viruses from N95 FFRs by reverse airflow is minimal.
- Risks associated with FFR reaerosolization during extended use are likely negligible for most respiratory viruses.
- Risk assessments should be updated with emerging viruses and workplace exposure data.
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