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LED-Based In Vitro Screening for Assessing Photoactivable Molecules in Bacterial Photodynamic Inactivation
Published on: January 24, 2025
Large-scale evaluation of microorganism inactivation by bipolar ionization and photocatalytic devices
Katherine M Ratliff1, Lukas Oudejans1, John Archer1
1Center for Environmental Solutions and Emergency Response, Office of Research and Development, U.S. Environmental Protection Agency, Research Triangle Park, NC, USA.
Abstract:
The COVID-19 pandemic has raised awareness in the spread of disease via airborne transmission. As a result, there has been increasing interest in technologies that claim to reduce concentrations of airborne pathogens in indoor environments. The efficacy of many of these emerging technologies is not fully understood, and the testing that has been done is often conducted at a small scale and not representative of applied settings. There is currently no standard test method for evaluating air treatment technologies, making it difficult to compare results across studies or technology types. Here, a consistent testing approach in an operational-scale test chamber with a mock recirculating heating, ventilation, and air conditioning (HVAC) system was used to evaluate the efficacy of bipolar ionization and photocatalytic devices against the non-enveloped bacteriophage MS2 in the air and on surfaces. Statistically significant differences between replicate sets of technology tests and control tests (without technologies active) are apparent after 1 h, ranging to a maximum of 0.88 log10 reduction for the bipolar ionization tests and 1.8 log10 reduction for the photocatalytic device tests. It should be noted that ozone concentrations were elevated above background concentrations in the test chamber during the photocatalytic device testing. No significant differences were observed between control and technology tests in terms of the amount of MS2 deposited or inactivated on surfaces during testing. A standardized, large-scale testing approach, with replicate testing and time-matched control conditions, is necessary for contextualizing laboratory efficacy results, translating them to real-world conditions, and for facilitating technology comparisons.
Insights
This study evaluated air treatment technologies like bipolar ionization and photocatalytic devices for reducing airborne pathogens. While effective in reducing airborne MS2 virus, photocatalytic devices produced elevated ozone levels, necessitating standardized testing for real-world applications.
Area of Science:
- Environmental Science
- Microbiology
- Engineering
Background:
- COVID-19 heightened awareness of airborne disease transmission.
- Interest in indoor air purification technologies has surged.
- Current efficacy data for air treatment technologies is limited and lacks standardization.
Purpose of the Study:
- To evaluate the efficacy of bipolar ionization and photocatalytic devices against airborne MS2 bacteriophage.
- To assess the impact of these technologies on surface contamination.
- To highlight the need for standardized, large-scale testing methods.
Main Methods:
- Utilized an operational-scale test chamber with a mock HVAC system.
- Tested bipolar ionization and photocatalytic devices against MS2.
- Included replicate testing and time-matched control conditions.
Main Results:
- Bipolar ionization achieved up to 0.88 log10 reduction of airborne MS2.
- Photocatalytic devices achieved up to 1.8 log10 reduction but elevated ozone.
- No significant inactivation of MS2 on surfaces was observed for either technology.
Conclusions:
- A standardized, large-scale testing approach is crucial for comparing air treatment technologies.
- Results from laboratory settings need contextualization for real-world application.
- Further research is needed to address ozone production by photocatalytic devices.
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