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Published on: February 24, 2026
Single pass inactivation of airborne multidrug resistant bacteria using electron beam irradiation with mechanistic
Ashkan Seza1, Kimia Mozahheb Yousefi1,2, Sara Saeedifar1
1Antimicrobial Resistance Research Center, Institute of Immunology and Infectious Diseases, Iran University of Medical Sciences, Tehran, Iran.
Abstract:
Airborne and aerosol transmission of multidrug-resistant (MDR) bacteria pose a major challenge in healthcare environments. This study evaluated the performance of an electron-beam irradiation (EBI) system for inactivating airborne MDR bacteria under controlled laboratory conditions. To perform this assessment, clinical isolates of MDR Pseudomonas aeruginosa, Acinetobacter sp., Klebsiella sp., and methicillin-resistant Staphylococcus aureus (MRSA) were aerosolized to simulate realistic airborne transmission and subsequently introduced into the EBI system. Downstream bacterial aerosols were collected using liquid impingers and quantified by culture-based enumeration. CFU data were log₁₀-transformed prior to analysis. The EBI system reduced airborne bacterial loads by 4.01 log₁₀ for P. aeruginosa, 3.64 log₁₀ for Acinetobacter sp., 3.64 log₁₀ for Klebsiella sp., and 5.37 log₁₀ for MRSA, corresponding to disinfection efficiencies of 99.98-99.999%. Scanning electron microscopy (SEM) and elemental mechanistic study revealed morphological damage, including membrane rupture, surface collapse, and loss of structural integrity, suggesting that electron impact and electroporation may be major mechanisms of inactivation. These results demonstrate that EBI is a rapid and effective method for mitigating airborne MDR bacterial threats, with potential for deployment in healthcare, laboratory, and other high-risk indoor environments.
Insights
Electron-beam irradiation (EBI) effectively inactivates airborne multidrug-resistant (MDR) bacteria, including MRSA, reducing bacterial loads by over 99.99%. This technology offers a rapid solution for mitigating airborne microbial threats in healthcare settings.
Area of Science:
- Environmental microbiology
- Infectious disease control
- Radiation physics
Background:
- Airborne transmission of multidrug-resistant (MDR) bacteria is a significant concern in healthcare.
- Existing methods for controlling airborne pathogens have limitations.
Purpose of the Study:
- To evaluate the efficacy of electron-beam irradiation (EBI) for inactivating airborne MDR bacteria.
- To investigate the mechanisms of bacterial inactivation by EBI.
Main Methods:
- Clinical isolates of MDR bacteria (Pseudomonas aeruginosa, Acinetobacter sp., Klebsiella sp., MRSA) were aerosolized.
- Aerosols were passed through an EBI system.
- Bacterial loads were quantified using culture-based methods post-irradiation.
- Scanning electron microscopy (SEM) was used to examine bacterial morphology.
Main Results:
- EBI achieved significant reductions in airborne bacterial loads: 4.01 log₁₀ for P. aeruginosa, 3.64 log₁₀ for Acinetobacter sp., 3.64 log₁₀ for Klebsiella sp., and 5.37 log₁₀ for MRSA.
- Disinfection efficiencies ranged from 99.98% to 99.999%.
- SEM revealed morphological damage, including membrane rupture and surface collapse, indicating electron impact and electroporation as inactivation mechanisms.
Conclusions:
- EBI is a rapid and highly effective method for inactivating airborne MDR bacteria.
- The findings support the potential deployment of EBI in healthcare and other high-risk indoor environments to combat airborne microbial threats.
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