Endemic Respiratory Viruses Inactivation in Aerosol by Means of Radiated Microwaves

Antonio Manna, Davide Forni, Marco Bartocci, Nicola Pasculli, Barbara Poddesu, Alberto Vincentelli, Franco Lori
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Abstract

Background. Airborne transmission of endemic respiratory viruses, such as SARS-CoV-2 and influenza viruses, poses significant public health challenges. Aims. This manuscript investigates the efficacy of electromagnetic waves as a novel approach for airborne viruses inactivation in bioaerosol suspension, that is their natural route of transmission. Methods. Using a bioaerosol system in a controlled laboratory environment, different variants of SARS-CoV-2 and the human influenza virus were exposed to resonant radiated microwaves within safe power levels. Results. Radiated microwaves exposure led to a substantial reduction in the infectivity of highly transmissible SARS-CoV-2 variants, including the delta and omicron variants, achieving 80-90% reduction in infectivity. These variants exhibited susceptibility to the resonant radiated microwaves similar to the original Wuhan variant of SARS-CoV-2, confirming the effectiveness of this approach against a range of SARS-CoV-2 strains. Furthermore, the H1N1 human influenza virus displayed a 90% reduction in infectivity when exposed to microwave waves. However, the influenza virus exhibited distinctive response patterns, being susceptible to higher frequencies (up to 16 GHz) compared to SARS-CoV-2. Additionally, longer exposure times (5 minutes) were required to achieve the same level of inactivation observed in SARS-CoV-2. Conclusions: These findings highlight the potential of radiated microwaves as a strategy for inactivating SARS-CoV-2 and influenza viruses. Further, they contribute to determining the optimal frequencies, exposure times, and power levels required for effective virus inactivation. This innovative approach could provide valuable insights for developing sanitization strategies and public health interventions to mitigate the airborne transmission of respiratory viruses.
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辐射微波灭活气溶胶中的地方性呼吸道病毒
背景。地方性呼吸道病毒(如SARS-CoV-2和流感病毒)的空气传播构成了重大的公共卫生挑战。目标本文研究了电磁波作为生物气溶胶悬浮液中空气传播病毒灭活的新方法的功效,这是它们的自然传播途径。方法。在受控的实验室环境中使用生物气溶胶系统,在安全功率水平下将不同变体的SARS-CoV-2和人类流感病毒暴露于共振辐射微波中。结果。辐射微波暴露导致高传染性SARS-CoV-2变体(包括δ型和组粒型变体)的传染性大幅降低,传染性降低了80-90%。这些变体对共振辐射微波的敏感性与SARS-CoV-2的原始武汉变体相似,证实了该方法对一系列SARS-CoV-2菌株的有效性。此外,H1N1人类流感病毒暴露在微波中时,传染性降低了90%。然而,与SARS-CoV-2相比,流感病毒表现出独特的反应模式,易受更高频率(高达16 GHz)的影响。此外,要达到在SARS-CoV-2中观察到的相同失活水平,需要更长的暴露时间(5分钟)。结论:这些发现突出了辐射微波作为灭活SARS-CoV-2和流感病毒策略的潜力。此外,它们有助于确定有效灭活病毒所需的最佳频率、暴露时间和功率水平。这一创新方法可为制定卫生处理战略和公共卫生干预措施以减轻呼吸道病毒的空气传播提供有价值的见解。
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