Destruction/Inactivation of SARS-CoV-2 Virus Using Ultrasound Excitation: A Preliminary Study
Almunther Alhasawi1, Fajer Alassaf2, Alshimaa Hassan1
1Infectious Diseases Hospital, Ministry of Health, Kuwait.
Abstract:
SARS-CoV-2, the causative virus of the COVID-19 pandemic, is a highly transmissible, enveloped, single-stranded RNA virus that has mutated into several variants, complicating vaccine strategies and drug resistance. Novel treatment modalities targeting conserved structural vulnerable points are essential to combat these variants. The primary aim of the current study is to test the mechanical vulnerability of the SARS-CoV-2 virus envelope and spike proteins to focused, high-frequency ultrasound waves (25 MHz) in vitro. Utilizing a preliminary pretest and posttest study design, the study was conducted on a virus sample within a distilled water matrix, under controlled laboratory biosafety conditions. Since detailed imaging tools were unavailable, viral disruption was indirectly measured using real-time PCR cycle threshold (Ct) values. Ct values increased significantly after high-frequency ultrasound exposure, indicating a reduction in amplifiable viral genomic material. A paired t-test indicated a significant difference between the pretest and posttest Ct (p < 0.001), which is supported by Monte Carlo test results that revealed statistically significant shifting in viral load categories (p = 0.001, two-sided). Specifically, 85.7% of high-viral-load samples converted to low or moderate content, 46.7% of low or moderate samples were shifted to negative content. This intervention produced a large effect size (Cohen's d = 2.422). These results indicate that ultrasound may offer a promising non-pharmacological approach to destroy or inactivate SARS-CoV-2 variants in an aqueous environment.
Insights
High-frequency ultrasound waves significantly reduced SARS-CoV-2 viral load in vitro. This non-pharmacological approach shows promise for inactivating the virus, including its variants, in aqueous environments.
Area of Science:
- Virology
- Biophysics
- Acoustics
Background:
- SARS-CoV-2 variants pose challenges to existing vaccine and drug strategies.
- Targeting conserved viral structures is crucial for developing novel treatments.
- Understanding the mechanical vulnerability of the virus is essential.
Purpose of the Study:
- To investigate the mechanical vulnerability of SARS-CoV-2 envelope and spike proteins to high-frequency ultrasound (25 MHz).
- To assess the efficacy of ultrasound in reducing viral load in vitro.
Main Methods:
- A pretest and posttest study design was employed.
- Viral samples in distilled water were exposed to focused, high-frequency ultrasound.
- Viral disruption was indirectly measured using real-time PCR cycle threshold (Ct) values.
Main Results:
- A significant increase in Ct values was observed post-ultrasound exposure, indicating reduced viral genomic material.
- Statistical analysis (paired t-test, Monte Carlo tests) confirmed a significant reduction in viral load.
- A large effect size (Cohen's d = 2.422) was noted, with substantial shifts in viral load categories.
Conclusions:
- High-frequency ultrasound effectively reduces SARS-CoV-2 viral load in vitro.
- Ultrasound presents a promising non-pharmacological method for inactivating SARS-CoV-2 and its variants in aqueous solutions.
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