Ribonucleic acid genome mutations induced by the Casimir effect
B P Nogueira1, I R Lavor2, C R Muniz1
1Universidade Estadual do Ceará, Faculdade de Educação, Ciências e Letras de Iguatu, Iguatu, CE, Brazil.
Quantum vacuum fluctuations may cause mutations in SARS-CoV-2 RNA, driven by its unique geometry. Thermal fluctuations have a negligible impact, highlighting the role of RNA structure in viral genome changes.
Area of Science:
- Theoretical Physics
- Molecular Biology
- Virology
Background:
- The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) genome is composed of RNA.
- Quantum vacuum fluctuations are inherent phenomena in the quantum field theory.
- The Casimir effect describes an attractive or repulsive force between two uncharged, conductive surfaces in a vacuum.
Purpose of the Study:
- To investigate the Casimir effect within the RNA of SARS-CoV-2.
- To explore the potential for quantum vacuum fluctuations to induce damage or mutations in the viral genome.
- To quantify the mutation rate associated with these quantum effects.
Main Methods:
- Calculated non-thermal Casimir energy for a helical RNA structure.
- Extended calculations to the electromagnetic field.
- Utilized a normalized inverse exponential distribution to determine mutation probability, considering UV-A and UV-C cutoff energies.
Main Results:
- A non-negligible mutation rate per base per infection cycle was found for SARS-CoV-2, particularly influenced by UV-A.
- A maximum mutation rate was identified at a specific RNA ribbon radius.
- Thermal fluctuations (classical and quantum) were found to have a negligible impact on mutation probability.
Conclusions:
- The geometric and topological properties of the viral RNA are the primary contributors to mutations induced by quantum vacuum fluctuations.
- Quantum vacuum fluctuations, rather than thermal effects, are a significant factor in SARS-CoV-2 genome mutations.
- The study provides a theoretical framework for understanding RNA virus mutation mechanisms.
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