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Published on: January 24, 2025
Photodynamic Inactivation of SARS-CoV-2 Infectivity and Antiviral Treatment Effects In Vitro
Svitlana Ziganshyna1, Grit Szczepankiewicz2, Mathias Kuehnert3
1Department of Anaesthesiology and Intensive Care, Medical Faculty, University of Leipzig, 04103 Leipzig, Germany.
Abstract:
Despite available vaccines, antibodies and antiviral agents, the severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) pandemic still continues to cause severe disease and death. Current treatment options are limited, and emerging new mutations are a challenge. Thus, novel treatments and measures for prevention of viral infections are urgently required. Photodynamic inactivation (PDI) is a potential treatment for infections by a broad variety of critical pathogens, including viruses. We explored the infectiousness of clinical SARS-CoV-2 isolates in Vero cell cultures after PDI-treatment, using the photosensitizer Tetrahydroporphyrin-tetratosylate (THPTS) and near-infrared light. Replication of viral RNA (qPCR), viral cytopathic effects (microscopy) and mitochondrial activity were assessed. PDI of virus suspension with 1 µM THPTS before infection resulted in a reduction of detectable viral RNA by 3 log levels at day 3 and 6 after infection to similar levels as in previously heat-inactivated virions (<99.9%; p < 0.05). Mitochondrial activity, which was significantly reduced by viral infection, was markedly increased by PDI to levels similar to uninfected cell cultures. When applying THPTS-based PDI after infection, a single treatment had a virus load-reducing effect only at a higher concentration (3 µM) and reduced cell viability in terms of PDI-induced toxicity. Repeated PDI with 0.3 µM THPTS every 4 h for 3 d after infection reduced the viral load by more than 99.9% (p < 0.05), while cell viability was maintained. Our data demonstrate that THPTS-based antiviral PDI might constitute a promising approach for inactivation of SARS-CoV-2. Further testing will demonstrate if THPTS is also suitable to reduce the viral load in vivo.
Insights
Photodynamic inactivation (PDI) using Tetrahydroporphyrin-tetratosylate (THPTS) effectively inactivated severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) in vitro. This novel antiviral approach shows promise for reducing viral load and restoring cell health.
Area of Science:
- Virology
- Photochemistry
- Cell Biology
Background:
- The ongoing severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2) pandemic necessitates novel therapeutic strategies due to limited treatment options and emerging viral mutations.
- Photodynamic inactivation (PDI) presents a potential broad-spectrum antiviral treatment modality.
Purpose of the Study:
- To investigate the efficacy of PDI using Tetrahydroporphyrin-tetratosylate (THPTS) and near-infrared light for inactivating clinical SARS-CoV-2 isolates in vitro.
- To assess the impact of PDI on viral RNA replication, cytopathic effects, and mitochondrial activity in infected cell cultures.
Main Methods:
- Clinical SARS-CoV-2 isolates were treated with THPTS and near-infrared light before or after infection of Vero cell cultures.
- Viral RNA levels were quantified using qPCR, viral cytopathic effects were observed via microscopy, and mitochondrial activity was measured.
Main Results:
- PDI of virus suspension with 1 µM THPTS before infection reduced viral RNA by over 3 log levels (<99.9%), restoring mitochondrial activity.
- Post-infection PDI with 3 µM THPTS showed a reduction in viral load but decreased cell viability.
- Repeated PDI with 0.3 µM THPTS post-infection maintained cell viability while reducing viral load by over 99.9%.
Conclusions:
- THPTS-based PDI demonstrates significant potential for inactivating SARS-CoV-2 in vitro, both pre- and post-infection.
- Antiviral PDI may offer a promising therapeutic avenue for managing SARS-CoV-2 infections, warranting further in vivo investigation.

