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Investigating the Significances of Thiol Functionalities in SARS-CoV-2 Using Carbon Dots for Viral Inhibition
Braulio C L B Ferreira1, Maxence Hannard2, Mercedes Lozano-Garcia3
1Department of Chemistry, University of Miami, 1301 Memorial Drive, Coral Gables, Florida 33146, United States.
Abstract:
While the World Health Organization has declared the end of the SARS-CoV-2 public health emergency, studies related to corona viruses are still under course. As of 2024, the severity of COVID-19 has diminished with current treatments and vaccinations. However, individuals can still face severe complications, highlighting the importance of ongoing research into innovative treatments for current and future coronavirus-related diseases. This study approaches the mechanism of viral entrance into the host cells and the current evidence on the use of sulfhydryl groups for the COVID-19 treatment. Certain thiol drugs, a key contributor to inflammatory processes, exhibit both viral inhibition properties and the potential to regulate cellular oxidative stress by scavenging free radicals. Herein, we developed biocompatible thiol-functionalized carbon dots (CDs) and investigated the correlation between the number of thiols and pseudo-SARS-CoV-2 inhibition, reactive oxygen species (ROS) scavenging, and anti-inflammatory response. The free-radical scavenging experiment and the ROS cellular assay indicate that thiolated CDs serve as effective reducing agents and potential regulators of cellular oxidative stress. The CDs also demonstrated good cell viability alongside significant antiviral capabilities, with inhibition levels up to 60.4%. Furthermore, the flow cytometry results suggest that in an inflammatory environment, the presence of thiolated CDs promotes an anti-inflammatory response. Overall, the results demonstrate a strong correlation between the number of thiols and the increased efficacy observed across experiments, presenting thiolated CDs as promising candidates to prevent and treat COVID-19 infection.
Insights
Thiol-functionalized carbon dots show promise for treating COVID-19 by inhibiting viral entry and reducing inflammation. Increased thiol content enhances their effectiveness in scavenging reactive oxygen species and fighting the virus.
Area of Science:
- Biomedical Engineering
- Materials Science
- Infectious Diseases
Background:
- Despite reduced severity, SARS-CoV-2 still poses risks, necessitating novel treatments.
- Sulfhydryl groups (thiols) show potential in inhibiting viral replication and managing oxidative stress.
- Research into innovative therapies for coronavirus infections remains crucial.
Purpose of the Study:
- To develop biocompatible thiol-functionalized carbon dots (CDs).
- To investigate the correlation between thiol density and anti-SARS-CoV-2 efficacy.
- To evaluate ROS scavenging and anti-inflammatory properties of thiolated CDs.
Main Methods:
- Synthesis of thiol-functionalized carbon dots (CDs).
- Assessment of pseudo-SARS-CoV-2 inhibition and cell viability.
- Evaluation of reactive oxygen species (ROS) scavenging and anti-inflammatory responses using cellular assays and flow cytometry.
Main Results:
- Thiolated CDs demonstrated significant antiviral capabilities, inhibiting pseudo-SARS-CoV-2 by up to 60.4%.
- CDs effectively scavenged free radicals and regulated cellular oxidative stress.
- Flow cytometry indicated an anti-inflammatory response in the presence of thiolated CDs.
- A strong correlation was observed between thiol number and enhanced efficacy.
Conclusions:
- Thiolated carbon dots are effective antioxidants and possess significant antiviral and anti-inflammatory properties.
- The number of thiols on CDs directly correlates with their therapeutic efficacy.
- Thiolated CDs represent promising candidates for preventing and treating COVID-19 and potentially other coronavirus infections.

