Projects per year
Abstract
The SARS-CoV-2 Spike (S) protein plays a central role in viral entry into host cells, making it a key target for therapeutic interventions. Oxidative stress, often triggered during viral infections, can cause oxidation of cysteine in this protein. Here we investigate the impact of cysteine oxidation, specifically the formation of cysteic acid, on the conformational dynamics of the SARS-CoV-2 S protein using atomistic simulations. In particular, we examine how cysteine oxidation influences the transitions of the S protein’s receptor-binding domain (RBD) between “down” (inaccessible) and “up” (accessible) states, which are critical for host cell receptor engagement. Using solvent-accessible surface area (SASA) analysis, we identify key cysteine residues susceptible to oxidation. The results of targeted molecular dynamics (TMD) and umbrella sampling (US) simulations reveal that oxidation reduces the energy barrier for RBD transitions by approximately 30 kJ mol−1, facilitating conformational changes and potentially enhancing viral infectivity. Furthermore, we analyze the interactions between oxidized cysteine residues and glycans, as well as alterations in hydrogen bonds and salt bridges. Our results show that oxidation disrupts normal RBD dynamics, influencing the energy landscape of conformational transitions. Our work provides novel insights into the role of cysteine oxidation in modulating the structural dynamics of the SARS-CoV-2 S protein, highlighting potential targets for antiviral strategies aimed at reducing oxidative stress or modifying post-translational changes. These findings contribute to a deeper understanding of viral infectivity and pathogenesis under oxidative conditions.
| Original language | English |
|---|---|
| Article number | 6890 |
| Pages (from-to) | 1-11 |
| Number of pages | 11 |
| Journal | Scientific Reports |
| Volume | 15 |
| Issue number | 1 |
| DOIs | |
| Publication status | Published - Dec 2025 |
| MoE publication type | A1 Journal article-refereed |
Funding
T.A-N. and M.G. acknowledge support under the European Union – NextGenerationEU Instrument by the Academy of Finland grant 353298. M.G. gratefully acknowledges the hospitality and support provided by the Abdus Salam International Center for Theoretical Physics (ICTP) (Trieste) during a summer visit. The computational work was carried out using the Turing HPC infrastructure at the CalcUA core facility of the Universiteit Antwerpen (UA), a division of the Flemish Supercomputer Center VSC, funded by the Hercules Foundation, the Flemish Government (department EWI) and the UA. Computational resources by CSC IT Centre for Finland and RAMI—RawMatters Finland Infrastructure are also gratefully acknowledged.
Fingerprint
Dive into the research topics of 'The effect of cysteine oxidation on conformational changes of SARS-CoV-2 spike protein using atomistic simulations'. Together they form a unique fingerprint.Projects
- 1 Finished
-
GreenDigi/Ala-Nissilä: Experimental and Artificial-Intellience-Based Modeling of Optimal Effiency for Renewable Long-Term Heat Storages
Ala-Nissilä, T. (Principal investigator), Gyursánszky, C. (Project Member), George, A. (Project Member), Alipour, S. (Project Member), Wang, Y. (Project Member), Muhli, H. (Project Member), Vahid, H. (Project Member), Ghasemitarei, M. (Project Member), Front, A. (Project Member), Hashemi Petrudi, A. (Project Member), Tasanen, T. (Project Member), Khakpour, R. (Project Member) & Chang, X. (Project Member)
EU The Recovery and Resilience Facility (RRF)
01/01/2023 → 31/12/2025
Project: RCF Academy Project targeted call
Equipment
-
Raw Materials Research Infrastructure
Karppinen, M. (Manager)
School of Chemical EngineeringFacility/equipment: Facility