PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 5, 2026The Journal of Chemical Physics1 citations

Mesoscale transport of enveloped viruses

View Full Paper
DMDaniela Moreno-ChaparroUniversity of the Basque CountryFUFlorencio Balboa UsabiagaBasque Center for Applied MathematicsCZCecilia ZazaLondon Centre for Nanotechnology

Key Points

  • The aim is to explore how the dynamics of spike proteins on enveloped viruses affect their mobility.
  • Utilized a mesoscopic model to study spike protein behavior on enveloped viruses.
  • Constructed three virion models varying in spike flexibility: rigid, tilting, and completely flexible.
  • Measured translational and rotational diffusion coefficients to assess viral mobility.
  • Applied smoothed dissipative particle dynamics and compared findings to experimental models using DNA-PAINT imaging.
  • Found that spike flexibility mainly influences rotational diffusion while the viral envelope affects translational mobility.
  • Identified that hydrodynamic interactions can drive dynamic clustering of spike proteins.
  • Discovered that clusters predominantly form doublets and triplets with specific size and lifespan characteristics.

Abstract

Enveloped viruses are characterized by spike proteins that protrude from and decorate the viral membrane. These proteins play a crucial role in host cell interactions and exhibit dynamic behaviors, such as tilting, lateral diffusion, and clustering, which vary across different types of enveloped viruses. For instance, SARS-CoV-2 spikes tilt to facilitate receptor binding, influenza spikes migrate during infection, and HIV (Human Immunodeficiency Virus) spikes migrate and cluster to enhance infectivity. In this study, we investigate how such dynamics influence the virus mobility. We characterize viral mobility through translational and rotational diffusion coefficients using a mesoscopic model that incorporates the dynamics of both the flexible spike proteins and the viral envelope. Using the smoothed dissipative particle dynamics method, we construct three virion models with varying spike flexibility. The first is a fully rigid virus with static spikes, the second is a model with spikes that tilt but remain fixed in position, and the third is a model allowing both tilting and lateral diffusion of spikes across the envelope. Our results show that spike flexibility primarily affects rotational diffusion, whereas the envelope dominates the translational mobility of the virus. We also explore spike clustering driven purely by hydrodynamic interactions and compare with an experimental model reference using DNA-PAINT super-resolution imaging of HIV-like particles. We identify that hydrodynamic interactions alone can be responsible for the dynamic clustering of spike proteins where the characteristic size and lifespan of such clusters indicate predominantly doublet and triplet formations. Our findings highlight the role of spike dynamics in whole virion mobility and motivate further investigations with time-resolved experimental evidence to fully characterize clustering behavior.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Moreno-Chaparro et al. (2026) studied this question.

synapsesocial.com/papers/6984343ff1d9ada3c1fb2320https://doi.org/10.1063/5.0294660
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1A numerical method for suspensions of articulated bodies in viscous flows2022 · 9 citations
  2. 2Structural maturation of the matrix lattice is not required for HIV-1 particle infectivity2025 · 6 citations
  3. 3Structures and distributions of SARS-CoV-2 spike proteins on intact virions2020 · 1,291 citations
  4. 4Structure and Dynamics of HIV-1 ENV Trimers on Native Virions Engaged in Living T Cells2021 · 2 citations
  5. 5Adaptive kinetic Monte Carlo simulations of surface segregation in PdAu nanoparticles2019 · 43 citations