Related Experiment Video
Updated: Jun 1, 2026

A Liquid Phase Affinity Capture Assay Using Magnetic Beads to Study Protein-Protein Interaction: The Poliovirus-Nanobody Example
Published on: May 29, 2012
Impact of internal RNA on aggregation and electrokinetics of viruses: comparison between MS2 phage and corresponding
C Dika1, J F L Duval, H M Ly-Chatain
1Laboratoire de Chimie Physique et Microbiologie pour l'Environnement, Nancy-Université, CNRS, Faculté de Pharmacie, 54250 Nancy, France.
Abstract:
We compare for the first time the electrokinetic and aggregation properties of MS2 phage (pH 2.5 to 7, 1 to 100 mM NaNO(3) electrolyte concentration) with those of the corresponding virus-like particles (VLPs), which lack entirely the inner viral RNA component. In line with our previous work (J. Langlet, F. Gaboriaud, C. Gantzer, and J. F. L. Duval, Biophys. J. 94:3293-3312, 2008), it is found that modifying the content of RNA within the virus leads to very distinct electrohydrodynamic and aggregation profiles for MS2 and MS2 VLPs. Under the given pH and concentration conditions, MS2 VLPs exhibit electrophoretic mobility larger in magnitude than that of MS2, and both have similar isoelectric point (IEP) values (∼4). The electrokinetic results reflect a greater permeability of MS2 VLPs to electroosmotic flow, developed within/around these soft particles during their migration under the action of the applied electrical field. Results also support the presence of some remaining negatively charged component within the VLPs. In addition, MS2 phage systematically forms aggregates at pH values below the IEP, regardless of the magnitude of the solution ionic strength, whereas MS2 VLPs aggregate under the strict condition where the pH is relatively equal to the IEP at sufficiently low salt concentrations (<10 mM). It is argued that the stability of VLPs against aggregation and the differences between electrokinetics of MS2 and corresponding VLPs conform to recently developed formalisms for the stability and electrohydrodynamics of soft multilayered particles. The differences between the surface properties of these two kinds of particles reported here suggest that VLPs may not be appropriate for predicting the behavior of pathogenic viruses in aqueous media.
Insights
Comparing MS2 phage and virus-like particles (VLPs), this study reveals distinct electrokinetic and aggregation behaviors. MS2 VLPs show greater electrophoretic mobility and different aggregation tendencies than MS2 phage, impacting virus behavior predictions.
Area of Science:
- Colloid and surface science
- Biophysics
- Environmental science
Background:
- Virus-like particles (VLPs) are increasingly used as models for viruses.
- Understanding the surface properties of VLPs is crucial for predicting viral behavior.
- Differences in RNA content between viruses and VLPs can significantly alter their physical characteristics.
Purpose of the Study:
- To compare the electrokinetic and aggregation properties of MS2 phage and MS2 VLPs.
- To investigate the influence of RNA content on the behavior of these particles.
- To assess the suitability of VLPs as surrogates for pathogenic viruses.
Main Methods:
- Electrophoretic mobility measurements across varying pH and electrolyte concentrations (1-100 mM NaNO3).
- Aggregation assays under controlled pH and ionic strength conditions.
- Analysis of electrohydrodynamic and stability data using soft particle formalisms.
Main Results:
- MS2 VLPs exhibited higher electrophoretic mobility than MS2 phage, with similar isoelectric points (around pH 4).
- MS2 VLPs demonstrated greater permeability to electroosmotic flow, suggesting internal structural differences.
- MS2 phage aggregated below its isoelectric point regardless of ionic strength, while VLPs aggregated only at low salt concentrations (<10 mM) near their isoelectric point.
Conclusions:
- The presence or absence of RNA significantly impacts the electrokinetic and aggregation properties of MS2 phage and VLPs.
- VLPs display enhanced stability against aggregation compared to MS2 phage.
- Differences observed suggest VLPs may not be suitable for accurately predicting the behavior of pathogenic viruses in aqueous environments.
Related Concept Videos
Viruses with RNA Genomes
Size and Structure of Viral Genomes
Viral Structure
Viruses of Archaea
DNA Bacteriophages
Intracellular Movement of Viruses and Bacteria

