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Published on: January 3, 2012
Mechanism of Shiga Toxin Clustering on Membranes
Weria Pezeshkian1,2, Haifei Gao3,2, Senthil Arumugam3,4
1Center for Biomembrane Physics (MEMPHYS), Department of Physics, Chemistry and Pharmacy (FKF), University of Southern Denmark , Campusvej 55, 5230 Odense M, Denmark.
Abstract:
The bacterial Shiga toxin interacts with its cellular receptor, the glycosphingolipid globotriaosylceramide (Gb3 or CD77), as a first step to entering target cells. Previous studies have shown that toxin molecules cluster on the plasma membrane, despite the apparent lack of direct interactions between them. The precise mechanism by which this clustering occurs remains poorly defined. Here, we used vesicle and cell systems and computer simulations to show that line tension due to curvature, height, or compositional mismatch, and lipid or solvent depletion cannot drive the clustering of Shiga toxin molecules. By contrast, in coarse-grained computer simulations, a correlation was found between clustering and toxin nanoparticle-driven suppression of membrane fluctuations, and experimentally we observed that clustering required the toxin molecules to be tightly bound to the membrane surface. The most likely interpretation of these findings is that a membrane fluctuation-induced force generates an effective attraction between toxin molecules. Such force would be of similar strength to the electrostatic force at separations around 1 nm, remain strong at distances up to the size of toxin molecules (several nanometers), and persist even beyond. This force is predicted to operate between manufactured nanoparticles providing they are sufficiently rigid and tightly bound to the plasma membrane, thereby suggesting a route for the targeting of nanoparticles to cells for biomedical applications.
Insights
Shiga toxin molecules cluster on cell membranes not due to membrane properties, but by suppressing membrane fluctuations. This fluctuation-induced force offers a new mechanism for nanoparticle targeting in biomedical applications.
Area of Science:
- Biophysics
- Cell Biology
- Nanotechnology
Background:
- Shiga toxin binds to globotriaosylceramide (Gb3) on target cells.
- Toxin molecules exhibit clustering on the plasma membrane, but the mechanism is unclear.
Purpose of the Study:
- Investigate the mechanism driving Shiga toxin clustering on cell membranes.
- Explore potential nanoparticle targeting strategies based on observed forces.
Main Methods:
- Utilized vesicle and cell systems.
- Employed coarse-grained computer simulations.
- Experimentally verified computational findings.
Main Results:
- Membrane properties like line tension and lipid depletion do not drive toxin clustering.
- Toxin clustering correlates with suppressed membrane fluctuations.
- Clustering requires tight binding of toxin molecules to the membrane surface.
Conclusions:
- A membrane fluctuation-induced force causes effective attraction between Shiga toxin molecules.
- This force is significant at nanometer scales and could be harnessed for nanoparticle delivery.
- Findings suggest a novel route for targeted nanoparticle-cell interactions in biomedicine.
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