A protein diffusion model of the sealing effect.

Stewart Russell1, Limary M Cancel1, John M Tarbell1

  • 1Department of Biomedical Engineering, The City College of New York, The Graduate School, University Center of CUNY, New York, NY 10031, USA.

Chemical Engineering Science
|January 2, 2023
PubMed
Summary

This study explores how proteins move within endothelial cells to seal tight junctions between neighboring cells. Tight junctions are structures that regulate the flow of water and other substances through the endothelium, the inner lining of blood vessels. The researchers developed a mathematical model to simulate how proteins diffuse from the interior of the cell to the junctional region. They assumed that when pressure is applied, proteins move toward the junction and are immediately incorporated into the tight junction, sealing the gap. The model fits well with experimental data and provides three key parameters, including a measure of how quickly proteins move within the cell. The model helps compare different experimental results and identify outliers. It supports the idea that protein diffusion is a central mechanism in tight junctional sealing.

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