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Schoon, R. M.

Publications and source records attributed to Schoon, R. M..

2 recordsLinked to original sources

VE-cadherin RGD motifs are dispensable for cell-cell junctions, endothelial barrier function and leukocyte extravasation

VE-cadherin is a key transmembrane protein in endothelial cell-cell junctions, essential for maintaining vascular integrity and regulating selective leukocyte extravasation into inflamed tissue. The extracellular domain of human VE-cadherin contains two arginine-glycine-aspartate (RGD) motifs, which are known integrin-binding sites, particularly for integrins in the {beta}1, {beta}3, and {beta}5 families. In this study, we examined the functional relevance of these RGD motifs by generating VE-cadherin variants with the RGD sequences mutated to non-functional RGE. Immunofluorescence analysis showed that the VE-cadherin[D238E], VE-cadherin[D301E], and double-mutant VE-cadherin[D238/301E] variants formed stable cell-cell junctions, comparable to wild-type VE-cadherin. Additionally, electric cell-substrate impedance sensing (ECIS) confirmed that endothelial cells expressing each VE-cadherin RGD>RGE variant maintained efficient barrier function. Moreover, leukocyte transmigration assays demonstrated that the RGD>RGE mutations did not affect leukocyte-endothelial interactions during transmigration. In summary, our findings indicate that the VE-cadherin RGD motifs are not essential for endothelial junction formation or leukocyte transmigration.

cell biology↗

Leukocytes use endothelial membrane tunnels to extravasate the vasculature

Upon inflammation, leukocytes extravasate through endothelial cells. When they extravasate in a paracellular manner, it is generally accepted that neighbouring endothelial cells physically disconnect to open cell-cell junctions, allowing leukocytes to cross. When carefully examining endothelial junctions, we found a partial membrane overlap of endothelial cells beyond VE-cadherin distribution. These overlaps are regulated by actin polymerization and, although marked by, do not require PECAM-1, nor VE-cadherin. Neutrophils prefer wider membrane overlaps as exit sites. Detailed 3D analysis of endothelial membrane dynamics during paracellular neutrophil transmigration in real-time, at high spatiotemporal resolution using resonant confocal and lattice light-sheet imaging, revealed that overlapping endothelial membranes form a tunnel during neutrophil transmigration. These tunnels are formed by the neutrophil lifting the membrane of the upper endothelial cell while indenting and crawling over the membrane of the underlying endothelial cell. Our work shows that endothelial cells do not simply retract upon passage of neutrophils but provide membrane tunnels, allowing neutrophils to extravasate. This discovery defines the 3D multicellular architecture in which the paracellular transmigration of neutrophils occurs.

cell biology↗