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Kipcke, J. P.

Publications and source records attributed to Kipcke, J. P..

2 recordsLinked to original sources

A critical role for VE-cadherin in regulating actin dynamics during endothelial maturation and non-inflammatory activation via a tension-sensitive intermediate state

Epithelial and endothelial monolayers maintain homeostasis by adapting to physiological stimuli and injury through conversion processes that remain incompletely understood. Using endothelial cell cultures (HUVEC), we investigate how monolayer maturation and non-inflammatory remodeling are molecularly regulated. Maturation involves reduced cell perimeter causing increased junctional VE-cadherin, which recruits junctional actin and integrins, establishing a quiescent, stable monolayer. Remarkably, we identify a previously unrecognized, rapid and reversible intermediate-state, marked by VE-cadherin linearization and actomyosin relaxation via MLC-dephosphorylation, that emerges during non-inflammatory activation triggered by onset or increase in shear stress. This novel intermediate-state enhances junctional actin and integrin recruitment, strengthening barrier-function while protecting endothelial cells from overstimulation and mechanical damage. Re-phosphorylation of MLC dissolves junctional actin and induces formation of junction-associated-intermittent-lamellipodia (JAIL), enabling cell shape change and arterial phenotype conversion. Overall, loss of actomyosin tension and junctional VE-cadherin-concentration defines actin recruitment and reveals a tension-sensitive, cell-protective intermediate state that primes endothelial remodeling, offering an expanded model for mechano-transduction and shear stress adaptation.

cell biology↗

TNF-a induces VE-cadherin-dependent gap/JAIL cycling through an intermediate state essential for neutrophil transmigration

Inflammatory endothelial phenotypes describe distinct cellular patterns essential for controlling transendothelial migration of leukocytes (TEM). While TNF--induced CAM expression mediates leukocyte interaction, the role of a potential inflammatory morphological phenotype (IMP) - characterised by barrier-function decrease and shape-change in TEM - remains unclear. This study identifies the TNF--induced IMP as indispensable for neutrophil TEM, while regulating barrier-function. The TNF--induced IMP progresses through two states: an intermediate state that transiently enhances barrier function via MLC-dephosphorylation, junctional actin recruitment and VE-cadherin linearisation, protecting the monolayer from collapse; while the subsequent development of the IMP requires MLC rephosphorylation, junctional actin disassembly, stress fibre formation and Arp2/3-mediated membrane protrusions causing shape-change. This in turn dilutes junctional VE-cadherin, forming intercellular gaps for neutrophil TEM, while inducing junction-associated intermittent lamellipodia (JAIL) to locally restore VE-cadherin adhesion, appearing as gap/JAIL cycles driving junctional dynamics. VE-cadherin overexpression blocks TNF--induced IMP and gap/JAIL cycling, reducing TEM by [~]80% without altering CAM expression. These findings highlight gap/JAIL cycling and MLC phosphorylation as key IMP regulators and potential therapeutic targets for inflammatory diseases.

immunology↗