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Talin1 dysfunction is genetically linked to systemic capillary leak syndrome
Naama Elefant, Georgia Rouni, Christina Arapatzi, Danit Oz-Levi, Racheli Sion-Sarid, William J.S. Edwards, Neil J. Ball, Shira Yanovsky-Dagan, Alana R. Cowell, Vardiella Meiner, Vladimir Vainstein, Sofia Grammenoudi, Doron Lancet, Benjamin T. Goult, Tamar Harel, Vassiliki Kostourou
Naama Elefant, Georgia Rouni, Christina Arapatzi, Danit Oz-Levi, Racheli Sion-Sarid, William J.S. Edwards, Neil J. Ball, Shira Yanovsky-Dagan, Alana R. Cowell, Vardiella Meiner, Vladimir Vainstein, Sofia Grammenoudi, Doron Lancet, Benjamin T. Goult, Tamar Harel, Vassiliki Kostourou
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Research Article Cell biology Vascular biology

Talin1 dysfunction is genetically linked to systemic capillary leak syndrome

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Abstract

Systemic capillary leak syndrome (SCLS) is a rare life-threatening disorder due to profound vascular leak. The trigger and the cause of the disease are currently unknown and there is no specific treatment. Here, we identified a rare heterozygous splice-site variant in the TLN1 gene in a familial SCLS case, suggestive of autosomal dominant inheritance with incomplete penetrance. Talin1 has a key role in cell adhesion by activating and linking integrins to the actin cytoskeleton. This variant causes in-frame skipping of exon 54 and is predicted to affect talin’s C-terminal actin-binding site (ABS3). Modeling the SCLS-TLN1 variant in TLN1-heterozygous endothelial cells (ECs) disturbed the endothelial barrier function. Similarly, mimicking the predicted actin-binding disruption in TLN1-heterozygous ECs resulted in disorganized endothelial adherens junctions. Mechanistically, we established that the SCLS-TLN1 variant, through the disruption of talin’s ABS3, sequestrates talin’s interacting partner, vinculin, at cell–extracellular matrix adhesions, leading to destabilization of the endothelial barrier. We propose that pathogenic variants in TLN1 underlie SCLS, providing insight into the molecular mechanism of the disease that can be explored for future therapeutic interventions.

Authors

Naama Elefant, Georgia Rouni, Christina Arapatzi, Danit Oz-Levi, Racheli Sion-Sarid, William J.S. Edwards, Neil J. Ball, Shira Yanovsky-Dagan, Alana R. Cowell, Vardiella Meiner, Vladimir Vainstein, Sofia Grammenoudi, Doron Lancet, Benjamin T. Goult, Tamar Harel, Vassiliki Kostourou

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Figure 7

Defective vinculin-dependent stabilization of AJs in SCLS-modeled endothelial monolayers.

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Defective vinculin-dependent stabilization of AJs in SCLS-modeled endoth...
(A) Representative confocal 3D images of VE-cadherin (green) and vinculin (magenta) immunostained confluent monolayers of heterozygous-talin1 ECs transfected with full-length talin 1 (EC-TlnWT), SCLS-TLN1 mutant lacking the 21 aa of exon 54 (EC-TlnΔex54), or the talin1 ABS3 mutation (EC-TlnABS3). Vinculin signal alone (magenta) and the colocalization signal of VE-cadherin/vinculin (white) are shown in the middle and bottom panels, respectively. Nuclei were stained with DAPI (blue). (B) Graph displays the quantification of the colocalization area of VE-cadherin and vinculin normalized to the number of nuclei present in each field of view. (C) Western blot analysis of total vinculin expression levels in control and SCLS-modeled ECs. HSC70 served as a loading control. (D) Graph displays the quantification of the percentage of vinculin colocalized with p-Y31-paxillin at dynamically remodeled adhesion sites. In all graphs, data represent the percentage mean colocalization area per image; n fields of view analyzed for B: EC-TlnWT = 21; EC-TlnABS3 = 11; EC-TlnΔex54 = 11 and for D: EC-TlnWT = 14; EC-TlnABS3 = 7; EC-TlnΔex54 = 7. Red symbols represent the mean ± SEM of 3 independent experiments for B and 2 independent experiments for D. ***P < 0.0003 (B) and *P = 0.0507; **P = 0.0085 (D) by 1-way ANOVA with Dunnett’s multiple-comparison test. Scale bars: 10 μm.

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