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Langevin, C.

Publications and source records attributed to Langevin, C..

2 recordsLinked to original sources

Endoglin deficiency elicits hypoxia-driven congestive heart failure in zebrafish.

Hereditary hemorrhagic Telangiectasia (HHT) is a rare genetic disease relying on mutations affecting components of Bone Morphogenetic Protein and Transforming Growth Factor-{beta} (BMP/TGF-{beta}) signaling pathway in endothelial cells. This disorder is characterized by arterio-venous malformations prone to rupture. and ensuing hemorrhages are responsible for iron deficiency anemia. Along with Activin receptor-like kinase ALK1, Endoglin is involved in the vast majority of HHT cases. In this report, we characterized zebrafish endoglin locus and demonstrated that it produces two phylogenetically conserved protein isoforms using a distinctive alternative splicing mechanism. Functional analysis of a Crispr/Cas9 zebrafish Endoglin mutant revealed that Endoglin deficiency results in massive death during the course from juvenile stage to adulthood. Endoglin deficient fish develop a cardiomegaly resulting in heart failure and hypochromic anemia which both stem from chronic hypoxia. Histological analysis and confocal imaging evidenced structural alterations of the developing gill and its underlying vascular network that tally with hypoxia. Finally, phenylhydrazine treatment demonstrated that lowering hematocrit/blood viscosity alleviates heart failure and enhances survival of Endoglin deficient fish. Altogether, our data indicate that Endoglin is crucial for gill vascular development and that further studies using zebrafish in general and this endoglin mutant in particular will provide crucial hints regarding the molecular and cellular events altered in HHT for the development of new therapeutic strategies. Summary StatementEndoglin deficiency in zebrafish recapitulates critical aspects of Hereditary Hemorrhagic Telangiectasia (HHT) and will thus constitute a valuable model in large scale screens for HHT-active drugs.

developmental biology↗

Roscovitine exacerbates Mycobacterium abscessus infection by reducing NADPH oxidase-dependent neutrophil trafficking

Persistent neutrophilic inflammation associated with chronic pulmonary infection causes progressive lung injury and eventually death in individuals with cystic fibrosis (CF), a genetic disease caused by bi-allelic mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene. We therefore examined whether Roscovitine, a cyclin-dependent kinase inhibitor that (in other conditions) reduces inflammation while promoting host defence, might provide a beneficial effect in the context of CF. Herein, using CFTR-depleted zebrafish larvae as an innovative vertebrate model of CF immuno-pathophysiology, combined with murine and human approaches, we sought to determine the effects of Roscovitine on innate immune responses to tissue injury and pathogens in CF condition. We show that Roscovitine exerts anti-inflammatory and pro-resolution effects in neutrophilic inflammation induced by infection or tail amputation in zebrafish. Roscovitine reduces overactive epithelial ROS-mediated neutrophil trafficking, by reducing DUOX2/NADPH-oxidase activity, and accelerates inflammation resolution by inducing neutrophil apoptosis and reverse migration. Importantly, while Roscovitine efficiently enhances intracellular bacterial killing of Mycobacterium abscessus in human CF macrophages ex vivo, we found that treatment with Roscovitine results in worse infection in mouse and zebrafish models. By interfering with DUOX2/NADPH oxidase-dependent ROS production, Roscovitine reduces the number of neutrophils at infection sites, and consequently compromises granuloma formation and maintenance, favouring extracellular multiplication of M. abscessus and more severe infection. Our findings bring important new understanding of the immune-targeted action of Roscovitine and have significant therapeutic implications for safety targeting inflammation in CF.

microbiology↗