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Fretaud, M.

Publications and source records attributed to Fretaud, M..

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↗

New look at RSV infection : tissue clearing and 3D imaging of the entire mouse lung at cellular resolution.

BackgroundRespiratory Syncytial Virus (RSV) is the major cause of severe acute respiratory tract illness in young children worldwide and a main pathogen for the elderly and immune-compromised people. In the absence of vaccines or effective treatments, a better characterization of the pathogenesis of RSV infection is required. To date, the pathophysiology of the disease and its diagnosis mostly relied on chest x-ray and genome detection in nasopharyngeal swabs. The development of new imaging approaches is instrumental to further the description of RSV spread, virus-host interactions and related acute respiratory disease, at the level of the entire lung. MethodsBy combining tissue clearing, 3D microscopy and image processing, we developed a novel visualization tool of RSV infection in undissected mouse lungs. ResultsWhole tissue analysis allowed the identification of infected cell subtypes, based on both morphological traits and position within the cellular network. Furthermore, 3D imaging was also valuable to detect the cytoplasmic viral factories, also called inclusion bodies, a hallmark of RSV infection. ConclusionsWhole lung clearing and 3D deep-imaging represents an unprecedented visualization method of infected lungs to allow insight into RSV pathophysiology and improve the 2D histology analyses.

pathology↗