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Menoret, S.

Publications and source records attributed to Menoret, S..

2 recordsLinked to original sources

Changes in social behaviour with alterations of MAPK3 and KCTD13/CUL3 pathways in two new outbred rat models for the 16p11.2 syndromes with autism spectrum disorders.

Copy number variations (CNVs) of the human 16p11.2 locus are associated with several developmental/neurocognitive syndromes. Particularly, deletion and duplication of this genetic interval are found in patients with autism spectrum disorders, intellectual disability and other psychiatric traits. The high gene density associated with the region and the strong phenotypic variability of incomplete penetrance, make the study of the 16p11.2 syndromes extremely complex. To systematically study the effect of 16p11.2 CNVs and identify candidate genes and molecular mechanisms involved in the pathophysiology, mouse models were generated previously and showed learning and memory, and to some extent social deficits. To go further in understanding the social deficits caused by 16p11.2 syndromes, we engineered deletion and duplication of the homologous region to the human 16p11.2 genetic interval in two rat outbred strains, Sprague Dawley (SD) and Long Evans (LE). The 16p11.2 rat models displayed convergent defects in social behaviour and only a few cognitive defects. Interestingly major pathways affecting MAPK3 and CUL3 were found altered in the rat 16p11.2 models with additional changes in males compared to females. Altogether, the consequences of the 16p11.2 genetic region dosage on social behaviour are now found in three different species: humans, mice and rats. In addition, the rat models pointed to sexual dimorphism, with lower severity of phenotypes in rat females compared to male mutants. This phenomenon is also observed in humans. We are convinced that the two rat models will be key to further investigating social behaviour and understanding the brain mechanisms and specific brain regions that are key to controlling social behaviour.

animal behavior and cognition↗

Cryopreserved cGMP-compliant human pluripotent stem cells-derived immature hepatic progenitors rescue mice from acute liver failure

Liver transplantation remains the only curative treatment for end-stage liver diseases. Unfortunately, there is a drastic organ donor shortage. Hepatocyte transplantation emerged as a viable alternative to liver transplantation. In light of their unique expansion capabilities and their potency to be driven towards a chosen cell fate, pluripotent stem cells (PSC) are extensively studied as an unlimited cell source of hepatocytes for cell therapy. It has been previously shown that freshly prepared hepatocyte-like cells can cure mice from acute and chronic liver failures and restore liver functions. In this study, we generated human PSC-derived immature hepatic progenitors (GStemHep) using current good manufacturing practice (cGMP) compliant conditions from PSC amplification, hepatic differentiation to cell cryopreservation. These GStemHep cells present an immature hepatic phenotype (alpha-fetoprotein positive, albumin negative), secrete hepatocyte growth factor (HGF) and do not express MHC type I or II. The therapeutic potential of GStemHep was assessed in two clinically relevant models of acute liver failure. A single dose of thawed GStemHep rescue mice from sudden death caused by acetaminophen and thioacetamide-induced acute live failure, both in immunodeficient and immunocompetent animals in absence of immunosuppression. The mode of action was studied by several analytical methods including unbiased proteomic analyses. The swiftness of the therapeutic effect suggests a paracrine mechanism of action of GStemHep leading to a rapid reduction of inflammation and a rapid cytoprotective effect. Therapeutic biological effects were observed as soon as 3 hours post-cell transplantation with reduction in serum transaminases and in liver necrosis. Mode of action of GStemHep relies on alleviation of inhibition factors of liver regeneration, increase in proliferationpromoting factors and decrease liver inflammation. In conclusion, we generated cGMP-compliant human PSC-derived immature hepatic progenitors that were highly effective in treating acute liver failure. This is also the first report highlighting that human allogeneic cells could be used as cryopreserved cells and in absence of immunosuppression for a human PSC-based regenerative medicine of acute liver injuries.

cell biology↗