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Zwijsen, A.

Publications and source records attributed to Zwijsen, A..

2 recordsLinked to original sources

Evolutionary conserved canonical BMP activity controls cortical neurogenesis

The growth and evolutionary expansion of the cerebral cortex are defined by the spatial-temporal production of neurons, which itself depends on the decision of radial glial cells (RGCs) to self-amplify or to switch to neurogenic divisions. The mechanisms regulating these RGC fate decisions are still incompletely understood. Here we describe a novel and evolutionarily conserved role of the canonical BMP transcription factors SMAD1/5 in controlling neurogenesis and growth during corticogenesis. Reducing the expression of both SMAD1 and SMAD5 in neural progenitors at early mouse cortical development caused microcephaly and an increased production of early-born cortical neurons at the expense of late-born ones, which correlated with the premature differentiation and depletion of the pool of cortical progenitors. Gain- and loss-of-function experiments performed during early cortical neurogenesis in the chick revealed that SMAD1/5 activity supports self-amplifying RGC divisions and restrain the neurogenic ones. Furthermore, we demonstrate that SMAD1/5 stimulate RGC self-amplification through the positive post-transcriptional regulation of the Hippo signaling effector YAP. We anticipate this SMAD1/5-YAP signaling module to be fundamental in controlling growth and evolution of the amniote cerebral cortex.

developmental biology

RLIM enhances BMP signalling mediated fetal lung development in mice

RLIM, also called RNF12, is an X-linked E3 ubiquitin ligase. It is a pleotropic protein acting as a negative regulator of LIM-homeodomain transcription factors and of SMAD7, an antagonist of the BMP and TGF{beta} pathways. Mutations in RLIM are associated with variable congenital malformations in human. The molecular mechanism causing these malformations is still poorly understood.\n\nIn this study, we used a conventional knockout (KO) mouse model to phenotypically characterize male mutants and to investigate the effect of Rlim mutation on BMP pathway signalling. Only 50% of KO male neonates survive and are significantly smaller. We show that Rlim deletion alters lung branching and maturation resulting in severe respiratory distress and neonatal death. Except for a single case of cardiac interventricular septal defect, no other malformations that mimic the human condition were observed. Western blot analysis shows that RLIM deficiency is associated with an increase of its target SMAD7 levels and a loss of SMAD1/5/9 activation. Interestingly, SMAD5 levels were diminished, suggesting another regulatory loop between RLIM and the BMP pathway.\n\nIn conclusion, RLIM is important for lung development in mice and exerts this function in part through intracellular propagation of BMP signalling.\n\nAuthor summaryRLIM is an X-linked gene encoding an enzyme that regulates a number of proteins including SMAD7, an antagonist of BMP pathway. RLIM mutations are associated with intellectual disability and several congenital malformations in boys. In mice, RLIM is thought to be nonessential for embryos development. Using a mouse model in which Rlim is deleted, we show that 50% of males carrying the deletion display respiratory distress and die short after birth. No congenital malformations mimicking the human phenotype have been observed. Histological analysis of lung samples show that Rlim is critical for late lung development and maturation. The analysis of lung samples by western blot, a technique that quantifies proteins, is consistent with a dysregulation of BMP pathway. These finding confirm the importance of RLIM for murine embryos development and provide a link between human RLIM pathology and BMP pathway.

genetics