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1.
Development ; 148(17)2021 09 01.
Article in English | MEDLINE | ID: mdl-34463328

ABSTRACT

Pathogenic gene variants in humans that affect the sonic hedgehog (SHH) pathway lead to severe brain malformations with variable penetrance due to unknown modifier genes. To identify such modifiers, we established novel congenic mouse models. LRP2-deficient C57BL/6N mice suffer from heart outflow tract defects and holoprosencephaly caused by impaired SHH activity. These defects are fully rescued on a FVB/N background, indicating a strong influence of modifier genes. Applying comparative transcriptomics, we identified Pttg1 and Ulk4 as candidate modifiers upregulated in the rescue strain. Functional analyses showed that ULK4 and PTTG1, both microtubule-associated proteins, are positive regulators of SHH signaling, rendering the pathway more resilient to disturbances. In addition, we characterized ULK4 and PTTG1 as previously unidentified components of primary cilia in the neuroepithelium. The identification of genes that powerfully modulate the penetrance of genetic disturbances affecting the brain and heart is likely relevant to understanding the variability in human congenital disorders.


Subject(s)
Brain/embryology , Genes, Modifier/physiology , Hedgehog Proteins/metabolism , Signal Transduction , Animals , Brain/metabolism , Cilia/metabolism , Disease Models, Animal , Heart Defects, Congenital/genetics , Hedgehog Proteins/genetics , Holoprosencephaly/genetics , Low Density Lipoprotein Receptor-Related Protein-2/genetics , Low Density Lipoprotein Receptor-Related Protein-2/metabolism , Mice , Mutation , Neuroepithelial Cells/metabolism , Penetrance , Phenotype , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Securin/genetics , Securin/metabolism
2.
Nat Commun ; 7: 12963, 2016 10 07.
Article in English | MEDLINE | ID: mdl-27713425

ABSTRACT

Protein kinase A is a key mediator of cAMP signalling downstream of G-protein-coupled receptors, a signalling pathway conserved in all eukaryotes. cAMP binding to the regulatory subunits (PKAR) relieves their inhibition of the catalytic subunits (PKAC). Here we report that ARHGAP36 combines two distinct inhibitory mechanisms to antagonise PKA signalling. First, it blocks PKAC activity via a pseudosubstrate motif, akin to the mechanism employed by the protein kinase inhibitor proteins. Second, it targets PKAC for rapid ubiquitin-mediated lysosomal degradation, a pathway usually reserved for transmembrane receptors. ARHGAP36 thus dampens the sensitivity of cells to cAMP. We show that PKA inhibition by ARHGAP36 promotes derepression of the Hedgehog signalling pathway, thereby providing a simple rationale for the upregulation of ARHGAP36 in medulloblastoma. Our work reveals a new layer of PKA regulation that may play an important role in development and disease.


Subject(s)
Cyclic AMP-Dependent Protein Kinases/antagonists & inhibitors , Cyclic AMP-Dependent Protein Kinases/metabolism , Cyclic AMP/metabolism , GTPase-Activating Proteins/metabolism , Hedgehog Proteins/metabolism , Medulloblastoma/pathology , 3T3 Cells , Animals , Carcinogenesis/pathology , Catalytic Domain/physiology , Cell Line, Tumor , Cerebellar Neoplasms/pathology , Dogs , HEK293 Cells , Humans , Madin Darby Canine Kidney Cells , Mice , Protein Binding/physiology , Protein Kinase Inhibitors/metabolism , Proteolysis , RNA Interference , RNA, Small Interfering/genetics , Signal Transduction/physiology , Ubiquitination/physiology
3.
Glia ; 62(10): 1713-23, 2014 Oct.
Article in English | MEDLINE | ID: mdl-24963847

ABSTRACT

Growth differentiation factor 10 (Gdf10), also known as Bmp3b, is a member of the transforming growth factor (TGF)-ß superfamily. Gdf10 is expressed in Bergmann glial cells, which was investigated by single-cell transcriptional profiling (Koirala and Corfas, (2010) PLoS ONE 5: e9198). Here we provide a detailed characterization of Gdf10 expression from E14, the stage at which Gdf10 is expressed for the first time in the cerebellum, until P28. We detected Gdf10 expression in both germinal zones: in the ventricular zone (VZ) of the 4th ventricle as well as in the rhombic lip (RL). The VZ has been postulated to give rise to GABAergic neurons and glial cells, whereas the RL gives rise to glutamatergic neurons. Thus, it was very surprising to discover a gene that is expressed exclusively in glial cells and is not restricted to an expression in the VZ, but is also present in the RL. At postnatal stages Gdf10 was distributed equally in Bergmann glial cells of the cerebellum. Furthermore, we found Gdf10 to be regulated by Sonic hedgehog (Shh), which is secreted by Purkinje cells of the cerebellum. In the conditional Shh mutants, glial cells showed a reduced expression of Gdf10, whereas the expression of Nestin and Vimentin was unchanged. Thus, we show for the first time, that Gdf10, expressed in Bergmann glial cells, is affected by the loss of Shh as early as E18.5, suggesting a regulation of glial development by Shh.


Subject(s)
Brain/growth & development , Brain/metabolism , Growth Differentiation Factor 10/metabolism , Hedgehog Proteins/metabolism , Neuroglia/physiology , Animals , Hedgehog Proteins/genetics , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Immunohistochemistry , In Situ Hybridization , Mice, Inbred ICR , Mice, Transgenic , Nestin/metabolism , RNA, Messenger/metabolism , Real-Time Polymerase Chain Reaction , Vimentin/metabolism
4.
J Cell Sci ; 127(Pt 10): 2261-8, 2014 May 15.
Article in English | MEDLINE | ID: mdl-24639464

ABSTRACT

The low-density lipoprotein (LDL) receptor-related protein 2 (LRP2) is a multifunctional cell-surface receptor expressed in the embryonic neuroepithelium. Loss of LRP2 in the developing murine central nervous system (CNS) causes impaired closure of the rostral neural tube at embryonic stage (E) 9.0. Similar neural tube defects (NTDs) have previously been attributed to impaired folate metabolism in mice. We therefore asked whether LRP2 might be required for the delivery of folate to neuroepithelial cells during neurulation. Uptake assays in whole-embryo cultures showed that LRP2-deficient neuroepithelial cells are unable to mediate the uptake of folate bound to soluble folate receptor 1 (sFOLR1). Consequently, folate concentrations are significantly reduced in Lrp2(-/-) embryos compared with control littermates. Moreover, the folic-acid-dependent gene Alx3 is significantly downregulated in Lrp2 mutants. In conclusion, we show that LRP2 is essential for cellular folate uptake in the developing neural tube, a crucial step for proper neural tube closure.


Subject(s)
Folic Acid/metabolism , Low Density Lipoprotein Receptor-Related Protein-2/metabolism , Neural Tube/metabolism , Animals , Endocytosis , Folate Receptor 1/metabolism , Homeodomain Proteins/biosynthesis , Homeodomain Proteins/genetics , Low Density Lipoprotein Receptor-Related Protein-2/deficiency , Low Density Lipoprotein Receptor-Related Protein-2/genetics , Mice , Mice, Inbred C57BL , Mice, Transgenic , Neural Tube/embryology , Reduced Folate Carrier Protein/biosynthesis , Reduced Folate Carrier Protein/genetics
5.
Front Neuroanat ; 7: 18, 2013.
Article in English | MEDLINE | ID: mdl-23805080

ABSTRACT

Historically, the molecular and cellular mechanisms of cerebellar development were investigated through structural descriptions and studying spontaneous mutations in animal models and humans. Advances in experimental embryology, genetic engineering, and neuroimaging techniques render today the possibility to approach the analysis of molecular mechanisms underlying histogenesis and morphogenesis of the cerebellum by experimental designs. Several genes and molecules were identified to be involved in the cerebellar plate regionalization, specification, and differentiation of cerebellar neurons, as well as the establishment of cellular migratory routes and the subsequent neuronal connectivity. Indeed, pattern formation of the cerebellum requires the adequate orchestration of both key morphogenetic signals, arising from distinct brain regions, and local expression of specific transcription factors. Thus, the present review wants to revisit and discuss these morphogenetic and molecular mechanisms taking place during cerebellar development in order to understand causal processes regulating cerebellar cytoarchitecture, its highly topographically ordered circuitry and its role in brain function.

6.
Glia ; 59(12): 1946-57, 2011 Dec.
Article in English | MEDLINE | ID: mdl-21901755

ABSTRACT

While the origin of oligodendroglia in the prosencephalon and spinal cord has been extensively studied and accurately described, the origin of this cell type in the cerebellum is largely unknown. To investigate where cerebellar oligodendrocytes generate and which migratory pathways they follow to reach their final destination in the adult, in ovo transplants were performed using the quail/chick chimeric system. The chimeric embryos were developed up to HH43-49 (17-19 days of incubation) to map the location of donor cells and analyze their phenotype by immunohistochemistry. As a result, mesencephalic homotopic and homochronic transplants generated cellular migratory streams moving from the grafted epithelium into the host cerebellum, crossing the isthmus mainly through the velum medullare and invading the central white matter. From here, these mesencephalic cells invaded all the layers of the cerebellar cortex except the granular layer. The majority of the cells were detected in the central and folial white matter, as well as in superficial regions of the internal granular layer, surrounding the Purkinje cells. In the latter case, the donor cells presented a Bergmann glial morphology and were Vimentin positive, while in other areas they were PLP and Olig2-positive, indicating an oligodendroglial fate. The combinatory analysis of the different grafts allowed us to propose the fate map of chick cerebellar oligodendroglia at the neural tube stage. As a result, the majority of the cerebellar oligodendrocytes originate from the parabasal plate of the mesencephalon.


Subject(s)
Cell Differentiation/physiology , Cell Lineage/physiology , Cerebellar Cortex/cytology , Mesencephalon/cytology , Oligodendroglia/cytology , Stem Cells/cytology , Animals , Cerebellar Cortex/embryology , Chick Embryo , Chickens , Coturnix , Mesencephalon/embryology , Oligodendroglia/physiology , Radiation Chimera , Stem Cells/physiology
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