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1.
Brain ; 142(9): 2617-2630, 2019 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-31327001

RESUMEN

The underpinnings of mild to moderate neurodevelopmental delay remain elusive, often leading to late diagnosis and interventions. Here, we present data on exome and genome sequencing as well as array analysis of 13 individuals that point to pathogenic, heterozygous, mostly de novo variants in WDFY3 (significant de novo enrichment P = 0.003) as a monogenic cause of mild and non-specific neurodevelopmental delay. Nine variants were protein-truncating and four missense. Overlapping symptoms included neurodevelopmental delay, intellectual disability, macrocephaly, and psychiatric disorders (autism spectrum disorders/attention deficit hyperactivity disorder). One proband presented with an opposing phenotype of microcephaly and the only missense-variant located in the PH-domain of WDFY3. Findings of this case are supported by previously published data, demonstrating that pathogenic PH-domain variants can lead to microcephaly via canonical Wnt-pathway upregulation. In a separate study, we reported that the autophagy scaffolding protein WDFY3 is required for cerebral cortical size regulation in mice, by controlling proper division of neural progenitors. Here, we show that proliferating cortical neural progenitors of human embryonic brains highly express WDFY3, further supporting a role for this molecule in the regulation of prenatal neurogenesis. We present data on Wnt-pathway dysregulation in Wdfy3-haploinsufficient mice, which display macrocephaly and deficits in motor coordination and associative learning, recapitulating the human phenotype. Consequently, we propose that in humans WDFY3 loss-of-function variants lead to macrocephaly via downregulation of the Wnt pathway. In summary, we present WDFY3 as a novel gene linked to mild to moderate neurodevelopmental delay and intellectual disability and conclude that variants putatively causing haploinsufficiency lead to macrocephaly, while an opposing pathomechanism due to variants in the PH-domain of WDFY3 leads to microcephaly.


Asunto(s)
Proteínas Adaptadoras Transductoras de Señales/genética , Proteínas Relacionadas con la Autofagia/genética , Encéfalo/embriología , Encéfalo/patología , Variación Genética/genética , Trastornos del Neurodesarrollo/genética , Trastornos del Neurodesarrollo/patología , Proteínas Adaptadoras Transductoras de Señales/química , Adolescente , Animales , Proteínas Relacionadas con la Autofagia/química , Niño , Preescolar , Femenino , Humanos , Masculino , Ratones , Ratones Transgénicos , Tamaño de los Órganos , Estructura Secundaria de Proteína
2.
J Neurosci ; 35(9): 3756-63, 2015 Mar 04.
Artículo en Inglés | MEDLINE | ID: mdl-25740506

RESUMEN

Astrocytes are the most abundant cells in the CNS, and have many essential functions, including maintenance of blood-brain barrier integrity, and CNS water, ion, and glutamate homeostasis. Mammalian astrogliogenesis has generally been considered to be completed soon after birth, and to be reactivated in later life only under pathological circumstances. Here, by using genetic fate-mapping, we demonstrate that new corpus callosum astrocytes are continuously generated from nestin(+) subventricular zone (SVZ) neural progenitor cells (NPCs) in normal adult mice. These nestin fate-mapped corpus callosum astrocytes are uniformly postmitotic, express glutamate receptors, and form aquaporin-4(+) perivascular endfeet. The entry of new astrocytes from the SVZ into the corpus callosum appears to be balanced by astroglial apoptosis, because overall numbers of corpus callosum astrocytes remain constant during normal adulthood. Nestin fate-mapped astrocytes also flow anteriorly from the SVZ in association with the rostral migratory stream, but do not penetrate into the deeper layers of the olfactory bulb. Production of new astrocytes from nestin(+) NPCs is absent in the normal adult cortex, striatum, and spinal cord. Our study is the first to demonstrate ongoing SVZ astrogliogenesis in the normal adult mammalian forebrain.


Asunto(s)
Astrocitos/fisiología , Cuerpo Calloso/citología , Cuerpo Calloso/fisiología , Ventrículos Laterales/citología , Ventrículos Laterales/fisiología , Animales , Encéfalo/citología , Encéfalo/crecimiento & desarrollo , Movimiento Celular , Ratones , Ratones Endogámicos C57BL , Ratones Transgénicos , Nestina/fisiología , Células-Madre Neurales/fisiología , Neurogénesis/fisiología , Médula Espinal/citología , Médula Espinal/crecimiento & desarrollo , Proteínas de Transporte Vesicular de Glutamato/metabolismo
3.
Nat Commun ; 5: 4692, 2014 Sep 08.
Artículo en Inglés | MEDLINE | ID: mdl-25198012

RESUMEN

Autism spectrum disorders (ASDs) are complex and heterogeneous developmental disabilities affecting an ever-increasing number of children worldwide. The diverse manifestations and complex, largely genetic aetiology of ASDs pose a major challenge to the identification of unifying neuropathological features. Here we describe the neurodevelopmental defects in mice that carry deleterious alleles of the Wdfy3 gene, recently recognized as causative in ASDs. Loss of Wdfy3 leads to a regionally enlarged cerebral cortex resembling early brain overgrowth described in many children on the autism spectrum. In addition, affected mouse mutants display migration defects of cortical projection neurons, a recognized cause of epilepsy, which is significantly comorbid with autism. Our analysis of affected mouse mutants defines an important role for Wdfy3 in regulating neural progenitor divisions and neural migration in the developing brain. Furthermore, Wdfy3 is essential for cerebral expansion and functional organization while its loss-of-function results in pathological changes characteristic of ASDs.


Asunto(s)
Movimiento Celular/genética , Corteza Cerebral/crecimiento & desarrollo , Trastornos Generalizados del Desarrollo Infantil/genética , Neurogénesis/genética , Proteínas de Transporte Vesicular/genética , Proteínas Adaptadoras Transductoras de Señales , Animales , Proteínas Relacionadas con la Autofagia , Corteza Cerebral/metabolismo , Corteza Cerebral/patología , Ratones , Ratones Transgénicos
4.
PLoS One ; 8(11): e81851, 2013.
Artículo en Inglés | MEDLINE | ID: mdl-24324558

RESUMEN

Oxidative stress-mediated neuronal dysfunction is characteristic of several neurodegenerative disorders, including Parkinson's disease (PD). The enzyme tyrosine hydroxylase (TH) catalyzes the formation of L-DOPA, the rate-limiting step in the biosynthesis of dopamine. A lack of dopamine in the striatum is the most characteristic feature of PD, and the cause of the most dominant symptoms. Loss of function mutations in the PTEN-induced putative kinase (PINK1) gene cause autosomal recessive PD. This study explored the basic mechanisms underlying the involvement of pink1 in oxidative stress-mediated PD pathology using zebrafish as a tool. We generated a transgenic line, Tg(pink1:EGFP), and used it to study the effect of oxidative stress (exposure to H2O2) on pink1 expression. GFP expression was enhanced throughout the brain of zebrafish larvae subjected to oxidative stress. In addition to a widespread increase in pink1 mRNA expression, mild oxidative stress induced a clear decline in tyrosine hydroxylase 2 (th2), but not tyrosine hydroxylase 1 (th1) expression, in the brain of wild-type larvae. The drug L-Glutathione Reduced (LGR) has been associated with anti-oxidative and possible neuroprotective properties. Administration of LGR normalized the increased fluorescence intensity indicating pink1 transgene expression and endogenous pink1 mRNA expression in larvae subjected to oxidative stress by H2O2. In the pink1 morpholino oliogonucleotide-injected larvae, the reduction in the expression of th1 and th2 was partially rescued by LGR. The pink1 gene is a sensitive marker of oxidative stress in zebrafish, and LGR effectively normalizes the consequences of mild oxidative stress, suggesting that the neuroprotective effects of pink1 and LGR may be significant and useful in drug development.


Asunto(s)
Proteínas Serina-Treonina Quinasas/metabolismo , Animales , Peróxido de Hidrógeno/farmacología , Estrés Oxidativo/efectos de los fármacos , Estrés Oxidativo/genética , Proteínas Serina-Treonina Quinasas/genética , Tirosina 3-Monooxigenasa/genética , Tirosina 3-Monooxigenasa/metabolismo , Pez Cebra
6.
J Neurosci ; 32(35): 12152-64, 2012 Aug 29.
Artículo en Inglés | MEDLINE | ID: mdl-22933798

RESUMEN

Pigment epithelium-derived factor (PEDF) is a serine protease inhibitor (serpin) protein with well established neuroprotective and anti-angiogenic properties. Recent studies have also shown that PEDF enhances renewal of adult subventricular zone (SVZ) neural precursors. In neurosphere cultures prepared from the SVZ of adult mice, we found that addition of recombinant PEDF to the medium enhanced expressions of oligodendroglial lineage markers (NG2 and PDGFrα) and transcription factors (Olig1, Olig2, and Sox10). Similarly, continuous PEDF administration into the lateral ventricles of adult glial fibrillary acidic protein:green fluorescent protein (GFAP:GFP) transgenic mice increased the proportions of GFAP:GFP+ and GFAP:GFP- SVZ neural precursors coexpressing oligodendroglial lineage markers and transcription factors. Notably, PEDF infusion also resulted in an induction of doublecortin- and Sox10 double-positive cells in the adult SVZ. Immunoreactive PEDF receptor was detectable in multiple cell types in both adult SVZ and corpus callosum. Furthermore, PEDF intracerebral infusion enhanced survival and maturation of newly born oligodendroglial progenitor cells in the normal corpus callosum, and accelerated oligodendroglial regeneration in lysolecithin-induced corpus callosum demyelinative lesions. Western blot analysis showed a robust upregulation of endogenous PEDF in the corpus callosum upon lysolecithin-induced demyelination. Our results document previously unrecognized oligodendrotrophic effects of recombinant PEDF on the adult SVZ and corpus callosum, demonstrate induction of endogenous CNS PEDF production following demyelination, and make PEDF a strong candidate for pharmacological intervention in demyelinative diseases.


Asunto(s)
Cuerpo Calloso/fisiología , Proteínas del Ojo/administración & dosificación , Ventrículos Laterales/fisiología , Morfogénesis/fisiología , Factores de Crecimiento Nervioso/administración & dosificación , Oligodendroglía/fisiología , Serpinas/administración & dosificación , Animales , Células Cultivadas , Cuerpo Calloso/citología , Proteínas del Ojo/genética , Femenino , Infusiones Intraventriculares , Ventrículos Laterales/citología , Masculino , Ratones , Ratones Noqueados , Ratones Transgénicos , Morfogénesis/genética , Factores de Crecimiento Nervioso/deficiencia , Factores de Crecimiento Nervioso/genética , Serpinas/deficiencia , Serpinas/genética
7.
Neural Dev ; 7: 2, 2012 Jan 17.
Artículo en Inglés | MEDLINE | ID: mdl-22248045

RESUMEN

BACKGROUND: Tangential migration presents the primary mode of migration of cortical interneurons translocating into the cerebral cortex from subpallial domains. This migration takes place in multiple streams with the most superficial one located in the cortical marginal zone. While a number of forebrain-expressed molecules regulating this process have emerged, it remains unclear to what extent structures outside the brain, like the forebrain meninges, are involved. RESULTS: We studied a unique Foxc1 hypomorph mouse model (Foxc1hith/hith) with meningeal defects and impaired tangential migration of cortical interneurons. We identified a territorial correlation between meningeal defects and disruption of interneuron migration along the adjacent marginal zone in these animals, suggesting that impaired meningeal integrity might be the primary cause for the observed migration defects. Moreover, we postulate that the meningeal factor regulating tangential migration that is affected in homozygote mutants is the chemokine Cxcl12. In addition, by using chromatin immunoprecipitation analysis, we provide evidence that the Cxcl12 gene is a direct transcriptional target of Foxc1 in the meninges. Further, we observe migration defects of a lesser degree in Cajal-Retzius cells migrating within the cortical marginal zone, indicating a less important role for Cxcl12 in their migration. Finally, the developmental migration defects observed in Foxc1hith/hith mutants do not lead to obvious differences in interneuron distribution in the adult if compared to control animals. CONCLUSIONS: Our results suggest a critical role for the forebrain meninges to promote during development the tangential migration of cortical interneurons along the cortical marginal zone and Cxcl12 as the factor responsible for this property.


Asunto(s)
Movimiento Celular/genética , Corteza Cerebral/anomalías , Factores de Transcripción Forkhead/genética , Interneuronas/fisiología , Meningocele/patología , Malformaciones del Sistema Nervioso/patología , Animales , Corteza Cerebral/citología , Quimiocina CXCL12/deficiencia , Quimiocina CXCL12/genética , Modelos Animales de Enfermedad , Femenino , Factores de Transcripción Forkhead/deficiencia , Interneuronas/citología , Masculino , Meningocele/complicaciones , Meningocele/genética , Ratones , Ratones Endogámicos C57BL , Ratones Transgénicos , Malformaciones del Sistema Nervioso/genética , Cultivo Primario de Células
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