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result(s) for
"Rappold, Gudrun"
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Inhibition of HDAC6 activity protects dopaminergic neurons from alpha-synuclein toxicity
2020
The neuropathological hallmarks of Parkinson’s disease include preferential vulnerability of dopaminergic neurons of the substantia nigra pars compacta, and accumulation of intraneuronal protein inclusions known as Lewy bodies. These inclusions contain, among other proteins, aggregated alpha-synuclein and histone deacetylase 6 (HDAC6). In our study we found that selective inhibition of HDAC6 activity by Tubastatin A has protective effects in a rat model of Parkinson’s disease. We provide evidence that this protection may be due to the activation of chaperone-mediated autophagy through the up-regulation of key members of this pathway. Moreover, Tubastatin A significantly inhibited the expression of a toxic form of alpha-synuclein that is phosphorylated at serine position 129. Tubastatin A treatment also permitted to partially modulate neuroinflammation. Taken together, our study highlights the neuroprotective effects of Tubastatin A in a rat model of Parkinson’s disease and provides mechanistic insight in Tubastatin A-mediated protection against alpha-synuclein toxicity and substantia nigra degeneration. These findings are of potential therapeutic value in Parkinson’s disease and other synucleinopathies.
Journal Article
Foxp1 Regulates Cortical Radial Migration and Neuronal Morphogenesis in Developing Cerebral Cortex
2015
FOXP1 is a member of FOXP subfamily transcription factors. Mutations in FOXP1 gene have been found in various development-related cognitive disorders. However, little is known about the etiology of these symptoms, and specifically the function of FOXP1 in neuronal development. Here, we report that suppression of Foxp1 expression in mouse cerebral cortex led to a neuronal migration defect, which was rescued by overexpression of Foxp1. Mice with Foxp1 knockdown exhibited ectopic neurons in deep layers of the cortex postnatally. The neuronal differentiation of Foxp1-downregulated cells was normal. However, morphological analysis showed that the neurons with Foxp1 deficiency had an inhibited axonal growth in vitro and a weakened transition from multipolar to bipolar in vivo. Moreover, we found that the expression of Foxp1 modulated the dendritic maturation of neurons at a late postnatal date. Our results demonstrate critical roles of Foxp1 in the radial migration and morphogenesis of cortical neurons during development. This study may shed light on the complex relationship between neuronal development and the related cognitive disorders.
Journal Article
The distinct and overlapping phenotypic spectra of FOXP1 and FOXP2 in cognitive disorders
2012
Rare disruptions of
FOXP2
have been strongly implicated in deficits in language development. Research over the past decade has suggested a role in the formation of underlying neural circuits required for speech. Until recently no evidence existed to suggest that the closely related
FOXP1
gene played a role in neurodevelopmental processes. However, in the last few years, novel rare disruptions in
FOXP1
have been reported in multiple cases of cognitive dysfunction, including intellectual disability and autism spectrum disorder, together with language impairment. As FOXP1 and FOXP2 form heterodimers for transcriptional regulation, one may assume that they co-operate in common neurodevelopmental pathways through the co-regulation of common targets. Here we compare the phenotypic consequences of
FOXP1
and
FOXP2
impairment, drawing on well-known studies from the past as well as recent exciting findings and consider what these tell us regarding the functions of these two genes in neural development.
Journal Article
Mutations in the SHANK2 synaptic scaffolding gene in autism spectrum disorder and mental retardation
2010
Gudrun Rappold and colleagues report the identification of
de novo
deletions in
SHANK2
in two unrelated individuals. One individual was diagnosed with autism spectrum disorder and the other with mental retardation. The authors also identified a
de novo
nonsense mutation in an individual diagnosed with autism spectrum disorder.
Using microarrays, we identified
de novo
copy number variations in the
SHANK2
synaptic scaffolding gene in two unrelated individuals with autism-spectrum disorder (ASD) and mental retardation. DNA sequencing of
SHANK2
in 396 individuals with ASD, 184 individuals with mental retardation and 659 unaffected individuals (controls) revealed additional variants that were specific to ASD and mental retardation cases, including a
de novo
nonsense mutation and seven rare inherited changes. Our findings further link common genes between ASD and intellectual disability.
Journal Article
Functional missense and splicing variants in the retinoic acid catabolizing enzyme CYP26C1 in idiopathic short stature
2018
Height is a complex quantitative trait with a high heritability. Short stature is diagnosed when height is significantly below the average of the general population for that person’s age and sex. We have recently found that the retinoic acid degrading enzyme CYP26C1 modifies SHOX deficiency phenotypes toward more severe clinical manifestations. Here, we asked whether damaging variants in CYP26C1 alone could lead to short stature. We performed exome and Sanger sequencing to analyze 856 individuals with short stature where SHOX deficiency was previously excluded. Three different damaging missense variants and one splicing variant were identified in six independent individuals; the functional significance of the identified variants was tested in vitro or in vivo using zebrafish as a model. The genetic and functional data reported here indicate that CYP26C1 represents a novel gene underlying growth disorders and that damaging variants in the absence of SHOX variants can lead to short stature.
Journal Article
A direct regulatory link between microRNA-137 and SHANK2: implications for neuropsychiatric disorders
by
de Sena Cortabitarte, Ana
,
Cristian, Flavia-Bianca
,
Fischer, Christine
in
3' Untranslated Regions
,
Animals
,
Autism
2018
Background
Mutations in the
SHANK
genes, which encode postsynaptic scaffolding proteins, have been linked to a spectrum of neurodevelopmental disorders. The
SHANK
genes and the schizophrenia-associated microRNA-137 show convergence on several levels, as they are both expressed at the synapse, influence neuronal development, and have a strong link to neurodevelopmental and neuropsychiatric disorders like intellectual disability, autism, and schizophrenia. This compiled evidence raised the question if the SHANKs might be targets of miR-137.
Methods
In silico analysis revealed a putative binding site for microRNA-137 (miR-137) in the
SHANK2
3′UTR, while this was not the case for
SHANK1
and
SHANK3
. Luciferase reporter assays were performed by overexpressing wild type and mutated SHANK2-3′UTR and miR-137 in human neuroblastoma cells and mouse primary hippocampal neurons. miR-137 was also overexpressed or inhibited in hippocampal neurons, and
Shank2
expression was analyzed by quantitative real-time PCR and Western blot. Additionally, expression levels of experimentally validated miR-137 target genes were analyzed in the dorsolateral prefrontal cortex (DLPFC) of schizophrenia and control individuals using the RNA-Seq data from the CommonMind Consortium.
Results
miR-137 directly targets the 3′UTR of
SHANK2
in a site-specific manner. Overexpression of miR-137 in mouse primary hippocampal neurons significantly lowered endogenous Shank2 protein levels without detectable influence on mRNA levels. Conversely, miR-137 inhibition increased Shank2 protein expression, indicating that miR-137 regulates
SHANK2
expression by repressing protein translation rather than inducing mRNA degradation.
To find out if the miR-137 signaling network is altered in schizophrenia, we compared miR-137 precursor and miR-137 target gene expression in the DLPFC of schizophrenia and control individuals using the CommonMind Consortium RNA sequencing data. Differential expression of 23% (16/69) of known miR-137 target genes was detected in the DLPFC of schizophrenia individuals compared with controls. We propose that in further targets (e.g.,
SHANK2
, as described in this paper) which are not regulated on RNA level, effects may only be detectable on protein level.
Conclusion
Our study provides evidence that a direct regulatory link exists between miR-137 and
SHANK2
and supports the finding that miR-137 signaling might be altered in schizophrenia.
Journal Article
Height matters—from monogenic disorders to normal variation
2013
In this Review, the authors discuss the genetics of height, including examples of rare sequence variants that can result in large effects on height and common variants with small effects on height. The key challenges in discovering further genes associated with height and the transition from gene discovery to mechanistic insights are also outlined.
Height is a classic polygenic quantitative trait with a high level of heritability. As it is a simple and stable parameter to measure, height is a model for both common, complex disorders and monogenic, Mendelian disease. In this Review, we examine height from the perspective of monogenic and complex genetics and discuss the lessons learned so far. We explore several examples of rare sequence variants with large effects on height and compare these variants to the common variants identified in genome-wide association studies that have small effects on height. We discuss how copy number changes or genetic interactions might contribute to the unidentified aspects of the heritability of height. We also ask whether information derived from genome-wide association studies on specific loci in the vicinity of genes can be used for further research in clinical paediatric endocrinology. Furthermore, we address key challenges that remain for gene discovery and for the transition of moving from genomic localization to mechanistic insights, with an emphasis on using next-generation sequencing to identify causative variants of people at the extremes of height distribution.
Key Points
Height is a classic polygenic trait and a very good model for both common, complex disorders and monogenic, Mendelian disease
Extremes in height are often caused by monogenic mutations in one of the genes critical for control of growth
The role of four prominent genes implicated in growth control illustrates the diversity of the different pathways involved; progress on therapeutic options depends on the underlying gene defect and mechanism
Variations within the normal range of height are associated with common variants that have been uncovered by genome-wide association studies (GWAS); a discrepancy still exists between heritability and the identified loci
Comparison of common variants detected by GWAS and genes with a role in monogenic short stature shows some overlap; GWAS might pinpoint further genes that cause monogenic short stature
Next-generation sequencing will probably replace GWAS and thus yield insight into the genetic pathways involved in monogenic and complex disorders
Journal Article
SHANK2 mutations impair apoptosis, proliferation and neurite outgrowth during early neuronal differentiation in SH-SY5Y cells
by
Eckstein, Volker
,
von Hahn, Manja
,
Cristian, Flavia-Bianca
in
631/378
,
631/378/1689
,
631/378/2583
2021
SHANK2
mutations have been identified in individuals with neurodevelopmental disorders, including intellectual disability and autism spectrum disorders (ASD). Using CRISPR/Cas9 genome editing, we obtained SH-SY5Y cell lines with frameshift mutations on one or both
SHANK2
alleles. We investigated the effects of the different
SHANK2
mutations on cell morphology, cell proliferation and differentiation potential during early neuronal differentiation. All mutant cell lines showed impaired neuronal differentiation marker expression. Cells with bi-allelic
SHANK2
mutations revealed diminished apoptosis and increased proliferation, as well as decreased neurite outgrowth during early neuronal differentiation. Bi-allelic
SHANK2
mutations resulted in an increase in p-AKT levels, suggesting that
SHANK2
mutations impair downstream signaling of tyrosine kinase receptors. Additionally, cells with bi-allelic
SHANK2
mutations had lower amyloid precursor protein (APP) expression compared to controls, suggesting a molecular link between
SHANK2
and APP. Together, we can show that frameshift mutations on one or both
SHANK2
alleles lead to an alteration of neuronal differentiation in SH-SY5Y cells, characterized by changes in cell growth and pre- and postsynaptic protein expression. We also provide first evidence that downstream signaling of tyrosine kinase receptors and amyloid precursor protein expression are affected.
Journal Article
Biallelic variants in CSMD1 are implicated in a neurodevelopmental disorder with intellectual disability and variable cortical malformations
by
van Jaarsveld, Richard H.
,
Srivastava, Kinshuk Raj
,
Wheeler, Marsha M.
in
13/1
,
13/100
,
13/106
2024
CSMD1
(
Cub and Sushi Multiple Domains 1
) is a well-recognized regulator of the complement cascade, an important component of the innate immune response.
CSMD1
is highly expressed in the central nervous system (CNS) where emergent functions of the complement pathway modulate neural development and synaptic activity. While a genetic risk factor for neuropsychiatric disorders, the role of
CSMD1
in neurodevelopmental disorders is unclear. Through international variant sharing, we identified inherited biallelic
CSMD1
variants in eight individuals from six families of diverse ancestry who present with global developmental delay, intellectual disability, microcephaly, and polymicrogyria. We modeled
CSMD1
loss-of-function (LOF) pathogenesis in early-stage forebrain organoids differentiated from
CSMD1
knockout human embryonic stem cells (hESCs). We show that CSMD1 is necessary for neuroepithelial cytoarchitecture and synchronous differentiation. In summary, we identified a critical role for CSMD1 in brain development and biallelic
CSMD1
variants as the molecular basis of a previously undefined neurodevelopmental disorder.
Journal Article