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1.
Brain ; 142(4): 966-977, 2019 04 01.
Article in English | MEDLINE | ID: mdl-30796815

ABSTRACT

Speech disorders are highly prevalent in the preschool years, but frequently resolve. The neurobiological basis of the most persistent and severe form, apraxia of speech, remains elusive. Current neuroanatomical models of speech processing in adults propose two parallel streams. The dorsal stream is involved in sound to motor speech transformations, while the ventral stream supports sound/letter to meaning. Data-driven theories on the role of these streams during atypical speech and language development are lacking. Here we provide comprehensive behavioural and neuroimaging data on a large novel family where one parent and 11 children presented with features of childhood apraxia of speech (the same speech disorder associated with FOXP2 variants). The genetic cause of the disorder in this family remains to be identified. Importantly, in this family the speech disorder is not systematically associated with language or literacy impairment. Brain MRI scanning in seven children revealed large grey matter reductions over the left temporoparietal region, but not in the basal ganglia, relative to typically-developing matched peers. In addition, we detected white matter reductions in the arcuate fasciculus (dorsal language stream) bilaterally, but not in the inferior fronto-occipital fasciculus (ventral language stream) nor in primary motor pathways. Our findings identify disruption of the dorsal language stream as a novel neural phenotype of developmental speech disorders, distinct from that reported in speech disorders associated with FOXP2 variants. Overall, our data confirm the early role of this stream in auditory-to-articulation transformations. 10.1093/brain/awz018_video1 awz018media1 6018582401001.


Subject(s)
Speech Disorders/genetics , Speech Disorders/physiopathology , Speech Perception/genetics , Adolescent , Adult , Brain/physiology , Brain Mapping/methods , Child , Child, Preschool , Family , Female , Humans , Language , Magnetic Resonance Imaging , Male , Nerve Net , Neural Pathways , Neuroimaging , Pedigree , Speech/physiology , Speech Perception/physiology
2.
Neuron ; 104(4): 665-679.e8, 2019 11 20.
Article in English | MEDLINE | ID: mdl-31585809

ABSTRACT

In humans, disruption of nonsense-mediated decay (NMD) has been associated with neurodevelopmental disorders (NDDs) such as autism spectrum disorder and intellectual disability. However, the mechanism by which deficient NMD leads to neurodevelopmental dysfunction remains unknown, preventing development of targeted therapies. Here we identified novel protein-coding UPF2 (UP-Frameshift 2) variants in humans with NDD, including speech and language deficits. In parallel, we found that mice lacking Upf2 in the forebrain (Upf2 fb-KO mice) show impaired NMD, memory deficits, abnormal long-term potentiation (LTP), and social and communication deficits. Surprisingly, Upf2 fb-KO mice exhibit elevated expression of immune genes and brain inflammation. More importantly, treatment with two FDA-approved anti-inflammatory drugs reduced brain inflammation, restored LTP and long-term memory, and reversed social and communication deficits. Collectively, our findings indicate that impaired UPF2-dependent NMD leads to neurodevelopmental dysfunction and suggest that anti-inflammatory agents may prove effective for treatment of disorders with impaired NMD.


Subject(s)
Learning/physiology , Memory/physiology , Nonsense Mediated mRNA Decay/physiology , RNA-Binding Proteins/genetics , RNA-Binding Proteins/immunology , Animals , Child , Drosophila , Female , Humans , Language Development Disorders/genetics , Male , Mice , Mice, Knockout , RNA-Binding Proteins/metabolism
3.
Eur J Hum Genet ; 22(5): 675-80, 2014 May.
Article in English | MEDLINE | ID: mdl-24022301

ABSTRACT

Dyslexia is one of the most common childhood disorders with a prevalence of around 5-10% in school-age children. Although an important genetic component is known to have a role in the aetiology of dyslexia, we are far from understanding the molecular mechanisms leading to the disorder. Several candidate genes have been implicated in dyslexia, including DYX1C1, DCDC2, KIAA0319, and the MRPL19/C2ORF3 locus, each with reports of both positive and no replications. We generated a European cross-linguistic sample of school-age children - the NeuroDys cohort - that includes more than 900 individuals with dyslexia, sampled with homogenous inclusion criteria across eight European countries, and a comparable number of controls. Here, we describe association analysis of the dyslexia candidate genes/locus in the NeuroDys cohort. We performed both case-control and quantitative association analyses of single markers and haplotypes previously reported to be dyslexia-associated. Although we observed association signals in samples from single countries, we did not find any marker or haplotype that was significantly associated with either case-control status or quantitative measurements of word-reading or spelling in the meta-analysis of all eight countries combined. Like in other neurocognitive disorders, our findings underline the need for larger sample sizes to validate possibly weak genetic effects.


Subject(s)
Dyslexia/genetics , Genetic Association Studies , Genome-Wide Association Study , Case-Control Studies , Genetic Loci , Genotype , Haplotypes , Humans , Meta-Analysis as Topic , Phenotype , Polymorphism, Single Nucleotide , Quantitative Trait, Heritable
4.
Biol Psychiatry ; 70(3): 237-45, 2011 Aug 01.
Article in English | MEDLINE | ID: mdl-21457949

ABSTRACT

BACKGROUND: Several susceptibility genes have been proposed for dyslexia (reading disability; RD) and specific language impairment (SLI). RD and SLI show comorbidity, but it is unclear whether a common genetic component is shared. METHODS: We have investigated whether candidate genes for RD and SLI affect specific cognitive traits or have broad effect on cognition. We have analyzed common risk variants within RD (MRPL19/C2ORF3, KIAA0319, and DCDC2) and language impairment (CMIP and ATP2C2) candidate loci in the Avon Longitudinal Study of Parents and Children cohort (n = 3725), representing children born in southwest England in the early 1990s. RESULTS: We detected associations between reading skills and KIAA0319, DCDC2, and CMIP. We show that DCDC2 is specifically associated with RD, whereas variants in CMIP and KIAA0319 are associated with reading skills across the ability range. The strongest associations were restricted to single-word reading and spelling measures, suggesting that these genes do not extend their effect to other reading and language-related skills. Inclusion of individuals with comorbidity tends to strengthen these associations. Our data do not support MRPL19/C2ORF3 as a locus involved in reading abilities nor CMIP/ATP2C2 as genes regulating language skills. CONCLUSIONS: We provide further support for the role of KIAA0319 and DCDC2 in contributing to reading abilities and novel evidence that the language-disorder candidate gene CMIP is also implicated in reading processes. Additionally, we present novel data to evaluate the prevalence and comorbidity of RD and SLI, and we recommend not excluding individuals with comorbid RD and SLI when designing genetic association studies for RD.


Subject(s)
Carrier Proteins/genetics , Dyslexia/genetics , Language Disorders/genetics , Microtubule-Associated Proteins/genetics , Nerve Tissue Proteins/genetics , Reading , Adaptor Proteins, Signal Transducing , Adolescent , Case-Control Studies , Cognition/physiology , Comorbidity , Dyslexia/epidemiology , England/epidemiology , Female , Genetic Association Studies , Genotype , Humans , Language , Language Disorders/epidemiology , Male , Prevalence
5.
Am J Hum Genet ; 75(6): 1046-58, 2004 Dec.
Article in English | MEDLINE | ID: mdl-15514892

ABSTRACT

Several quantitative trait loci (QTLs) that influence developmental dyslexia (reading disability [RD]) have been mapped to chromosome regions by linkage analysis. The most consistently replicated area of linkage is on chromosome 6p23-21.3. We used association analysis in 223 siblings from the United Kingdom to identify an underlying QTL on 6p22.2. Our association study implicates a 77-kb region spanning the gene TTRAP and the first four exons of the neighboring uncharacterized gene KIAA0319. The region of association is also directly upstream of a third gene, THEM2. We found evidence of these associations in a second sample of siblings from the United Kingdom, as well as in an independent sample of twin-based sibships from Colorado. One main RD risk haplotype that has a frequency of approximately 12% was found in both the U.K. and U.S. samples. The haplotype is not distinguished by any protein-coding polymorphisms, and, therefore, the functional variation may relate to gene expression. The QTL influences a broad range of reading-related cognitive abilities but has no significant impact on general cognitive performance in these samples. In addition, the QTL effect may be largely limited to the severe range of reading disability.


Subject(s)
Chromosome Mapping , Chromosomes, Human, Pair 6/genetics , Dyslexia/genetics , Phenotype , Quantitative Trait Loci/genetics , Colorado , Genotype , Haplotypes/genetics , Humans , Linkage Disequilibrium , Polymorphism, Genetic , Siblings , Tumor Necrosis Factor Receptor-Associated Peptides and Proteins/genetics , United Kingdom
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