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2.
Am J Hum Genet ; 111(4): 778-790, 2024 Apr 04.
Article in English | MEDLINE | ID: mdl-38531365

ABSTRACT

Selenophosphate synthetase (SEPHS) plays an essential role in selenium metabolism. Two mammalian SEPHS paralogues, SEPHS1 and SEPHS2, share high sequence identity and structural homology with SEPHS. Here, we report nine individuals from eight families with developmental delay, growth and feeding problems, hypotonia, and dysmorphic features, all with heterozygous missense variants in SEPHS1. Eight of these individuals had a recurrent variant at amino acid position 371 of SEPHS1 (p.Arg371Trp, p.Arg371Gln, and p.Arg371Gly); seven of these variants were known to be de novo. Structural modeling and biochemical assays were used to understand the effect of these variants on SEPHS1 function. We found that a variant at residue Trp352 results in local structural changes of the C-terminal region of SEPHS1 that decrease the overall thermal stability of the enzyme. In contrast, variants of a solvent-exposed residue Arg371 do not impact enzyme stability and folding but could modulate direct protein-protein interactions of SEPSH1 with cellular factors in promoting cell proliferation and development. In neuronal SH-SY5Y cells, we assessed the impact of SEPHS1 variants on cell proliferation and ROS production and investigated the mRNA expression levels of genes encoding stress-related selenoproteins. Our findings provided evidence that the identified SEPHS1 variants enhance cell proliferation by modulating ROS homeostasis. Our study supports the hypothesis that SEPHS1 plays a critical role during human development and provides a basis for further investigation into the molecular mechanisms employed by SEPHS1. Furthermore, our data suggest that variants in SEPHS1 are associated with a neurodevelopmental disorder.


Subject(s)
Intellectual Disability , Musculoskeletal Abnormalities , Neurodevelopmental Disorders , Animals , Child , Humans , Developmental Disabilities/genetics , Exons , Intellectual Disability/genetics , Mammals/genetics , Muscle Hypotonia/genetics , Musculoskeletal Abnormalities/genetics , Neuroblastoma/genetics , Neurodevelopmental Disorders/genetics , Reactive Oxygen Species
3.
Genet Med ; 25(11): 100938, 2023 11.
Article in English | MEDLINE | ID: mdl-37454282

ABSTRACT

PURPOSE: Biallelic variants in TARS2, encoding the mitochondrial threonyl-tRNA-synthetase, have been reported in a small group of individuals displaying a neurodevelopmental phenotype but with limited neuroradiological data and insufficient evidence for causality of the variants. METHODS: Exome or genome sequencing was carried out in 15 families. Clinical and neuroradiological evaluation was performed for all affected individuals, including review of 10 previously reported individuals. The pathogenicity of TARS2 variants was evaluated using in vitro assays and a zebrafish model. RESULTS: We report 18 new individuals harboring biallelic TARS2 variants. Phenotypically, these individuals show developmental delay/intellectual disability, regression, cerebellar and cerebral atrophy, basal ganglia signal alterations, hypotonia, cerebellar signs, and increased blood lactate. In vitro studies showed that variants within the TARS2301-381 region had decreased binding to Rag GTPases, likely impairing mTORC1 activity. The zebrafish model recapitulated key features of the human phenotype and unraveled dysregulation of downstream targets of mTORC1 signaling. Functional testing of the variants confirmed the pathogenicity in a zebrafish model. CONCLUSION: We define the clinico-radiological spectrum of TARS2-related mitochondrial disease, unveil the likely involvement of the mTORC1 signaling pathway as a distinct molecular mechanism, and establish a TARS2 zebrafish model as an important tool to study variant pathogenicity.


Subject(s)
RNA, Transfer , Zebrafish , Animals , Humans , Mutation , Zebrafish/genetics , Mechanistic Target of Rapamycin Complex 1 , Ligases , Phenotype
4.
Brain ; 146(8): 3162-3171, 2023 08 01.
Article in English | MEDLINE | ID: mdl-37043503

ABSTRACT

ATP1A3 encodes the α3 subunit of the sodium-potassium ATPase, one of two isoforms responsible for powering electrochemical gradients in neurons. Heterozygous pathogenic ATP1A3 variants produce several distinct neurological syndromes, yet the molecular basis for phenotypic variability is unclear. We report a novel recurrent variant, ATP1A3(NM_152296.5):c.2324C>T; p.(Pro775Leu), in nine individuals associated with the primary clinical features of progressive or non-progressive spasticity and developmental delay/intellectual disability. No patients fulfil diagnostic criteria for ATP1A3-associated syndromes, including alternating hemiplegia of childhood, rapid-onset dystonia-parkinsonism or cerebellar ataxia-areflexia-pes cavus-optic atrophy-sensorineural hearing loss (CAPOS), and none were suspected of having an ATP1A3-related disorder. Uniquely among known ATP1A3 variants, P775L causes leakage of sodium ions and protons into the cell, associated with impaired sodium binding/occlusion kinetics favouring states with fewer bound ions. These phenotypic and electrophysiologic studies demonstrate that ATP1A3:c.2324C>T; p.(Pro775Leu) results in mild ATP1A3-related phenotypes resembling complex hereditary spastic paraplegia or idiopathic spastic cerebral palsy. Cation leak provides a molecular explanation for this genotype-phenotype correlation, adding another mechanism to further explain phenotypic variability and highlighting the importance of biophysical properties beyond ion transport rate in ion transport diseases.


Subject(s)
Cerebellar Ataxia , Intellectual Disability , Humans , Mutation/genetics , Syndrome , Intellectual Disability/genetics , Cerebellar Ataxia/genetics , Phenotype , Muscle Spasticity/genetics , Cations , Sodium-Potassium-Exchanging ATPase/genetics
6.
J Med Genet ; 60(5): 498-504, 2023 05.
Article in English | MEDLINE | ID: mdl-36241386

ABSTRACT

BACKGROUND: Cleidocranial dysplasia (CCD) is a rare skeletal dysplasia with significant clinical variability. Patients with CCD typically present with delayed closure of fontanels and cranial sutures, dental anomalies, clavicular hypoplasia or aplasia and short stature. Runt-related transcription factor 2 (RUNX2) is currently the only known disease-causing gene for CCD, but several studies have suggested locus heterogeneity. METHODS: The cohort consists of eight subjects from five unrelated families partially identified through GeneMatcher. Exome or genome sequencing was applied and in two subjects the effect of the variant was investigated at RNA level. RESULTS: In each subject a heterozygous pathogenic variant in CBFB was detected, whereas no genomic alteration involving RUNX2 was found. Three CBFB variants (one splice site alteration, one nonsense variant, one 2 bp duplication) were shown to result in a premature stop codon. A large intragenic deletion was found to delete exon 4, without affecting CBFB expression. The effect of a second splice site variant could not be determined but most likely results in a shortened or absent protein. Affected individuals showed similarities with RUNX2-related CCD, including dental and clavicular abnormalities. Normal stature and neurocognitive problems were however distinguishing features. CBFB encodes the core-binding factor ß subunit, which can interact with all RUNX proteins (RUNX1, RUNX2, RUNX3) to form heterodimeric transcription factors. This may explain the phenotypic differences between CBFB-related and RUNX2-related CCD. CONCLUSION: We confirm the previously suggested locus heterogeneity for CCD by identifying five pathogenic variants in CBFB in a cohort of eight individuals with clinical and radiographic features reminiscent of CCD.


Subject(s)
Cleidocranial Dysplasia , Core Binding Factor beta Subunit , Humans , Base Sequence , Cleidocranial Dysplasia/genetics , Cleidocranial Dysplasia/pathology , Codon, Nonsense , Core Binding Factor Alpha 1 Subunit/genetics , Core Binding Factor beta Subunit/genetics , Exons
7.
Mov Disord ; 37(7): 1547-1554, 2022 07.
Article in English | MEDLINE | ID: mdl-35722775

ABSTRACT

BACKGROUND: Most reported patients carrying GNAO1 mutations showed a severe phenotype characterized by early-onset epileptic encephalopathy and/or chorea. OBJECTIVE: The aim was to characterize the clinical and genetic features of patients with mild GNAO1-related phenotype with prominent movement disorders. METHODS: We included patients diagnosed with GNAO1-related movement disorders of delayed onset (>2 years). Patients experiencing either severe or profound intellectual disability or early-onset epileptic encephalopathy were excluded. RESULTS: Twenty-four patients and 1 asymptomatic subject were included. All patients showed dystonia as prominent movement disorder. Dystonia was focal in 1, segmental in 6, multifocal in 4, and generalized in 13. Six patients showed adolescence or adulthood-onset dystonia. Seven patients presented with parkinsonism and 3 with myoclonus. Dysarthria was observed in 19 patients. Mild and moderate ID were present in 10 and 2 patients, respectively. CONCLUSION: We highlighted a mild GNAO1-related phenotype, including adolescent-onset dystonia, broadening the clinical spectrum of this condition. © 2022 The Authors. Movement Disorders published by Wiley Periodicals LLC on behalf of International Parkinson and Movement Disorder Society.


Subject(s)
Dystonia , Dystonic Disorders , GTP-Binding Protein alpha Subunits, Gi-Go , Movement Disorders , Parkinsonian Disorders , Dystonia/genetics , Dystonic Disorders/genetics , GTP-Binding Protein alpha Subunits, Gi-Go/genetics , Humans , Movement Disorders/genetics , Parkinsonian Disorders/genetics , Phenotype
8.
Hum Mutat ; 43(9): 1299-1313, 2022 09.
Article in English | MEDLINE | ID: mdl-35607920

ABSTRACT

Alternative splicing (AS) is crucial for cell-type-specific gene transcription and plays a critical role in neuronal differentiation and synaptic plasticity. De novo frameshift variants in NOVA2, encoding a neuron-specific key splicing factor, have been recently associated with a new neurodevelopmental disorder (NDD) with hypotonia, neurological features, and brain abnormalities. We investigated eight unrelated individuals by exome sequencing (ES) and identified seven novel pathogenic NOVA2 variants, including two with a novel localization at the KH1 and KH3 domains. In addition to a severe NDD phenotype, novel clinical features included psychomotor regression, attention deficit-hyperactivity disorder (ADHD), dyspraxia, and urogenital and endocrinological manifestations. To test the effect of the variants on splicing regulation, we transfected HeLa cells with wildtype and mutant NOVA2 complementary DNA (cDNA). The novel variants NM_002516.4:c.754_756delCTGinsTT p.(Leu252Phefs*144) and c.1329dup p.(Lys444Glnfs*82) all negatively affected AS events. The distal p.(Lys444Glnfs*82) variant, causing a partial removal of the KH3 domain, had a milder functional effect leading to an intermediate phenotype. Our findings expand the molecular and phenotypic spectrum of NOVA2-related NDD, supporting the pathogenic role of AS disruption by truncating variants and suggesting that this is a heterogeneous condition with variable clinical course.


Subject(s)
Intellectual Disability , Neurodevelopmental Disorders , Alternative Splicing , HeLa Cells , Humans , Intellectual Disability/genetics , Intellectual Disability/pathology , Muscle Hypotonia/genetics , Nerve Tissue Proteins/genetics , Neuro-Oncological Ventral Antigen , Neurodevelopmental Disorders/genetics , Phenotype , RNA-Binding Proteins/genetics
9.
HGG Adv ; 3(3): 100102, 2022 Jul 14.
Article in English | MEDLINE | ID: mdl-35469323

ABSTRACT

Loss-of-function variants in PHD Finger Protein 8 (PHF8) cause Siderius X-linked intellectual disability (ID) syndrome, hereafter called PHF8-XLID. PHF8 is a histone demethylase that is important for epigenetic regulation of gene expression. PHF8-XLID is an under-characterized disorder with only five previous reports describing different PHF8 predicted loss-of-function variants in eight individuals. Features of PHF8-XLID include ID and craniofacial dysmorphology. In this report we present 16 additional individuals with PHF8-XLID from 11 different families of diverse ancestry. We also present five individuals from four different families who have ID and a variant of unknown significance in PHF8 with no other explanatory variant in another gene. All affected individuals exhibited developmental delay and all but two had borderline to severe ID. Of the two who did not have ID, one had dyscalculia and the other had mild learning difficulties. Craniofacial findings such as hypertelorism, microcephaly, elongated face, ptosis, and mild facial asymmetry were found in some affected individuals. Orofacial clefting was seen in three individuals from our cohort, suggesting that this feature is less common than previously reported. Autism spectrum disorder and attention deficit hyperactivity disorder, which were not previously emphasized in PHF8-XLID, were frequently observed in affected individuals. This series expands the clinical phenotype of this rare ID syndrome caused by loss of PHF8 function.

10.
Genet Med ; 23(10): 1912-1921, 2021 10.
Article in English | MEDLINE | ID: mdl-34113010

ABSTRACT

PURPOSE: In this study, we aimed to characterize the clinical phenotype of a SHANK1-related disorder and define the functional consequences of SHANK1 truncating variants. METHODS: Exome sequencing (ES) was performed for six individuals who presented with neurodevelopmental disorders. Individuals were ascertained with the use of GeneMatcher and Database of Chromosomal Imbalance and Phenotype in Humans Using Ensembl Resources (DECIPHER). We evaluated potential nonsense-mediated decay (NMD) of two variants by making knock-in cell lines of endogenous truncated SHANK1, and expressed the truncated SHANK1 complementary DNA (cDNA) in HEK293 cells and cultured hippocampal neurons to examine the proteins. RESULTS: ES detected de novo truncating variants in SHANK1 in six individuals. Evaluation of NMD resulted in stable transcripts, and the truncated SHANK1 completely lost binding with Homer1, a linker protein that binds to the C-terminus of SHANK1. These variants may disrupt protein-protein networks in dendritic spines. Dispersed localization of the truncated SHANK1 variants within the spine and dendritic shaft was also observed when expressed in neurons, indicating impaired synaptic localization of truncated SHANK1. CONCLUSION: This report expands the clinical spectrum of individuals with truncating SHANK1 variants and describes the impact these variants may have on the pathophysiology of neurodevelopmental disorders.


Subject(s)
Nerve Tissue Proteins , Neurodevelopmental Disorders , HEK293 Cells , Humans , Nerve Tissue Proteins/genetics , Neurodevelopmental Disorders/genetics , Neurons , Phenotype , Exome Sequencing
11.
Am J Med Genet A ; 185(10): 2863-2872, 2021 10.
Article in English | MEDLINE | ID: mdl-34050707

ABSTRACT

The DEAD/DEAH box RNA helicases are a superfamily of proteins involved in the processing and transportation of RNA within the cell. A growing literature supports this family of proteins as contributing to various types of human disorders from neurodevelopmental disorders to syndromes with multiple congenital anomalies. This article presents a cohort of nine unrelated individuals with de novo missense alterations in DDX23 (Dead-Box Helicase 23). The gene is ubiquitously expressed and functions in RNA splicing, maintenance of genome stability, and the sensing of double-stranded RNA. Our cohort of patients, gathered through GeneMatcher, exhibited features including tone abnormalities, global developmental delay, facial dysmorphism, autism spectrum disorder, and seizures. Additionally, there were a variety of other findings in the skeletal, renal, ocular, and cardiac systems. The missense alterations all occurred within a highly conserved RecA-like domain of the protein, and are located within or proximal to the DEAD box sequence. The individuals presented in this article provide evidence of a syndrome related to alterations in DDX23 characterized predominantly by atypical neurodevelopment.


Subject(s)
Autism Spectrum Disorder/genetics , DEAD-box RNA Helicases/genetics , Intellectual Disability/genetics , Neurodevelopmental Disorders/genetics , Autism Spectrum Disorder/complications , Autism Spectrum Disorder/epidemiology , Autism Spectrum Disorder/physiopathology , Child , Child, Preschool , Female , Genetic Predisposition to Disease , Genomic Instability/genetics , Humans , Infant , Infant, Newborn , Intellectual Disability/complications , Intellectual Disability/epidemiology , Intellectual Disability/physiopathology , Male , Mutation, Missense/genetics , Neurodevelopmental Disorders/complications , Neurodevelopmental Disorders/epidemiology , Neurodevelopmental Disorders/physiopathology , RNA Splicing/genetics , RNA, Double-Stranded/genetics , Seizures/complications , Seizures/genetics , Seizures/physiopathology
12.
Genet Med ; 23(8): 1465-1473, 2021 08.
Article in English | MEDLINE | ID: mdl-33833410

ABSTRACT

PURPOSE: We characterize the clinical and molecular phenotypes of six unrelated individuals with intellectual disability and autism spectrum disorder who carry heterozygous missense variants of the PRKAR1B gene, which encodes the R1ß subunit of the cyclic AMP-dependent protein kinase A (PKA). METHODS: Variants of PRKAR1B were identified by single- or trio-exome analysis. We contacted the families and physicians of the six individuals to collect phenotypic information, performed in vitro analyses of the identified PRKAR1B-variants, and investigated PRKAR1B expression during embryonic development. RESULTS: Recent studies of large patient cohorts with neurodevelopmental disorders found significant enrichment of de novo missense variants in PRKAR1B. In our cohort, de novo origin of the PRKAR1B variants could be confirmed in five of six individuals, and four carried the same heterozygous de novo variant c.1003C>T (p.Arg335Trp; NM_001164760). Global developmental delay, autism spectrum disorder, and apraxia/dyspraxia have been reported in all six, and reduced pain sensitivity was found in three individuals carrying the c.1003C>T variant. PRKAR1B expression in the brain was demonstrated during human embryonal development. Additionally, in vitro analyses revealed altered basal PKA activity in cells transfected with variant-harboring PRKAR1B expression constructs. CONCLUSION: Our study provides strong evidence for a PRKAR1B-related neurodevelopmental disorder.


Subject(s)
Apraxias , Autism Spectrum Disorder , Intellectual Disability , Neurodevelopmental Disorders , Autism Spectrum Disorder/genetics , Cyclic AMP-Dependent Protein Kinase RIbeta Subunit , Female , Humans , Intellectual Disability/genetics , Neurodevelopmental Disorders/genetics , Pain , Pregnancy
13.
Am J Hum Genet ; 108(3): 502-516, 2021 03 04.
Article in English | MEDLINE | ID: mdl-33596411

ABSTRACT

Deletion 1p36 (del1p36) syndrome is the most common human disorder resulting from a terminal autosomal deletion. This condition is molecularly and clinically heterogeneous. Deletions involving two non-overlapping regions, known as the distal (telomeric) and proximal (centromeric) critical regions, are sufficient to cause the majority of the recurrent clinical features, although with different facial features and dysmorphisms. SPEN encodes a transcriptional repressor commonly deleted in proximal del1p36 syndrome and is located centromeric to the proximal 1p36 critical region. Here, we used clinical data from 34 individuals with truncating variants in SPEN to define a neurodevelopmental disorder presenting with features that overlap considerably with those of proximal del1p36 syndrome. The clinical profile of this disease includes developmental delay/intellectual disability, autism spectrum disorder, anxiety, aggressive behavior, attention deficit disorder, hypotonia, brain and spine anomalies, congenital heart defects, high/narrow palate, facial dysmorphisms, and obesity/increased BMI, especially in females. SPEN also emerges as a relevant gene for del1p36 syndrome by co-expression analyses. Finally, we show that haploinsufficiency of SPEN is associated with a distinctive DNA methylation episignature of the X chromosome in affected females, providing further evidence of a specific contribution of the protein to the epigenetic control of this chromosome, and a paradigm of an X chromosome-specific episignature that classifies syndromic traits. We conclude that SPEN is required for multiple developmental processes and SPEN haploinsufficiency is a major contributor to a disorder associated with deletions centromeric to the previously established 1p36 critical regions.


Subject(s)
Chromosome Disorders/genetics , Chromosomes, Human, Pair 1/genetics , Chromosomes, Human, X/genetics , DNA-Binding Proteins/genetics , RNA-Binding Proteins/genetics , Adolescent , Autism Spectrum Disorder/genetics , Autism Spectrum Disorder/pathology , Child , Child, Preschool , Chromosome Deletion , Chromosome Disorders/physiopathology , DNA Methylation/genetics , Epigenesis, Genetic/genetics , Female , Haploinsufficiency/genetics , Humans , Intellectual Disability/genetics , Intellectual Disability/physiopathology , Male , Neurodevelopmental Disorders/genetics , Neurodevelopmental Disorders/physiopathology , Phenotype , Young Adult
14.
Hum Mutat ; 42(4): 445-459, 2021 04.
Article in English | MEDLINE | ID: mdl-33565190

ABSTRACT

Thousand and one amino-acid kinase 1 (TAOK1) is a MAP3K protein kinase, regulating different mitogen-activated protein kinase pathways, thereby modulating a multitude of processes in the cell. Given the recent finding of TAOK1 involvement in neurodevelopmental disorders (NDDs), we investigated the role of TAOK1 in neuronal function and collected a cohort of 23 individuals with mostly de novo variants in TAOK1 to further define the associated NDD. Here, we provide evidence for an important role for TAOK1 in neuronal function, showing that altered TAOK1 expression levels in the embryonic mouse brain affect neural migration in vivo, as well as neuronal maturation in vitro. The molecular spectrum of the identified TAOK1 variants comprises largely truncating and nonsense variants, but also missense variants, for which we provide evidence that they can have a loss of function or dominant-negative effect on TAOK1, expanding the potential underlying causative mechanisms resulting in NDD. Taken together, our data indicate that TAOK1 activity needs to be properly controlled for normal neuronal function and that TAOK1 dysregulation leads to a neurodevelopmental disorder mainly comprising similar facial features, developmental delay/intellectual disability and/or variable learning or behavioral problems, muscular hypotonia, infant feeding difficulties, and growth problems.


Subject(s)
Intellectual Disability , Neurodevelopmental Disorders , Amino Acids , Animals , Humans , Intellectual Disability/genetics , MAP Kinase Signaling System , Mice , Muscle Hypotonia , Neurodevelopmental Disorders/genetics
15.
Nat Commun ; 11(1): 5797, 2020 11 16.
Article in English | MEDLINE | ID: mdl-33199684

ABSTRACT

ARGONAUTE-2 and associated miRNAs form the RNA-induced silencing complex (RISC), which targets mRNAs for translational silencing and degradation as part of the RNA interference pathway. Despite the essential nature of this process for cellular function, there is little information on the role of RISC components in human development and organ function. We identify 13 heterozygous mutations in AGO2 in 21 patients affected by disturbances in neurological development. Each of the identified single amino acid mutations result in impaired shRNA-mediated silencing. We observe either impaired RISC formation or increased binding of AGO2 to mRNA targets as mutation specific functional consequences. The latter is supported by decreased phosphorylation of a C-terminal serine cluster involved in mRNA target release, increased formation of dendritic P-bodies in neurons and global transcriptome alterations in patient-derived primary fibroblasts. Our data emphasize the importance of gene expression regulation through the dynamic AGO2-RNA association for human neuronal development.


Subject(s)
Argonaute Proteins/genetics , Germ Cells/metabolism , Mutation/genetics , Nervous System/growth & development , Nervous System/metabolism , RNA Interference , Adolescent , Animals , Argonaute Proteins/chemistry , Child , Child, Preschool , Cluster Analysis , Dendrites/metabolism , Fibroblasts/metabolism , Gene Silencing , HEK293 Cells , Hippocampus/pathology , Humans , Mice , Molecular Dynamics Simulation , Neurons/metabolism , Phosphorylation , Protein Domains , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Small Interfering/metabolism , RNA-Induced Silencing Complex/metabolism , Rats , Transcriptome/genetics
16.
Nat Commun ; 11(1): 3698, 2020 07 23.
Article in English | MEDLINE | ID: mdl-32703943

ABSTRACT

Intellectual disability (ID) is a heterogeneous clinical entity and includes an excess of males who harbor variants on the X-chromosome (XLID). We report rare FAM50A missense variants in the original Armfield XLID syndrome family localized in Xq28 and four additional unrelated males with overlapping features. Our fam50a knockout (KO) zebrafish model exhibits abnormal neurogenesis and craniofacial patterning, and in vivo complementation assays indicate that the patient-derived variants are hypomorphic. RNA sequencing analysis from fam50a KO zebrafish show dysregulation of the transcriptome, with augmented spliceosome mRNAs and depletion of transcripts involved in neurodevelopment. Zebrafish RNA-seq datasets show a preponderance of 3' alternative splicing events in fam50a KO, suggesting a role in the spliceosome C complex. These data are supported with transcriptomic signatures from cell lines derived from affected individuals and FAM50A protein-protein interaction data. In sum, Armfield XLID syndrome is a spliceosomopathy associated with aberrant mRNA processing during development.


Subject(s)
DNA-Binding Proteins/genetics , Intellectual Disability/genetics , Mental Retardation, X-Linked/genetics , Mutation/genetics , RNA-Binding Proteins/genetics , Spliceosomes/metabolism , Zebrafish Proteins/genetics , Adult , Animals , Cell Nucleus/metabolism , Child , Child, Preschool , DNA-Binding Proteins/metabolism , Family , Female , Gene Expression Regulation, Developmental , Humans , Male , Mice , Mutation, Missense/genetics , NIH 3T3 Cells , Pedigree , Phenotype , Protein Transport , RNA Splicing/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Small Nuclear/genetics , RNA-Binding Proteins/metabolism , Syndrome , Zebrafish/genetics , Zebrafish Proteins/metabolism
17.
J Med Genet ; 57(10): 717-724, 2020 10.
Article in English | MEDLINE | ID: mdl-32152250

ABSTRACT

BACKGROUND: Rare variants in hundreds of genes have been implicated in developmental delay (DD), intellectual disability (ID) and neurobehavioural phenotypes. TNRC6B encodes a protein important for RNA silencing. Heterozygous truncating variants have been reported in three patients from large cohorts with autism, but no full phenotypic characterisation was described. METHODS: Clinical and molecular characterisation was performed on 17 patients with TNRC6B variants. Clinical data were obtained by retrospective chart review, parent interviews, direct patient interaction with providers and formal neuropsychological evaluation. RESULTS: Clinical findings included DD/ID (17/17) (speech delay in 94% (16/17), fine motor delay in 82% (14/17) and gross motor delay in 71% (12/17) of subjects), autism or autistic traits (13/17), attention deficit and hyperactivity disorder (ADHD) (11/17), other behavioural problems (7/17) and musculoskeletal findings (12/17). Other congenital malformations or clinical findings were occasionally documented. The majority of patients exhibited some dysmorphic features but no recognisable gestalt was identified. 17 heterozygous TNRC6B variants were identified in 12 male and five female unrelated subjects by exome sequencing (14), a targeted panel (2) and a chromosomal microarray (1). The variants were nonsense (7), frameshift (5), splice site (2), intragenic deletions (2) and missense (1). CONCLUSIONS: Variants in TNRC6B cause a novel genetic disorder characterised by recurrent neurocognitive and behavioural phenotypes featuring DD/ID, autism, ADHD and other behavioural abnormalities. Our data highly suggest that haploinsufficiency is the most likely pathogenic mechanism. TNRC6B should be added to the growing list of genes of the RNA-induced silencing complex associated with ID/DD, autism and ADHD.


Subject(s)
Attention Deficit Disorder with Hyperactivity/genetics , Autistic Disorder/genetics , Genetic Predisposition to Disease , RNA-Binding Proteins/genetics , Attention Deficit Disorder with Hyperactivity/complications , Attention Deficit Disorder with Hyperactivity/pathology , Autistic Disorder/complications , Autistic Disorder/pathology , Child , Child, Preschool , Developmental Disabilities/genetics , Developmental Disabilities/pathology , Female , Heterozygote , Humans , Intellectual Disability/complications , Intellectual Disability/genetics , Intellectual Disability/pathology , Language Development Disorders/genetics , Language Development Disorders/pathology , Male , Motor Skills Disorders/genetics , Motor Skills Disorders/pathology , Mutation/genetics , Phenotype , Exome Sequencing
18.
Am J Hum Genet ; 106(4): 438-452, 2020 04 02.
Article in English | MEDLINE | ID: mdl-32197073

ABSTRACT

The neuro-oncological ventral antigen 2 (NOVA2) protein is a major factor regulating neuron-specific alternative splicing (AS), previously associated with an acquired neurologic condition, the paraneoplastic opsoclonus-myoclonus ataxia (POMA). We report here six individuals with de novo frameshift variants in NOVA2 affected with a severe neurodevelopmental disorder characterized by intellectual disability (ID), motor and speech delay, autistic features, hypotonia, feeding difficulties, spasticity or ataxic gait, and abnormal brain MRI. The six variants lead to the same reading frame, adding a common proline rich C-terminal part instead of the last KH RNA binding domain. We detected 41 genes differentially spliced after NOVA2 downregulation in human neural cells. The NOVA2 variant protein shows decreased ability to bind target RNA sequences and to regulate target AS events. It also fails to complement the effect on neurite outgrowth induced by NOVA2 downregulation in vitro and to rescue alterations of retinotectal axonal pathfinding induced by loss of NOVA2 ortholog in zebrafish. Our results suggest a partial loss-of-function mechanism rather than a full heterozygous loss-of-function, although a specific contribution of the novel C-terminal extension cannot be excluded.


Subject(s)
Frameshift Mutation/genetics , Nerve Tissue Proteins/genetics , Neurodevelopmental Disorders/genetics , Neurons/physiology , RNA Splicing/genetics , RNA-Binding Proteins/genetics , Alternative Splicing/genetics , Animals , Axon Guidance/genetics , Base Sequence/genetics , Cells, Cultured , Child, Preschool , Down-Regulation/genetics , Female , Heterozygote , Humans , Intellectual Disability/genetics , Language Development Disorders/genetics , Male , Mice , Muscle Hypotonia/genetics , Neuro-Oncological Ventral Antigen , Zebrafish/genetics
19.
Am J Hum Genet ; 106(2): 234-245, 2020 02 06.
Article in English | MEDLINE | ID: mdl-31928709

ABSTRACT

Germline pathogenic variants in chromatin-modifying enzymes are a common cause of pediatric developmental disorders. These enzymes catalyze reactions that regulate epigenetic inheritance via histone post-translational modifications and DNA methylation. Cytosine methylation (5-methylcytosine [5mC]) of DNA is the quintessential epigenetic mark, yet no human Mendelian disorder of DNA demethylation has yet been delineated. Here, we describe in detail a Mendelian disorder caused by the disruption of DNA demethylation. TET3 is a methylcytosine dioxygenase that initiates DNA demethylation during early zygote formation, embryogenesis, and neuronal differentiation and is intolerant to haploinsufficiency in mice and humans. We identify and characterize 11 cases of human TET3 deficiency in eight families with the common phenotypic features of intellectual disability and/or global developmental delay; hypotonia; autistic traits; movement disorders; growth abnormalities; and facial dysmorphism. Mono-allelic frameshift and nonsense variants in TET3 occur throughout the coding region. Mono-allelic and bi-allelic missense variants localize to conserved residues; all but one such variant occur within the catalytic domain, and most display hypomorphic function in an assay of catalytic activity. TET3 deficiency and other Mendelian disorders of the epigenetic machinery show substantial phenotypic overlap, including features of intellectual disability and abnormal growth, underscoring shared disease mechanisms.


Subject(s)
DNA Demethylation , Developmental Disabilities/genetics , Developmental Disabilities/pathology , Dioxygenases/deficiency , Adult , Amino Acid Sequence , Autistic Disorder/genetics , Autistic Disorder/pathology , Child , Child, Preschool , Dioxygenases/chemistry , Dioxygenases/genetics , Embryonic Development , Female , Gene Expression Regulation, Developmental , Growth Disorders/genetics , Growth Disorders/pathology , Humans , Infant , Male , Middle Aged , Movement Disorders/genetics , Movement Disorders/pathology , Pedigree , Protein Conformation , Sequence Homology , Young Adult
20.
Am J Hum Genet ; 105(3): 631-639, 2019 09 05.
Article in English | MEDLINE | ID: mdl-31353024

ABSTRACT

Notch signaling is an established developmental pathway for brain morphogenesis. Given that Delta-like 1 (DLL1) is a ligand for the Notch receptor and that a few individuals with developmental delay, intellectual disability, and brain malformations have microdeletions encompassing DLL1, we hypothesized that insufficiency of DLL1 causes a human neurodevelopmental disorder. We performed exome sequencing in individuals with neurodevelopmental disorders. The cohort was identified using known Matchmaker Exchange nodes such as GeneMatcher. This method identified 15 individuals from 12 unrelated families with heterozygous pathogenic DLL1 variants (nonsense, missense, splice site, and one whole gene deletion). The most common features in our cohort were intellectual disability, autism spectrum disorder, seizures, variable brain malformations, muscular hypotonia, and scoliosis. We did not identify an obvious genotype-phenotype correlation. Analysis of one splice site variant showed an in-frame insertion of 12 bp. In conclusion, heterozygous DLL1 pathogenic variants cause a variable neurodevelopmental phenotype and multi-systemic features. The clinical and molecular data support haploinsufficiency as a mechanism for the pathogenesis of this DLL1-related disorder and affirm the importance of DLL1 in human brain development.


Subject(s)
Calcium-Binding Proteins/genetics , Haploinsufficiency , Membrane Proteins/genetics , Neurodevelopmental Disorders/genetics , Cohort Studies , Female , Humans , Ligands , Male , Pedigree , Exome Sequencing
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