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1.
Clin Genet ; 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38988293

ABSTRACT

ANK3 encodes ankyrin-G, a protein involved in neuronal development and signaling. Alternative splicing gives rise to three ankyrin-G isoforms comprising different domains with distinct expression patterns. Mono- or biallelic ANK3 variants are associated with non-specific syndromic intellectual disability in 14 individuals (seven with monoallelic and seven with biallelic variants). In this study, we describe the clinical features of 13 additional individuals and review the data on a total of 27 individuals (16 individuals with monoallelic and 11 with biallelic ANK3 variants) and demonstrate that the phenotype for biallelic variants is more severe. The phenotypic features include language delay (92%), autism spectrum disorder (76%), intellectual disability (78%), hypotonia (65%), motor delay (68%), attention deficit disorder (ADD) or attention deficit hyperactivity disorder (ADHD) (57%), sleep disturbances (50%), aggressivity/self-injury (37.5%), and epilepsy (35%). A notable phenotypic difference was presence of ataxia in three individuals with biallelic variants, but in none of the individuals with monoallelic variants. While the majority of the monoallelic variants are predicted to result in a truncated protein, biallelic variants are almost exclusively missense. Moreover, mono- and biallelic variants appear to be localized differently across the three different ankyrin-G isoforms, suggesting isoform-specific pathological mechanisms.

2.
Hum Genet ; 142(9): 1417-1427, 2023 Sep.
Article in English | MEDLINE | ID: mdl-37558815

ABSTRACT

Mutations in TDP2, encoding tyrosyl-DNA phosphodiesterase 2, have been associated with a syndromal form of autosomal recessive spinocerebellar ataxia, type 23 (SCAR23). This is a very rare and progressive neurodegenerative disorder described in only nine patients to date, and caused by splice site or nonsense mutations that result in greatly reduced or absent TDP2 protein. TDP2 is required for the rapid repair of DNA double-strand breaks induced by abortive DNA topoisomerase II (TOP2) activity, important for genetic stability in post-mitotic cells such as neurons. Here, we describe a sibship that is homozygous for the first TDP2 missense mutation (p.Glu152Lys) and which presents with clinical features overlapping both SCAR23 and Fanconi anemia (FA). We show that in contrast to previously reported SCAR23 patients, fibroblasts derived from the current patient retain significant levels of TDP2 protein. However, this protein is catalytically inactive, resulting in reduced rates of repair of TOP2-induced DNA double-strand breaks and cellular hypersensitivity to the TOP2 poison, etoposide. The TDP2-mutated patient-derived fibroblasts do not display increased chromosome breakage following treatment with DNA crosslinking agents, but both TDP2-mutated and FA cells exhibit increased chromosome breakage in response to etoposide. This suggests that the FA pathway is required in response to TOP2-induced DNA lesions, providing a possible explanation for the clinical overlap between FA and the current TDP2-mutated patients. When reviewing the relatively small number of patients with SCAR23 that have been reported, it is clear that the phenotype of such patients can extend beyond neurological features, indicating that the TDP2 protein influences not only neural homeostasis but also other tissues as well.


Subject(s)
DNA-Binding Proteins , Fanconi Anemia , Humans , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Etoposide/pharmacology , Fanconi Anemia/genetics , Chromosome Breakage , Siblings , Mutation, Missense , Phosphoric Diester Hydrolases/genetics , Phosphoric Diester Hydrolases/metabolism , DNA Topoisomerases, Type II/genetics , DNA Topoisomerases, Type II/metabolism , DNA/genetics
3.
Hum Genet ; 142(7): 949-964, 2023 Jul.
Article in English | MEDLINE | ID: mdl-37198333

ABSTRACT

The minichromosome maintenance (MCM) complex acts as a DNA helicase during DNA replication, and thereby regulates cell cycle progression and proliferation. In addition, MCM-complex components localize to centrosomes and play an independent role in ciliogenesis. Pathogenic variants in genes coding for MCM components and other DNA replication factors have been linked to growth and developmental disorders as Meier-Gorlin syndrome and Seckel syndrome. Trio exome/genome sequencing identified the same de novo MCM6 missense variant p.(Cys158Tyr) in two unrelated individuals that presented with overlapping phenotypes consisting of intra-uterine growth retardation, short stature, congenital microcephaly, endocrine features, developmental delay and urogenital anomalies. The identified variant affects a zinc binding cysteine in the MCM6 zinc finger signature. This domain, and specifically cysteine residues, are essential for MCM-complex dimerization and the induction of helicase activity, suggesting a deleterious effect of this variant on DNA replication. Fibroblasts derived from the two affected individuals showed defects both in ciliogenesis and cell proliferation. We additionally traced three unrelated individuals with de novo MCM6 variants in the oligonucleotide binding (OB)-fold domain, presenting with variable (neuro)developmental features including autism spectrum disorder, developmental delay, and epilepsy. Taken together, our findings implicate de novo MCM6 variants in neurodevelopmental disorders. The clinical features and functional defects related to the zinc binding residue resemble those observed in syndromes related to other MCM components and DNA replication factors, while de novo OB-fold domain missense variants may be associated with more variable neurodevelopmental phenotypes. These data encourage consideration of MCM6 variants in the diagnostic arsenal of NDD.


Subject(s)
Autism Spectrum Disorder , Intellectual Disability , Microcephaly , Neurodevelopmental Disorders , Humans , Cysteine/genetics , Neurodevelopmental Disorders/genetics , Cell Cycle Proteins/genetics , DNA Helicases/genetics , Microcephaly/genetics , Phenotype , Zinc , Intellectual Disability/genetics , Minichromosome Maintenance Complex Component 6/genetics
4.
Am J Hum Genet ; 107(4): 753-762, 2020 10 01.
Article in English | MEDLINE | ID: mdl-32910914

ABSTRACT

Lamin B1 plays an important role in the nuclear envelope stability, the regulation of gene expression, and neural development. Duplication of LMNB1, or missense mutations increasing LMNB1 expression, are associated with autosomal-dominant leukodystrophy. On the basis of its role in neurogenesis, it has been postulated that LMNB1 variants could cause microcephaly. Here, we confirm this hypothesis with the identification of de novo mutations in LMNB1 in seven individuals with pronounced primary microcephaly (ranging from -3.6 to -12 SD) associated with relative short stature and variable degree of intellectual disability and neurological features as the core symptoms. Simplified gyral pattern of the cortex and abnormal corpus callosum were noted on MRI of three individuals, and these individuals also presented with a more severe phenotype. Functional analysis of the three missense mutations showed impaired formation of the LMNB1 nuclear lamina. The two variants located within the head group of LMNB1 result in a decrease in the nuclear localization of the protein and an increase in misshapen nuclei. We further demonstrate that another mutation, located in the coil region, leads to increased frequency of condensed nuclei and lower steady-state levels of lamin B1 in proband lymphoblasts. Our findings collectively indicate that de novo mutations in LMNB1 result in a dominant and damaging effect on nuclear envelope formation that correlates with microcephaly in humans. This adds LMNB1 to the growing list of genes implicated in severe autosomal-dominant microcephaly and broadens the phenotypic spectrum of the laminopathies.


Subject(s)
Dwarfism/genetics , Intellectual Disability/genetics , Lamin Type B/genetics , Microcephaly/genetics , Mutation , Nuclear Lamina/genetics , Amino Acid Sequence , Base Sequence , Cerebral Cortex/diagnostic imaging , Cerebral Cortex/metabolism , Cerebral Cortex/pathology , Child, Preschool , Corpus Callosum/diagnostic imaging , Corpus Callosum/metabolism , Corpus Callosum/pathology , Dwarfism/diagnostic imaging , Dwarfism/metabolism , Dwarfism/pathology , Female , Gene Expression , Humans , Infant , Intellectual Disability/diagnostic imaging , Intellectual Disability/metabolism , Intellectual Disability/pathology , Lamin Type B/metabolism , Lymphocytes/metabolism , Lymphocytes/pathology , Magnetic Resonance Imaging , Male , Microcephaly/diagnostic imaging , Microcephaly/metabolism , Microcephaly/pathology , Nuclear Lamina/metabolism , Nuclear Lamina/pathology
5.
Am J Hum Genet ; 106(6): 830-845, 2020 06 04.
Article in English | MEDLINE | ID: mdl-32442410

ABSTRACT

SOX6 belongs to a family of 20 SRY-related HMG-box-containing (SOX) genes that encode transcription factors controlling cell fate and differentiation in many developmental and adult processes. For SOX6, these processes include, but are not limited to, neurogenesis and skeletogenesis. Variants in half of the SOX genes have been shown to cause severe developmental and adult syndromes, referred to as SOXopathies. We here provide evidence that SOX6 variants also cause a SOXopathy. Using clinical and genetic data, we identify 19 individuals harboring various types of SOX6 alterations and exhibiting developmental delay and/or intellectual disability; the individuals are from 17 unrelated families. Additional, inconstant features include attention-deficit/hyperactivity disorder (ADHD), autism, mild facial dysmorphism, craniosynostosis, and multiple osteochondromas. All variants are heterozygous. Fourteen are de novo, one is inherited from a mosaic father, and four offspring from two families have a paternally inherited variant. Intragenic microdeletions, balanced structural rearrangements, frameshifts, and nonsense variants are predicted to inactivate the SOX6 variant allele. Four missense variants occur in residues and protein regions highly conserved evolutionarily. These variants are not detected in the gnomAD control cohort, and the amino acid substitutions are predicted to be damaging. Two of these variants are located in the HMG domain and abolish SOX6 transcriptional activity in vitro. No clear genotype-phenotype correlations are found. Taken together, these findings concur that SOX6 haploinsufficiency leads to a neurodevelopmental SOXopathy that often includes ADHD and abnormal skeletal and other features.


Subject(s)
Attention Deficit Disorder with Hyperactivity/genetics , Craniosynostoses/genetics , Neurodevelopmental Disorders/genetics , Osteochondroma/genetics , SOXD Transcription Factors/genetics , Active Transport, Cell Nucleus , Adolescent , Amino Acid Sequence , Base Sequence , Brain/embryology , Brain/growth & development , Brain/metabolism , Child , Child, Preschool , Computer Simulation , Female , Genomic Structural Variation/genetics , Humans , Infant , Male , Mutation, Missense , Neurodevelopmental Disorders/diagnosis , RNA-Seq , SOXD Transcription Factors/chemistry , SOXD Transcription Factors/metabolism , Syndrome , Transcription, Genetic , Transcriptome , Translocation, Genetic/genetics
6.
J Clin Immunol ; 43(2): 421-439, 2023 02.
Article in English | MEDLINE | ID: mdl-36319802

ABSTRACT

PURPOSE: Besides their developmental and neurological phenotype, most patients with MECP2/IRAK1 duplication syndrome present with recurrent and severe infections, accompanied by strong inflammation. Respiratory infections are the most common cause of death. Standardized pneumological diagnostics, targeted anti-infectious treatment, and knowledge of the underlying pathomechanism that triggers strong inflammation are unmet clinical needs. We investigated the influence of IRAK1 overexpression on the canonical NF-κB signaling as a possible cause for excessive inflammation in these patients. METHODS: NF-κB signaling was examined by measuring the production of proinflammatory cytokines and evaluating the IRAK1 phosphorylation and degradation as well as the IκBα degradation upon stimulation with IL-1ß and TLR agonists in SV40-immortalized fibroblasts, PBMCs, and whole blood of 9 patients with MECP2/IRAK1 duplication syndrome, respectively. RESULTS: Both, MECP2/IRAK1-duplicated patients and healthy controls, showed similar production of IL-6 and IL-8 upon activation with IL-1ß and TLR2/6 agonists in immortalized fibroblasts. In PBMCs and whole blood, both patients and controls had a similar response of cytokine production after stimulation with IL-1ß and TLR4/2/6 agonists. Patients and controls had equivalent patterns of IRAK1 phosphorylation and degradation as well as IκBα degradation upon stimulation with IL-1ß. CONCLUSION: Patients with MECP2/IRAK1 duplication syndrome do not show increased canonical NF-κB signaling in immortalized fibroblasts, PBMCs, and whole blood. Therefore, we assume that these patients do not benefit from a therapeutic suppression of this pathway.


Subject(s)
NF-kappa B , Signal Transduction , Humans , NF-kappa B/metabolism , NF-KappaB Inhibitor alpha/metabolism , Signal Transduction/physiology , Interleukin-1 Receptor-Associated Kinases/genetics , Inflammation
7.
Sociol Health Illn ; 45(3): 465-484, 2023 03.
Article in English | MEDLINE | ID: mdl-36189958

ABSTRACT

This study explores the different manifestations and navigations of uncertainty in the practice of diagnostic next-generation sequencing (NGS) testing. Drawing upon multi-sited fieldwork conducted at a large Centre for Human Genetics in Belgium, we analyse how uncertainty takes shape and is managed in the different steps of the diagnostic process: starting from the testing offer, to the analysis in the lab, the multidisciplinary team meetings (MDTs) and ending with the consultation with the patient. Building on interviews with genetic healthcare professionals and their patients and observations in consultations and MDTs, our empirical work underlines the duality of uncertainty as both burdensome and productive. Building on the existing literature on uncertainty in medicine and NGS, our analysis shows the ontological politics at play in the everyday uncertainty work in this CHG. We show how the, at times, contrasting ways of dealing with uncertainty lead to friction but also result in constructive negotiation and collaboration between actors, making use of multiple types of evidence and expertise. By not only minimising but also sustaining or inviting uncertainty, genetic healthcare professionals are able to advance the practices around NGS in a way that matches their multidisciplinary understandings, considerations and more normative stances.


Subject(s)
Health Personnel , Negotiating , Humans , Uncertainty , High-Throughput Nucleotide Sequencing , Referral and Consultation
8.
Am J Hum Genet ; 104(5): 957-967, 2019 05 02.
Article in English | MEDLINE | ID: mdl-31006512

ABSTRACT

Replicating the human genome efficiently and accurately is a daunting challenge involving the duplication of upward of three billion base pairs. At the core of the complex machinery that achieves this task are three members of the B family of DNA polymerases: DNA polymerases α, δ, and ε. Collectively these multimeric polymerases ensure DNA replication proceeds at optimal rates approaching 2 × 103 nucleotides/min with an error rate of less than one per million nucleotides polymerized. The majority of DNA replication of undamaged DNA is conducted by DNA polymerases δ and ε. The DNA polymerase α-primase complex performs limited synthesis to initiate the replication process, along with Okazaki-fragment synthesis on the discontinuous lagging strand. An increasing number of human disorders caused by defects in different components of the DNA-replication apparatus have been described to date. These are clinically diverse and involve a wide range of features, including variable combinations of growth delay, immunodeficiency, endocrine insufficiencies, lipodystrophy, and cancer predisposition. Here, by using various complementary approaches, including classical linkage analysis, targeted next-generation sequencing, and whole-exome sequencing, we describe distinct missense and splice-impacting mutations in POLA1 in five unrelated families presenting with an X-linked syndrome involving intellectual disability, proportionate short stature, microcephaly, and hypogonadism. POLA1 encodes the p180 catalytic subunit of DNA polymerase α-primase. A range of replicative impairments could be demonstrated in lymphoblastoid cell lines derived from affected individuals. Our findings describe the presentation of pathogenic mutations in a catalytic component of a B family DNA polymerase member, DNA polymerase α.


Subject(s)
DNA Polymerase I/genetics , DNA Primase/genetics , Genetic Diseases, X-Linked/etiology , Growth Disorders/etiology , Hypogonadism/etiology , Intellectual Disability/etiology , Microcephaly/etiology , Mutation , Adolescent , Adult , Child , Child, Preschool , Female , Genetic Diseases, X-Linked/pathology , Genotype , Growth Disorders/pathology , Humans , Hypogonadism/pathology , Infant , Intellectual Disability/pathology , Male , Microcephaly/pathology , Middle Aged , Pedigree , Exome Sequencing
9.
Am J Hum Genet ; 105(2): 302-316, 2019 08 01.
Article in English | MEDLINE | ID: mdl-31256877

ABSTRACT

Members of a paralogous gene family in which variation in one gene is known to cause disease are eight times more likely to also be associated with human disease. Recent studies have elucidated DHX30 and DDX3X as genes for which pathogenic variant alleles are involved in neurodevelopmental disorders. We hypothesized that variants in paralogous genes encoding members of the DExD/H-box RNA helicase superfamily might also underlie developmental delay and/or intellectual disability (DD and/or ID) disease phenotypes. Here we describe 15 unrelated individuals who have DD and/or ID, central nervous system (CNS) dysfunction, vertebral anomalies, and dysmorphic features and were found to have probably damaging variants in DExD/H-box RNA helicase genes. In addition, these individuals exhibit a variety of other tissue and organ system involvement including ocular, outer ear, hearing, cardiac, and kidney tissues. Five individuals with homozygous (one), compound-heterozygous (two), or de novo (two) missense variants in DHX37 were identified by exome sequencing. We identified ten total individuals with missense variants in three other DDX/DHX paralogs: DHX16 (four individuals), DDX54 (three individuals), and DHX34 (three individuals). Most identified variants are rare, predicted to be damaging, and occur at conserved amino acid residues. Taken together, these 15 individuals implicate the DExD/H-box helicases in both dominantly and recessively inherited neurodevelopmental phenotypes and highlight the potential for more than one disease mechanism underlying these disorders.


Subject(s)
DEAD-box RNA Helicases/genetics , Mutation, Missense , Neoplasm Proteins/genetics , Neurodevelopmental Disorders/genetics , Neurodevelopmental Disorders/pathology , RNA Helicases/genetics , Female , Genetic Association Studies , Humans , Infant , Infant, Newborn , Male , Pedigree , Exome Sequencing
10.
Genet Med ; 24(2): 439-453, 2022 02.
Article in English | MEDLINE | ID: mdl-34906501

ABSTRACT

PURPOSE: This study aimed to describe a multisystemic disorder featuring cardiovascular, facial, musculoskeletal, and cutaneous anomalies caused by heterozygous loss-of-function variants in TAB2. METHODS: Affected individuals were analyzed by next-generation technologies and genomic array. The presumed loss-of-function effect of identified variants was assessed by luciferase assay in cells transiently expressing TAB2 deleterious alleles. In available patients' fibroblasts, variant pathogenicity was further explored by immunoblot and osteoblast differentiation assays. The transcriptomic profile of fibroblasts was investigated by RNA sequencing. RESULTS: A total of 11 individuals from 8 families were heterozygotes for a novel TAB2 variant. In total, 7 variants were predicted to be null alleles and 1 was a missense change. An additional subject was heterozygous for a 52 kb microdeletion involving TAB2 exons 1 to 3. Luciferase assay indicated a decreased transcriptional activation mediated by NF-κB signaling for all point variants. Immunoblot analysis showed a reduction of TAK1 phosphorylation while osteoblast differentiation was impaired. Transcriptomic analysis identified deregulation of multiple pleiotropic pathways, such as TGFß-, Ras-MAPK-, and Wnt-signaling networks. CONCLUSION: Our data defined a novel disorder associated with loss-of-function or, more rarely, hypomorphic alleles in a restricted linker region of TAB2. The pleiotropic manifestations in this disorder partly recapitulate the 6q25.1 (TAB2) microdeletion syndrome and deserve the definition of cardio-facial-cutaneous-articular syndrome.


Subject(s)
Adaptor Proteins, Signal Transducing , NF-kappa B , Adaptor Proteins, Signal Transducing/genetics , Adaptor Proteins, Signal Transducing/metabolism , Exons/genetics , Humans , NF-kappa B/genetics , NF-kappa B/metabolism , Phosphorylation , Signal Transduction
11.
Ann Neurol ; 89(4): 828-833, 2021 04.
Article in English | MEDLINE | ID: mdl-33443317

ABSTRACT

The Mediator multiprotein complex functions as a regulator of RNA polymerase II-catalyzed gene transcription. In this study, exome sequencing detected biallelic putative disease-causing variants in MED27, encoding Mediator complex subunit 27, in 16 patients from 11 families with a novel neurodevelopmental syndrome. Patient phenotypes are highly homogeneous, including global developmental delay, intellectual disability, axial hypotonia with distal spasticity, dystonic movements, and cerebellar hypoplasia. Seizures and cataracts were noted in severely affected individuals. Identification of multiple patients with biallelic MED27 variants supports the critical role of MED27 in normal human neural development, particularly for the cerebellum. ANN NEUROL 2021;89:828-833.


Subject(s)
Cerebellum/abnormalities , Developmental Disabilities/genetics , Dystonia/genetics , Mediator Complex/genetics , Nervous System Malformations/genetics , Adolescent , Adult , Amino Acid Sequence , Cataract/genetics , Child , Child, Preschool , Epilepsy/genetics , Genetic Variation , Humans , Infant , Phenotype , Exome Sequencing
12.
Eur J Neurol ; 29(1): 345-349, 2022 01.
Article in English | MEDLINE | ID: mdl-34469621

ABSTRACT

BACKGROUND: Although hereditary ataxias are a group of clinically and genetically heterogeneous disorders, specific clinical clues can sometimes incriminate certain genes. This can trigger genetic testing in sporadic patients or prompt dissecting certain genes more thoroughly when initial genetic testing is negative. Also for the assembly of gene panels and interpretation of the results, genotype-phenotype correlations remain important to establish. METHODS: We clinically evaluated a Belgian family with autosomal dominant inherited sensory ataxia and variable pyramidal involvement and performed targeted clinical exome sequencing. Secondly, we retrospectively screened sequencing data of an in-house cohort of 404 patients with neuromuscular disorders for variants in the identified gene RNF170. RESULTS: All affected family members showed sensory ataxia on examination. Pyramidal involvement, and sometimes slow-pursuit abnormalities and/or a sensory neuropathy, were more variable findings. We identified the heterozygous variant p.Arg199Cys in RNF170 in all three affected siblings of our family. We did not find additional pathogenic variants in RNF170 in our in-house neuromuscular cohort. CONCLUSIONS: We confirm the heterozygous variant p.Arg199Cys in RNF170 in a Belgian family with autosomal dominant sensory ataxia and variable pyramidal involvement. This constitutes a rare but clinically recognizable phenotype that warrants testing of RNF170. Unlike the distinctive bi-allelic loss of function variants in RNF170 associated with hereditary spastic paraplegia (HSP), the p.Arg199Cys variant is the only one reported in sensory ataxia. It is important for neurologists to be aware of this characteristic phenotype and to include this gene in gene panels for ataxia and HSP.


Subject(s)
Ataxia , Spastic Paraplegia, Hereditary , Ataxia/genetics , Humans , Mutation/genetics , Pedigree , Phenotype , Retrospective Studies , Spastic Paraplegia, Hereditary/genetics , Ubiquitin-Protein Ligases/genetics
13.
Int J Mol Sci ; 23(12)2022 06 09.
Article in English | MEDLINE | ID: mdl-35742919

ABSTRACT

Intellectual disability (ID) is characterized by deficits in conceptual, social and practical domains. ID can be caused by both genetic defects and environmental factors and is extremely heterogeneous, which complicates the diagnosis as well as the deciphering of the underlying pathways. Multiple scientific breakthroughs during the past decades have enabled the development of novel ID models. The advent of induced pluripotent stem cells (iPSCs) enables the study of patient-derived human neurons in 2D or in 3D organoids during development. Gene-editing tools, such as CRISPR/Cas9, provide isogenic controls and opportunities to design personalized gene therapies. In practice this has contributed significantly to the understanding of ID and opened doors to identify novel therapeutic targets. Despite these advances, a number of areas of improvement remain for which novel technologies might entail a solution in the near future. The purpose of this review is to provide an overview of the existing literature on scientific breakthroughs that have been advancing the way ID can be studied in the human brain. The here described human brain models for ID have the potential to accelerate the identification of underlying pathophysiological mechanisms and the development of therapies.


Subject(s)
Induced Pluripotent Stem Cells , Intellectual Disability , Brain , CRISPR-Cas Systems , Gene Editing , Humans , Induced Pluripotent Stem Cells/metabolism , Intellectual Disability/genetics , Intellectual Disability/metabolism , Intellectual Disability/therapy
14.
Int J Mol Sci ; 23(22)2022 Nov 08.
Article in English | MEDLINE | ID: mdl-36430143

ABSTRACT

Clark-Baraitser syndrome is a rare autosomal dominant intellectual disability syndrome caused by pathogenic variants in the TRIP12 (Thyroid Hormone Receptor Interactor 12) gene. TRIP12 encodes an E3 ligase in the ubiquitin pathway. The ubiquitin pathway includes activating E1, conjugating E2 and ligating E3 enzymes which regulate the breakdown and sorting of proteins. This enzymatic pathway is crucial for physiological processes. A significant proportion of TRIP12 variants are currently classified as variants of unknown significance (VUS). Episignatures have been shown to represent a powerful diagnostic tool to resolve inconclusive genetic findings for Mendelian disorders and to re-classify VUSs. Here, we show the results of DNA methylation episignature analysis in 32 individuals with pathogenic, likely pathogenic and VUS variants in TRIP12. We identified a specific and sensitive DNA methylation (DNAm) episignature associated with pathogenic TRIP12 variants, establishing its utility as a clinical biomarker for Clark-Baraitser syndrome. In addition, we performed analysis of differentially methylated regions as well as functional correlation of the TRIP12 genome-wide methylation profile with the profiles of 56 additional neurodevelopmental disorders.


Subject(s)
Mental Retardation, X-Linked , Humans , Facies , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism , Ubiquitin/metabolism , Carrier Proteins/metabolism
15.
Am J Hum Genet ; 102(5): 744-759, 2018 05 03.
Article in English | MEDLINE | ID: mdl-29656859

ABSTRACT

RORα, the RAR-related orphan nuclear receptor alpha, is essential for cerebellar development. The spontaneous mutant mouse staggerer, with an ataxic gait caused by neurodegeneration of cerebellar Purkinje cells, was discovered two decades ago to result from homozygous intragenic Rora deletions. However, RORA mutations were hitherto undocumented in humans. Through a multi-centric collaboration, we identified three copy-number variant deletions (two de novo and one dominantly inherited in three generations), one de novo disrupting duplication, and nine de novo point mutations (three truncating, one canonical splice site, and five missense mutations) involving RORA in 16 individuals from 13 families with variable neurodevelopmental delay and intellectual disability (ID)-associated autistic features, cerebellar ataxia, and epilepsy. Consistent with the human and mouse data, disruption of the D. rerio ortholog, roraa, causes significant reduction in the size of the developing cerebellum. Systematic in vivo complementation studies showed that, whereas wild-type human RORA mRNA could complement the cerebellar pathology, missense variants had two distinct pathogenic mechanisms of either haploinsufficiency or a dominant toxic effect according to their localization in the ligand-binding or DNA-binding domains, respectively. This dichotomous direction of effect is likely relevant to the phenotype in humans: individuals with loss-of-function variants leading to haploinsufficiency show ID with autistic features, while individuals with de novo dominant toxic variants present with ID, ataxia, and cerebellar atrophy. Our combined genetic and functional data highlight the complex mutational landscape at the human RORA locus and suggest that dual mutational effects likely determine phenotypic outcome.


Subject(s)
Autistic Disorder/genetics , Cerebellar Ataxia/genetics , Genes, Dominant , Intellectual Disability/genetics , Mutation, Missense/genetics , Nuclear Receptor Subfamily 1, Group F, Member 1/genetics , Adolescent , Adult , Aged, 80 and over , Alleles , Animals , Autistic Disorder/complications , Brain/pathology , Cerebellar Ataxia/complications , Child , Child, Preschool , DNA Copy Number Variations/genetics , Disease Models, Animal , Female , Genetic Complementation Test , Humans , Intellectual Disability/complications , Larva/genetics , Magnetic Resonance Imaging , Male , Middle Aged , Purkinje Cells/metabolism , Purkinje Cells/pathology , Syndrome , Zebrafish/genetics
16.
Clin Genet ; 99(3): 462-474, 2021 03.
Article in English | MEDLINE | ID: mdl-33368194

ABSTRACT

IQSEC2 mutations are associated with IQSEC2-related intellectual disability (ID). Phenotypic spectrum has been better defined in the last few years by the increasing number of reported cases although the genotype-phenotype relationship for IQSEC2 remains overall complex. As for IQSEC2-related ID a wide phenotypic diversity has been described in Rett syndrome (RTT). Several patients harboring IQSEC2 mutations present with clinical symptoms similar to RTT and some cases meet most of the criteria for classic RTT. With the aim of establishing a genotype-phenotype correlation, we collected data of 16 patients harboring IQSEC2 point mutations (15 of them previously unreported) and of five novel patients carrying CNVs encompassing IQSEC2. Most of our patients surprisingly shared a moderate-to-mild phenotype. The similarities in the clinical course between our mild cases and patients with milder forms of atypical RTT reinforce the hypothesis that also IQSEC2 mutated patients may lay under the wide clinical spectrum of RTT and thus IQSEC2 should be considered in the differential diagnosis. Our data confirm that position, type of variant and gender are crucial for IQSEC2-associated phenotype delineation.


Subject(s)
Guanine Nucleotide Exchange Factors/genetics , Intellectual Disability/genetics , Rett Syndrome/genetics , Adolescent , Adult , Child , Child, Preschool , Diagnosis, Differential , Female , Genetic Association Studies , Humans , Male , Middle Aged , Point Mutation , Rett Syndrome/diagnosis , Exome Sequencing , Young Adult
17.
Mol Cell ; 50(6): 831-43, 2013 Jun 27.
Article in English | MEDLINE | ID: mdl-23685073

ABSTRACT

The prevalence of intellectual disability is around 3%; however, the etiology of the disease remains unclear in most cases. We identified a series of patients with X-linked intellectual disability presenting mutations in the Rad6a (Ube2a) gene, which encodes for an E2 ubiquitin-conjugating enzyme. Drosophila deficient for dRad6 display defective synaptic function as a consequence of mitochondrial failure. Similarly, mouse mRad6a (Ube2a) knockout and patient-derived hRad6a (Ube2a) mutant cells show defective mitochondria. Using in vitro and in vivo ubiquitination assays, we show that RAD6A acts as an E2 ubiquitin-conjugating enzyme that, in combination with an E3 ubiquitin ligase such as Parkin, ubiquitinates mitochondrial proteins to facilitate the clearance of dysfunctional mitochondria in cells. Hence, we identify RAD6A as a regulator of Parkin-dependent mitophagy and establish a critical role for RAD6A in maintaining neuronal function.


Subject(s)
Mental Retardation, X-Linked/genetics , Mitophagy , Ubiquitin-Conjugating Enzymes/genetics , Ubiquitin-Protein Ligases/metabolism , Adolescent , Adult , Animals , Carbonyl Cyanide m-Chlorophenyl Hydrazone/pharmacology , Case-Control Studies , Cell Line , Child , Drosophila , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Exome , Genetic Association Studies , Humans , Kinetics , Male , Membrane Potential, Mitochondrial , Mice , Mice, Knockout , Mitochondria, Muscle/drug effects , Mitochondria, Muscle/physiology , Mutation, Missense , Neuromuscular Junction/metabolism , Pedigree , Sequence Analysis, DNA , Ubiquitin-Conjugating Enzymes/metabolism , Ubiquitination , Uncoupling Agents/pharmacology
18.
J Med Genet ; 57(5): 347-355, 2020 05.
Article in English | MEDLINE | ID: mdl-31932357

ABSTRACT

BACKGROUND: Intragenic NRXN1 deletions are susceptibility variants for neurodevelopmental disorders; however, their clinical interpretation is often unclear. Therefore, a literature study and an analysis of 43 previously unpublished deletions are provided. METHODS: The literature cohort covered 629 heterozygous NRXN1 deletions: 148 in controls, 341 in probands and 140 in carrier relatives, and was used for clinical hypothesis testing. Exact breakpoint determination was performed for 43 in-house deletions. RESULTS: The prevalence of exonic NRXN1 deletions in controls was ~1/3000 as compared with ~1/800 in patients with neurodevelopmental/neuropsychiatric disorders. The differential distribution of deletions across the gene between controls and probands allowed to distinguish distinct areas within the gene. Exon 6-24 deletions appeared only twice in over 100000 control individuals, had an estimated penetrance for neurodevelopmental disorders of 32.43%, a de novo rate of 50% and segregated mainly with intellectual disability (ID) and schizophrenia. In contrast, exon 1-5 deletions appeared in 20 control individuals, had an estimated penetrance of 12.59%, a de novo rate of 32.5% and were reported with a broad range of neurodevelopmental phenotypes. Exact breakpoint determination revealed six recurrent intron 5 deletions. CONCLUSION: Exon 6-24 deletions have a high penetrance and are mainly associated with ID and schizophrenia. In contrast, the actual contribution of exon 1-5 deletions to a neurodevelopmental/neuropsychiatric disorder in an individual patient and family remains very difficult to assess. To enhance the clinical interpretation, this study provides practical considerations for counselling and an interactive table for comparing a deletion of interest with the available literature data.


Subject(s)
Calcium-Binding Proteins/genetics , Gene Deletion , Intellectual Disability/genetics , Neural Cell Adhesion Molecules/genetics , Schizophrenia/genetics , Abnormalities, Multiple/epidemiology , Abnormalities, Multiple/genetics , Abnormalities, Multiple/pathology , Exons , Female , Genetic Predisposition to Disease , Humans , Intellectual Disability/epidemiology , Intellectual Disability/pathology , Male , Neurodevelopmental Disorders/epidemiology , Neurodevelopmental Disorders/genetics , Neurodevelopmental Disorders/pathology , Schizophrenia/epidemiology , Schizophrenia/pathology
19.
Hum Mol Genet ; 27(4): 589-600, 2018 02 15.
Article in English | MEDLINE | ID: mdl-29267967

ABSTRACT

FRMPD4 (FERM and PDZ Domain Containing 4) is a neural scaffolding protein that interacts with PSD-95 to positively regulate dendritic spine morphogenesis, and with mGluR1/5 and Homer to regulate mGluR1/5 signaling. We report the genetic and functional characterization of 4 FRMPD4 deleterious mutations that cause a new X-linked intellectual disability (ID) syndrome. These mutations were found to be associated with ID in ten affected male patients from four unrelated families, following an apparent X-linked mode of inheritance. Mutations include deletion of an entire coding exon, a nonsense mutation, a frame-shift mutation resulting in premature termination of translation, and a missense mutation involving a highly conserved amino acid residue neighboring FRMPD4-FERM domain. Clinical features of these patients consisted of moderate to severe ID, language delay and seizures alongside with behavioral and/or psychiatric disturbances. In-depth functional studies showed that a frame-shift mutation, FRMPD4p.Cys618ValfsX8, results in a disruption of FRMPD4 binding with PSD-95 and HOMER1, and a failure to increase spine density in transfected hippocampal neurons. Behavioral studies of frmpd4-KO mice identified hippocampus-dependent spatial learning and memory deficits in Morris Water Maze test. These findings point to an important role of FRMPD4 in normal cognitive development and function in humans and mice, and support the hypothesis that FRMPD4 mutations cause ID by disrupting dendritic spine morphogenesis in glutamatergic neurons.


Subject(s)
Dendritic Spines/metabolism , Intellectual Disability/genetics , Intracellular Signaling Peptides and Proteins/genetics , Adolescent , Adult , Aged , Exons/genetics , Female , Frameshift Mutation/genetics , Humans , Male , Middle Aged , Morphogenesis/genetics , Morphogenesis/physiology , Mutation/genetics , Neurogenesis/genetics , Neurogenesis/physiology , Pedigree , Young Adult
20.
Br Med Bull ; 133(1): 36-48, 2020 05 15.
Article in English | MEDLINE | ID: mdl-32043524

ABSTRACT

BACKGROUND: Intellectual disability (ID) affects 1-3% of the Western population and is heterogeneous in origin. Mutations in X-linked genes represent 5-10% of ID in males. Fragile X syndrome, due to the silencing of the FMR1 gene, is the most common form of ID, with a prevalence of around 1:5000 males. Females are usually non- or mildly affected carriers, and in a few rare cases, the only gender affected. Array comparative genome hybridization (aCGH) and next-generation sequencing (NGS) have dramatically changed the nature of human genome analysis leading to the identification of new X-linked intellectual disability syndromes and disease-causing genes. SOURCES OF DATA: Original papers, reviews, guidelines and experiences of the diagnostic laboratories. AREAS OF AGREEMENT: Family history and clinical examination still are essential to choose the appropriate diagnostic tests, including, a disease-specific genetic test, aCGH or FMR1 molecular analysis. If negative, NGS approaches like well-defined gene panels, whole exome, or even whole genome sequencing, are increasingly being used, improving diagnostics and leading to the identification of novel disease mechanisms. AREAS OF CONTROVERSY: The main challenge in the era of NGS is filtering and interpretation of the data generated by the analysis of a single individual. In X-linked cases, assessing pathogenicity is particularly challenging, even more when the variant is found to be inherited from a healthy carrier mother or when a heterozygous X-linked mutation is found in an impaired female. GROWING POINTS: At present, variant interpretation remains a challenging task, especially in X-linked disorders. We review the main difficulties and propose a comprehensive overview that might aid in variant interpretation. Establishing a genetic diagnosis facilitates counseling and allows better delineation of clinical phenotypes. AREAS TIMELY FOR DEVELOPING RESEARCH: To improve variant interpretation, there is need to refine in silico predictions with specific criteria for each gene, and to develop cost-effective functional tools, which can be easily transferred to diagnostics.


Subject(s)
Intellectual Disability , Sex Chromosome Disorders , Comparative Genomic Hybridization/methods , Genetic Counseling/methods , High-Throughput Nucleotide Sequencing/methods , Humans , Intellectual Disability/classification , Intellectual Disability/diagnosis , Intellectual Disability/genetics , Patient Selection , Sex Chromosome Disorders/classification , Sex Chromosome Disorders/diagnosis , Sex Chromosome Disorders/genetics
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