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1.
Brain ; 147(5): 1822-1836, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38217872

ABSTRACT

Loss-of-function mutation of ABCC9, the gene encoding the SUR2 subunit of ATP sensitive-potassium (KATP) channels, was recently associated with autosomal recessive ABCC9-related intellectual disability and myopathy syndrome (AIMS). Here we identify nine additional subjects, from seven unrelated families, harbouring different homozygous loss-of-function variants in ABCC9 and presenting with a conserved range of clinical features. All variants are predicted to result in severe truncations or in-frame deletions within SUR2, leading to the generation of non-functional SUR2-dependent KATP channels. Affected individuals show psychomotor delay and intellectual disability of variable severity, microcephaly, corpus callosum and white matter abnormalities, seizures, spasticity, short stature, muscle fatigability and weakness. Heterozygous parents do not show any conserved clinical pathology but report multiple incidences of intra-uterine fetal death, which were also observed in an eighth family included in this study. In vivo studies of abcc9 loss-of-function in zebrafish revealed an exacerbated motor response to pentylenetetrazole, a pro-convulsive drug, consistent with impaired neurodevelopment associated with an increased seizure susceptibility. Our findings define an ABCC9 loss-of-function-related phenotype, expanding the genotypic and phenotypic spectrum of AIMS and reveal novel human pathologies arising from KATP channel dysfunction.


Subject(s)
Intellectual Disability , Muscular Diseases , Sulfonylurea Receptors , Humans , Intellectual Disability/genetics , Female , Sulfonylurea Receptors/genetics , Male , Animals , Child , Muscular Diseases/genetics , Child, Preschool , Adolescent , Zebrafish , Loss of Function Mutation/genetics , Adult , Pedigree , Young Adult
2.
Am J Hum Genet ; 110(11): 1959-1975, 2023 11 02.
Article in English | MEDLINE | ID: mdl-37883978

ABSTRACT

Valosin-containing protein (VCP) is an AAA+ ATPase that plays critical roles in multiple ubiquitin-dependent cellular processes. Dominant pathogenic variants in VCP are associated with adult-onset multisystem proteinopathy (MSP), which manifests as myopathy, bone disease, dementia, and/or motor neuron disease. Through GeneMatcher, we identified 13 unrelated individuals who harbor heterozygous VCP variants (12 de novo and 1 inherited) associated with a childhood-onset disorder characterized by developmental delay, intellectual disability, hypotonia, and macrocephaly. Trio exome sequencing or a multigene panel identified nine missense variants, two in-frame deletions, one frameshift, and one splicing variant. We performed in vitro functional studies and in silico modeling to investigate the impact of these variants on protein function. In contrast to MSP variants, most missense variants had decreased ATPase activity, and one caused hyperactivation. Other variants were predicted to cause haploinsufficiency, suggesting a loss-of-function mechanism. This cohort expands the spectrum of VCP-related disease to include neurodevelopmental disease presenting in childhood.


Subject(s)
Muscular Diseases , Neurodevelopmental Disorders , Adult , Humans , Valosin Containing Protein/genetics , Muscle Hypotonia , Mutation, Missense/genetics
3.
J Med Genet ; 60(1): 57-64, 2023 01.
Article in English | MEDLINE | ID: mdl-34876502

ABSTRACT

BACKGROUND: Hydrops fetalis, a pathological fluid accumulation in two or more body compartments, is aetiologically heterogeneous. We investigated a consanguineous family with recurrent pregnancy loss due to severe early-onset non-immune hydrops fetalis. METHODS AND RESULTS: Whole exome sequencing in four fetuses with hydrops fetalis revealed that they were homozygous for the angiopoietin-2 (ANGPT2) variant Chr8 (GRCh37/Hg19): 6385085T>C, NM_001147.2:c.557A>G. The substitution introduces a cryptic, exonic splice site predicted to result in loss of 10 nucleotides with subsequent shift in reading frame, leading to a premature stop codon. RNA analysis in the heterozygous parents demonstrated loss of detectable mutant allele, indicative of loss-of-function via nonsense-mediated mRNA decay. Serum ANGPT2 levels were reduced in the parents. In a pregnancy with a healthy, heterozygous child, transiently increased fetal nuchal translucency was noted. CONCLUSION: Pathogenic heterozygous ANGPT2 missense variants were recently shown to cause autosomal dominant primary lymphoedema. ANGPT2 is a ligand of the TIE1-TIE2 (tyrosine kinase with immunoglobulin-like and epidermal growth factor-like domains 1 and 2) pathway. It is critical to the formation and remodelling of blood and lymphatic vessels and is involved in vessel maintenance. ANGPT2 knockout mice die from generalised lymphatic dysfunction. We show here that a homozygous pathogenic variant causes loss-of-function and results in severe early-onset hydrops fetalis. This is the first report of an autosomal recessive ANGPT2-related disorder in humans.


Subject(s)
Angiopoietin-2 , Hydrops Fetalis , Animals , Female , Humans , Mice , Pregnancy , Angiopoietin-2/genetics , Codon, Nonsense/genetics , Heterozygote , Hydrops Fetalis/genetics , Hydrops Fetalis/metabolism , Mutation, Missense , Infant, Newborn
4.
Hum Genet ; 141(8): 1355-1369, 2022 Aug.
Article in English | MEDLINE | ID: mdl-35039925

ABSTRACT

NAA10 is the catalytic subunit of the N-terminal acetyltransferase complex, NatA, which is responsible for N-terminal acetylation of nearly half the human proteome. Since 2011, at least 21 different NAA10 missense variants have been reported as pathogenic in humans. The clinical features associated with this X-linked condition vary, but commonly described features include developmental delay, intellectual disability, cardiac anomalies, brain abnormalities, facial dysmorphism and/or visual impairment. Here, we present eight individuals from five families with five different de novo or inherited NAA10 variants. In order to determine their pathogenicity, we have performed biochemical characterisation of the four novel variants c.16G>C p.(A6P), c.235C>T p.(R79C), c.386A>C p.(Q129P) and c.469G>A p.(E157K). Additionally, we clinically describe one new case with a previously identified pathogenic variant, c.384T>G p.(F128L). Our study provides important insight into how different NAA10 missense variants impact distinct biochemical functions of NAA10 involving the ability of NAA10 to perform N-terminal acetylation. These investigations may partially explain the phenotypic variability in affected individuals and emphasise the complexity of the cellular pathways downstream of NAA10.


Subject(s)
Intellectual Disability , N-Terminal Acetyltransferase A , N-Terminal Acetyltransferase E , Acetylation , Genes, X-Linked , Humans , Intellectual Disability/genetics , Intellectual Disability/pathology , N-Terminal Acetyltransferase A/genetics , N-Terminal Acetyltransferase A/metabolism , N-Terminal Acetyltransferase E/genetics , N-Terminal Acetyltransferase E/metabolism
5.
Eur J Hum Genet ; 30(1): 95-100, 2022 01.
Article in English | MEDLINE | ID: mdl-34645992

ABSTRACT

White-Sutton syndrome (WHSUS) is a neurodevelopmental disorder caused by heterozygous loss-of-function variants in POGZ. Through the Deciphering Developmental Disorders study and clinical testing, we identified 12 individuals from 10 families with pathogenic or likely pathogenic variants in POGZ (eight de novo and two inherited). Most individuals had delayed development and/or intellectual disability. We analyzed the clinical findings in our series and combined it with data from 89 previously reported individuals. The results demonstrate WHSUS is associated with variable developmental delay or intellectual disability, increased risk of obesity, visual defects, craniofacial dysmorphism, sensorineural hearing loss, feeding problems, seizures, and structural brain malformations. Our series includes further individuals with rod-cone dystrophy, cleft lip and palate, congenital diaphragmatic hernia, and duplicated renal drainage system, suggesting these are rare complications of WHSUS. In addition, we describe an individual with a novel, de novo missense variant in POGZ and features of WHSUS. Our work further delineates the phenotypic spectrum of WHSUS highlighting the variable severity of this disorder and the observation of familial pathogenic POGZ variants.


Subject(s)
Abnormalities, Multiple/genetics , Developmental Disabilities/genetics , Intellectual Disability/genetics , Phenotype , Transposases/genetics , Abnormalities, Multiple/pathology , Adolescent , Adult , Child , Child, Preschool , Developmental Disabilities/diagnosis , Female , Humans , Infant , Intellectual Disability/diagnosis , Male , Mutation, Missense , Pedigree , Syndrome
6.
Genet Med ; 22(2): 389-397, 2020 02.
Article in English | MEDLINE | ID: mdl-31388190

ABSTRACT

PURPOSE: Sifrim-Hitz-Weiss syndrome (SIHIWES) is a recently described multisystemic neurodevelopmental disorder caused by de novo variants inCHD4. In this study, we investigated the clinical spectrum of the disorder, genotype-phenotype correlations, and the effect of different missense variants on CHD4 function. METHODS: We collected clinical and molecular data from 32 individuals with mostly de novo variants in CHD4, identified through next-generation sequencing. We performed adenosine triphosphate (ATP) hydrolysis and nucleosome remodeling assays on variants from five different CHD4 domains. RESULTS: The majority of participants had global developmental delay, mild to moderate intellectual disability, brain anomalies, congenital heart defects, and dysmorphic features. Macrocephaly was a frequent but not universal finding. Additional common abnormalities included hypogonadism in males, skeletal and limb anomalies, hearing impairment, and ophthalmic abnormalities. The majority of variants were nontruncating and affected the SNF2-like region of the protein. We did not identify genotype-phenotype correlations based on the type or location of variants. Alterations in ATP hydrolysis and chromatin remodeling activities were observed in variants from different domains. CONCLUSION: The CHD4-related syndrome is a multisystemic neurodevelopmental disorder. Missense substitutions in different protein domains alter CHD4 function in a variant-specific manner, but result in a similar phenotype in humans.


Subject(s)
Mi-2 Nucleosome Remodeling and Deacetylase Complex/genetics , Neurodevelopmental Disorders/genetics , Abnormalities, Multiple/genetics , Adolescent , Adult , Child , Child, Preschool , Chromatin Assembly and Disassembly/genetics , Developmental Disabilities/genetics , Female , Genetic Association Studies , Genotype , Hearing Loss/genetics , Heart Defects, Congenital/genetics , Humans , Infant , Infant, Newborn , Intellectual Disability/genetics , Male , Megalencephaly/genetics , Mi-2 Nucleosome Remodeling and Deacetylase Complex/metabolism , Musculoskeletal Abnormalities/genetics , Mutation, Missense/genetics , Phenotype , Syndrome , Transcription Factors/genetics
8.
Nat Commun ; 10(1): 4457, 2019 10 01.
Article in English | MEDLINE | ID: mdl-31575858

ABSTRACT

Mutations in genes encoding KATP channel subunits have been reported for pancreatic disorders and Cantú syndrome. Here, we report a syndrome in six patients from two families with a consistent phenotype of mild intellectual disability, similar facies, myopathy, and cerebral white matter hyperintensities, with cardiac systolic dysfunction present in the two oldest patients. Patients are homozygous for a splice-site mutation in ABCC9 (c.1320 + 1 G > A), which encodes the sulfonylurea receptor 2 (SUR2) subunit of KATP channels. This mutation results in an in-frame deletion of exon 8, which results in non-functional KATP channels in recombinant assays. SUR2 loss-of-function causes fatigability and cardiac dysfunction in mice, and reduced activity, cardiac dysfunction and ventricular enlargement in zebrafish. We term this channelopathy resulting from loss-of-function of SUR2-containing KATP channels ABCC9-related Intellectual disability Myopathy Syndrome (AIMS). The phenotype differs from Cantú syndrome, which is caused by gain-of-function ABCC9 mutations, reflecting the opposing consequences of KATP loss- versus gain-of-function.


Subject(s)
Adenosine Triphosphate/metabolism , Channelopathies/metabolism , Genetic Predisposition to Disease/genetics , Intellectual Disability/metabolism , Muscular Diseases/metabolism , Mutation , Sulfonylurea Receptors/genetics , Sulfonylurea Receptors/metabolism , Adolescent , Adult , Amino Acid Sequence , Animals , Cardiomegaly/genetics , Cardiomegaly/metabolism , Cell Line , Child , Disease Models, Animal , Facies , Female , Genetic Diseases, X-Linked/genetics , Heart , Heart Diseases/genetics , Heart Diseases/metabolism , Homozygote , Humans , Hypertrichosis/genetics , Hypertrichosis/metabolism , Intellectual Disability/parasitology , Male , Mediator Complex/metabolism , Membrane Proteins/metabolism , Mice , Muscular Diseases/genetics , Neurodevelopmental Disorders/genetics , Neurodevelopmental Disorders/metabolism , Neurodevelopmental Disorders/physiopathology , Osteochondrodysplasias/genetics , Osteochondrodysplasias/metabolism , Pedigree , Phenotype , Rubidium , Whole Genome Sequencing , Young Adult , Zebrafish
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