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1.
Am J Hum Genet ; 109(6): 1140-1152, 2022 06 02.
Article in English | MEDLINE | ID: mdl-35659929

ABSTRACT

In the TRIDENT-2 study, all pregnant women in the Netherlands are offered genome-wide non-invasive prenatal testing (GW-NIPT) with a choice of receiving either full screening or screening solely for common trisomies. Previous data showed that GW-NIPT can reliably detect common trisomies in the general obstetric population and that this test can also detect other chromosomal abnormalities (additional findings). However, evidence regarding the clinical impact of screening for additional findings is lacking. Therefore, we present follow-up results of the TRIDENT-2 study to determine this clinical impact based on the laboratory and perinatal outcomes of cases with additional findings. Between April 2017 and April 2019, additional findings were detected in 402/110,739 pregnancies (0.36%). For 358 cases, the origin was proven to be either fetal (n = 79; 22.1%), (assumed) confined placental mosaicism (CPM) (n = 189; 52.8%), or maternal (n = 90; 25.1%). For the remaining 44 (10.9%), the origin of the aberration could not be determined. Most fetal chromosomal aberrations were pathogenic and associated with severe clinical phenotypes (61/79; 77.2%). For CPM cases, occurrence of pre-eclampsia (8.5% [16/189] vs 0.5% [754/159,924]; RR 18.5), and birth weight <2.3rd percentile (13.6% [24/177] vs 2.5% [3,892/155,491]; RR 5.5) were significantly increased compared to the general obstetric population. Of the 90 maternal findings, 12 (13.3%) were malignancies and 32 (35.6%) (mosaic) pathogenic copy number variants, mostly associated with mild or no clinical phenotypes. Data from this large cohort study provide crucial information for deciding if and how to implement GW-NIPT in screening programs. Additionally, these data can inform the challenging interpretation, counseling, and follow-up of additional findings.


Subject(s)
Prenatal Diagnosis , Trisomy , Cohort Studies , Female , Follow-Up Studies , Humans , Mosaicism , Placenta , Pregnancy , Prenatal Diagnosis/methods
2.
Prenat Diagn ; 43(4): 527-543, 2023 04.
Article in English | MEDLINE | ID: mdl-36647814

ABSTRACT

OBJECTIVE: We performed a 1-year evaluation of a novel strategy of simultaneously analyzing single nucleotide variants (SNVs), copy number variants (CNVs) and copy-number-neutral Absence-of-Heterozygosity from Whole Exome Sequencing (WES) data for prenatal diagnosis of fetuses with ultrasound (US) anomalies and a non-causative QF-PCR result. METHODS: After invasive diagnostics, whole exome parent-offspring trio-sequencing with exome-wide CNV analysis was performed in pregnancies with fetal US anomalies and a non-causative QF-PCR result (WES-CNV). On request, additional SNV-analysis, restricted to (the) requested gene panel(s) only (with the option of whole exome SNV-analysis afterward) was performed simultaneously (WES-CNV/SNV) or as rapid SNV-re-analysis, following a normal CNV analysis. RESULTS: In total, 415 prenatal samples were included. Following a non-causative QF-PCR result, WES-CNV analysis was initially requested for 74.3% of the chorionic villus (CV) samples and 45% of the amniotic fluid (AF) samples. In case WES-CNV analysis did not reveal a causative aberration, SNV-re-analysis was requested in 41.7% of the CV samples and 17.5% of the AF samples. All initial analyses could be finished within 2 weeks after sampling. For SNV-re-analysis during pregnancy, turn-around-times (TATs) varied between one and 8 days. CONCLUSION: We show a highly efficient all-in-one WES-based strategy, with short TATs, and the option of rapid SNV-re-analysis after a normal CNV result.


Subject(s)
DNA Copy Number Variations , Fetus , Pregnancy , Female , Humans , Exome Sequencing , Heterozygote , Fetus/diagnostic imaging , Fetus/abnormalities , Nucleotides
3.
Am J Hum Genet ; 104(1): 139-156, 2019 01 03.
Article in English | MEDLINE | ID: mdl-30595372

ABSTRACT

Type 2A protein phosphatases (PP2As) are highly expressed in the brain and regulate neuronal signaling by catalyzing phospho-Ser/Thr dephosphorylations in diverse substrates. PP2A holoenzymes comprise catalytic C-, scaffolding A-, and regulatory B-type subunits, which determine substrate specificity and physiological function. Interestingly, de novo mutations in genes encoding A- and B-type subunits have recently been implicated in intellectual disability (ID) and developmental delay (DD). We now report 16 individuals with mild to profound ID and DD and a de novo mutation in PPP2CA, encoding the catalytic Cα subunit. Other frequently observed features were severe language delay (71%), hypotonia (69%), epilepsy (63%), and brain abnormalities such as ventriculomegaly and a small corpus callosum (67%). Behavioral problems, including autism spectrum disorders, were reported in 47% of individuals, and three individuals had a congenital heart defect. PPP2CA de novo mutations included a partial gene deletion, a frameshift, three nonsense mutations, a single amino acid duplication, a recurrent mutation, and eight non-recurrent missense mutations. Functional studies showed complete PP2A dysfunction in four individuals with seemingly milder ID, hinting at haploinsufficiency. Ten other individuals showed mutation-specific biochemical distortions, including poor expression, altered binding to the A subunit and specific B-type subunits, and impaired phosphatase activity and C-terminal methylation. Four were suspected to have a dominant-negative mechanism, which correlated with severe ID. Two missense variants affecting the same residue largely behaved as wild-type in our functional assays. Overall, we found that pathogenic PPP2CA variants impair PP2A-B56(δ) functionality, suggesting that PP2A-related neurodevelopmental disorders constitute functionally converging ID syndromes.


Subject(s)
Intellectual Disability/genetics , Mutation , Protein Phosphatase 2/genetics , Adolescent , Child , Child, Preschool , DNA Mutational Analysis , Female , HEK293 Cells , Haploinsufficiency/genetics , Humans , Male , Protein Binding/genetics , Protein Subunits/chemistry , Protein Subunits/metabolism , Syndrome
5.
PLoS Genet ; 13(10): e1006864, 2017 Oct.
Article in English | MEDLINE | ID: mdl-29069077

ABSTRACT

Kleefstra syndrome, caused by haploinsufficiency of euchromatin histone methyltransferase 1 (EHMT1), is characterized by intellectual disability (ID), autism spectrum disorder (ASD), characteristic facial dysmorphisms, and other variable clinical features. In addition to EHMT1 mutations, de novo variants were reported in four additional genes (MBD5, SMARCB1, NR1I3, and KMT2C), in single individuals with clinical characteristics overlapping Kleefstra syndrome. Here, we present a novel cohort of five patients with de novo loss of function mutations affecting the histone methyltransferase KMT2C. Our clinical data delineates the KMT2C phenotypic spectrum and reinforces the phenotypic overlap with Kleefstra syndrome and other related ID disorders. To elucidate the common molecular basis of the neuropathology associated with mutations in KMT2C and EHMT1, we characterized the role of the Drosophila KMT2C ortholog, trithorax related (trr), in the nervous system. Similar to the Drosophila EHMT1 ortholog, G9a, trr is required in the mushroom body for short term memory. Trr ChIP-seq identified 3371 binding sites, mainly in the promoter of genes involved in neuronal processes. Transcriptional profiling of pan-neuronal trr knockdown and G9a null mutant fly heads identified 613 and 1123 misregulated genes, respectively. These gene sets show a significant overlap and are associated with nearly identical gene ontology enrichments. The majority of the observed biological convergence is derived from predicted indirect target genes. However, trr and G9a also have common direct targets, including the Drosophila ortholog of Arc (Arc1), a key regulator of synaptic plasticity. Our data highlight the clinical and molecular convergence between the KMT2 and EHMT protein families, which may contribute to a molecular network underlying a larger group of ID/ASD-related disorders.


Subject(s)
Autism Spectrum Disorder/genetics , Craniofacial Abnormalities/genetics , Cytoskeletal Proteins/genetics , DNA-Binding Proteins/genetics , Drosophila Proteins/genetics , Heart Defects, Congenital/genetics , Histone-Lysine N-Methyltransferase/genetics , Intellectual Disability/genetics , Nerve Tissue Proteins/genetics , Adolescent , Adult , Animals , Autism Spectrum Disorder/physiopathology , Binding Sites/genetics , Child , Chromosome Deletion , Chromosomes, Human, Pair 9/genetics , Constitutive Androstane Receptor , Craniofacial Abnormalities/physiopathology , Drosophila melanogaster/genetics , Female , Gene Expression Regulation , Haploinsufficiency , Heart Defects, Congenital/physiopathology , Histones/genetics , Humans , Intellectual Disability/physiopathology , Male , Mutation , Neuronal Plasticity/genetics , Promoter Regions, Genetic
6.
Hum Mutat ; 2019 Oct 23.
Article in English | MEDLINE | ID: mdl-31646703

ABSTRACT

We recently described a new neurodevelopmental syndrome (TAF1/MRXS33 intellectual disability syndrome) (MIM# 300966) caused by pathogenic variants involving the X-linked gene TAF1, which participates in RNA polymerase II transcription. The initial study reported eleven families, and the syndrome was defined as presenting early in life with hypotonia, facial dysmorphia, and developmental delay that evolved into intellectual disability (ID) and/or autism spectrum disorder (ASD). We have now identified an additional 27 families through a genotype-first approach. Familial segregation analysis, clinical phenotyping, and bioinformatics were capitalized on to assess potential variant pathogenicity, and molecular modelling was performed for those variants falling within structurally characterized domains of TAF1. A novel phenotypic clustering approach was also applied, in which the phenotypes of affected individuals were classified using 51 standardized Human Phenotype Ontology (HPO) terms. Phenotypes associated with TAF1 variants show considerable pleiotropy and clinical variability, but prominent among previously unreported effects were brain morphological abnormalities, seizures, hearing loss, and heart malformations. Our allelic series broadens the phenotypic spectrum of TAF1/MRXS33 intellectual disability syndrome and the range of TAF1 molecular defects in humans. It also illustrates the challenges for determining the pathogenicity of inherited missense variants, particularly for genes mapping to chromosome X. This article is protected by copyright. All rights reserved.

7.
Haemophilia ; 25(1): 127-135, 2019 Jan.
Article in English | MEDLINE | ID: mdl-30431218

ABSTRACT

INTRODUCTION: Bleeding assessment tools and laboratory phenotyping often remain inconclusive in patients with a haemorrhagic diathesis. AIM: To describe the phenotype and genetic profile of patients with a bleeding tendency. METHODS: Whole exome sequencing (WES) was incorporated in the routine diagnostic pathway of patients with thrombocytopenia (n = 17), platelet function disorders (n = 19) and an unexplained bleeding tendency (n = 51). The analysis of a panel of 126 OMIM (Online Mendelian Inheritance in Man) genes involved in thrombosis and haemostasis was conducted, and if negative, further exome-wide analysis was performed if informed consent given. RESULTS: Eighteen variants were detected in 15 patients from a total of 87 patients (17%). Causative variants were observed in MYH9 (two cases), SLFN14, P2RY12 and GP9. In addition, one case was considered solved due to combined carriership of F7 and F13A1 variants and one with combined carriership of F2, F8 and VWF, all variants related to secondary haemostasis protein aberrations. Two variants of uncertain significance (VUS) were found in two primary haemostasis genes: GFI1B and VWF. Eight patients were carriers of autosomal recessive disorders. Exome-wide analysis was performed in 54 cases and identified three variants in candidate genes. CONCLUSION: Based on our findings, we conclude that performing WES at the end of the diagnostic trajectory can be of additive value to explain the complete bleeding phenotype in patients without a definite diagnosis after conventional laboratory tests. Discovery of combinations of (novel) genes that predispose to bleeding will increase the diagnostic yield in patients with an unexplained bleeding diathesis.


Subject(s)
Exome Sequencing/methods , Hemorrhagic Disorders/diagnosis , Adult , Endoribonucleases/genetics , Factor VII/genetics , Factor VIII/genetics , Female , Genetic Predisposition to Disease , Genotype , Hemorrhagic Disorders/genetics , Humans , Male , Middle Aged , Molecular Motor Proteins/genetics , Myosin Heavy Chains/genetics , von Willebrand Factor/genetics
8.
Am J Hum Genet ; 97(6): 904-13, 2015 Dec 03.
Article in English | MEDLINE | ID: mdl-26637980

ABSTRACT

Meier-Gorlin syndrome (MGS) is a genetically heterogeneous primordial dwarfism syndrome known to be caused by biallelic loss-of-function mutations in one of five genes encoding pre-replication complex proteins: ORC1, ORC4, ORC6, CDT1, and CDC6. Mutations in these genes cause disruption of the origin of DNA replication initiation. To date, only an autosomal-recessive inheritance pattern has been described in individuals with this disorder, with a molecular etiology established in about three-fourths of cases. Here, we report three subjects with MGS and de novo heterozygous mutations in the 5' end of GMNN, encoding the DNA replication inhibitor geminin. We identified two truncating mutations in exon 2 (the 1(st) coding exon), c.16A>T (p.Lys6(∗)) and c.35_38delTCAA (p.Ile12Lysfs(∗)4), and one missense mutation, c.50A>G (p.Lys17Arg), affecting the second-to-last nucleotide of exon 2 and possibly RNA splicing. Geminin is present during the S, G2, and M phases of the cell cycle and is degraded during the metaphase-anaphase transition by the anaphase-promoting complex (APC), which recognizes the destruction box sequence near the 5' end of the geminin protein. All three GMNN mutations identified alter sites 5' to residue Met28 of the protein, which is located within the destruction box. We present data supporting a gain-of-function mechanism, in which the GMNN mutations result in proteins lacking the destruction box and hence increased protein stability and prolonged inhibition of replication leading to autosomal-dominant MGS.


Subject(s)
Congenital Microtia/genetics , Dwarfism/genetics , Geminin/genetics , Growth Disorders/genetics , Micrognathism/genetics , Mutation , Patella/abnormalities , Adolescent , Amino Acid Sequence , Base Sequence , Cell Cycle/genetics , Child, Preschool , Congenital Microtia/metabolism , Dwarfism/metabolism , Dwarfism/pathology , Exons , Female , Geminin/metabolism , Gene Expression , Genes, Dominant , Growth Disorders/metabolism , Heterozygote , High-Throughput Nucleotide Sequencing , Humans , Inheritance Patterns , Male , Micrognathism/metabolism , Molecular Sequence Data , Patella/metabolism , Pedigree , Protein Stability , Proteolysis , RNA Splicing , Sequence Alignment
10.
J Med Genet ; 53(8): 523-32, 2016 08.
Article in English | MEDLINE | ID: mdl-27075013

ABSTRACT

BACKGROUND: AUTS2 syndrome is an 'intellectual disability (ID) syndrome' caused by genomic rearrangements, deletions, intragenic duplications or mutations disrupting AUTS2. So far, 50 patients with AUTS2 syndrome have been described, but clinical data are limited and almost all cases involved young children. METHODS: We present a detailed clinical description of 13 patients (including six adults) with AUTS2 syndrome who have a pathogenic mutation or deletion in AUTS2. All patients were systematically evaluated by the same clinical geneticist. RESULTS: All patients have borderline to severe ID/developmental delay, 83-100% have microcephaly and feeding difficulties. Congenital malformations are rare, but mild heart defects, contractures and genital malformations do occur. There are no major health issues in the adults; the oldest of whom is now 59 years of age. Behaviour is marked by it is a friendly outgoing social interaction. Specific features of autism (like obsessive behaviour) are seen frequently (83%), but classical autism was not diagnosed in any. A mild clinical phenotype is associated with a small in-frame 5' deletions, which are often inherited. Deletions and other mutations causing haploinsufficiency of the full-length AUTS2 transcript give a more severe phenotype and occur de novo. CONCLUSIONS: The 13 patients with AUTS2 syndrome with unique pathogenic deletions scattered around the AUTS2 locus confirm a phenotype-genotype correlation. Despite individual variations, AUTS2 syndrome emerges as a specific ID syndrome with microcephaly, feeding difficulties, dysmorphic features and a specific behavioural phenotype.


Subject(s)
Intellectual Disability/genetics , Mental Disorders/genetics , Proteins/genetics , Adult , Child , Child, Preschool , Cytoskeletal Proteins , Exons/genetics , Female , Genetic Association Studies/methods , Haploinsufficiency/genetics , Humans , Infant , Male , Microcephaly/genetics , Middle Aged , Mutation/genetics , Phenotype , Sequence Deletion/genetics , Syndrome , Transcription Factors , Young Adult
11.
Hum Mutat ; 36(1): 69-78, 2015 Jan.
Article in English | MEDLINE | ID: mdl-25265257

ABSTRACT

KIF1A is a neuron-specific motor protein that plays important roles in cargo transport along neurites. Recessive mutations in KIF1A were previously described in families with spastic paraparesis or sensory and autonomic neuropathy type-2. Here, we report 11 heterozygous de novo missense mutations (p.S58L, p.T99M, p.G102D, p.V144F, p.R167C, p.A202P, p.S215R, p.R216P, p.L249Q, p.E253K, and p.R316W) in KIF1A in 14 individuals, including two monozygotic twins. Two mutations (p.T99M and p.E253K) were recurrent, each being found in unrelated cases. All these de novo mutations are located in the motor domain (MD) of KIF1A. Structural modeling revealed that they alter conserved residues that are critical for the structure and function of the MD. Transfection studies suggested that at least five of these mutations affect the transport of the MD along axons. Individuals with de novo mutations in KIF1A display a phenotype characterized by cognitive impairment and variable presence of cerebellar atrophy, spastic paraparesis, optic nerve atrophy, peripheral neuropathy, and epilepsy. Our findings thus indicate that de novo missense mutations in the MD of KIF1A cause a phenotype that overlaps with, while being more severe, than that associated with recessive mutations in the same gene.


Subject(s)
Cognition Disorders/genetics , Kinesins/chemistry , Kinesins/genetics , Nervous System Diseases/genetics , Paraparesis, Spastic/genetics , Adolescent , Adult , Child , Child, Preschool , Cognition Disorders/pathology , Epilepsy/genetics , Epilepsy/pathology , Hereditary Sensory and Autonomic Neuropathies/genetics , Hereditary Sensory and Autonomic Neuropathies/pathology , Humans , Male , Models, Molecular , Mutation, Missense , Nervous System Diseases/pathology , Paraparesis, Spastic/pathology , Peripheral Nervous System Diseases/genetics , Peripheral Nervous System Diseases/pathology , Protein Structure, Tertiary , Young Adult
12.
Hum Genet ; 134(1): 97-109, 2015 Jan.
Article in English | MEDLINE | ID: mdl-25326669

ABSTRACT

Recently, de novo heterozygous loss-of-function mutations in beta-catenin (CTNNB1) were described for the first time in four individuals with intellectual disability (ID), microcephaly, limited speech and (progressive) spasticity, and functional consequences of CTNNB1 deficiency were characterized in a mouse model. Beta-catenin is a key downstream component of the canonical Wnt signaling pathway. Somatic gain-of-function mutations have already been found in various tumor types, whereas germline loss-of-function mutations in animal models have been shown to influence neuronal development and maturation. We report on 16 additional individuals from 15 families in whom we newly identified de novo loss-of-function CTNNB1 mutations (six nonsense, five frameshift, one missense, two splice mutation, and one whole gene deletion). All patients have ID, motor delay and speech impairment (both mostly severe) and abnormal muscle tone (truncal hypotonia and distal hypertonia/spasticity). The craniofacial phenotype comprised microcephaly (typically -2 to -4 SD) in 12 of 16 and some overlapping facial features in all individuals (broad nasal tip, small alae nasi, long and/or flat philtrum, thin upper lip vermillion). With this detailed phenotypic characterization of 16 additional individuals, we expand and further establish the clinical and mutational spectrum of inactivating CTNNB1 mutations and thereby clinically delineate this new CTNNB1 haploinsufficiency syndrome.


Subject(s)
Intellectual Disability/genetics , Microcephaly/genetics , Mutation/genetics , beta Catenin/genetics , Child , Child, Preschool , Female , Follow-Up Studies , Haploinsufficiency , Humans , Infant , Intellectual Disability/pathology , Male , Microcephaly/pathology , Phenotype , Syndrome
13.
Am J Med Genet A ; 164A(11): 2707-23, 2014 Nov.
Article in English | MEDLINE | ID: mdl-25123976

ABSTRACT

22q11.2 deletion syndrome is one of the most common microdeletion syndromes. Most patients have a deletion resulting from a recombination of low copy repeat blocks LCR22-A and LCR22-D. Loss of the TBX1 gene is considered the most important cause of the phenotype. A limited number of patients with smaller, overlapping deletions distal to the TBX1 locus have been described in the literature. In these patients, the CRKL gene is deleted. Haploinsufficiency of this gene has also been implicated in the pathogenesis of 22q11.2 deletion syndrome. To distinguish these deletions (comprising the LCR22-B to LCR22-D region) from the more distal 22q11.2 deletions (located beyond LCR22-D), we propose the term "central 22q11.2 deletions". In the present study we report on 27 new patients with such a deletion. Together with information on previously published cases, we review the clinical findings of 52 patients. The prevalence of congenital heart anomalies and the frequency of de novo deletions in patients with a central deletion are substantially lower than in patients with a common or distal 22q11.2 deletion. Renal and urinary tract malformations, developmental delays, cognitive impairments and behavioral problems seem to be equally frequent as in patients with a common deletion. None of the patients had a cleft palate. Patients with a deletion that also encompassed the MAPK1 gene, located just distal to LCR22-D, have a different and more severe phenotype, characterized by a higher prevalence of congenital heart anomalies, growth restriction and microcephaly. Our results further elucidate genotype-phenotype correlations in 22q11.2 deletion syndrome spectrum.


Subject(s)
DiGeorge Syndrome/diagnosis , DiGeorge Syndrome/genetics , Adolescent , Adult , Child , Child, Preschool , Facies , Family , Female , Gene Order , Genetic Loci , Humans , Male , Phenotype , Prenatal Diagnosis , Young Adult
14.
Horm Res Paediatr ; 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38952118

ABSTRACT

Introduction The clinical features of bi-allelic IGF1 defects are well established, i.e. severe growth failure and microcephaly, delayed psychomotor development, and sensorineural deafness. However, information on clinical and endocrine consequences of heterozygous IGF1 variants and treatment options is scarce. We aimed at extending the knowledge base of the clinical presentation and growth response to recombinant human growth hormone (rhGH) of patients carrying such variants. Methods Retrospective case series of patients with pathogenic heterozygous IGF1 variants. Results Nine patients from six families were included, harbouring five whole or partial gene deletions and one frameshift variant resulting in a premature stop codon (three de novo, one unknown inheritance). In the other two families variants segregated with short stature. Mean (SD) birth length was -1.9 (1.3) SDS (n=7), height -3.8 (0.6) SDS, head circumference -2.5 (0.6) SDS, serum IGF-I -1.9 (0.7) SDS, serum IGFBP-3 1.1 (0.4) SDS (n=7) and GH peak range 5-31 µg/L (n=4). Five patients showed feeding problems in infancy. Average height increased after 1 and 2 years of rhGH treatment by 0.8 SDS (range 0.3-1.3 SDS) and 1.3 SDS (range 0.5-2.0 SDS), respectively. Adult height in two patients was -2.8 and -1.3 SDS, which was respectively 1.3 and 2.9 SDS taller than predicted before start of treatment. Conclusion Haploinsufficiency of IGF1 causes a variable phenotype of prenatal and postnatal growth failure, microcephaly, feeding difficulties, low/low-normal serum IGF-I values in contrast to serum IGFBP-3 in the upper-normal range. Treatment with rhGH increased growth in the first two years of treatment, and in two patients adult height after treatment was higher than predicted at treatment initiation.

15.
Circ Genom Precis Med ; 17(2): e004416, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38516780

ABSTRACT

BACKGROUND: Preimplantation genetic testing (PGT) is a reproductive technology that selects embryos without (familial) genetic variants. PGT has been applied in inherited cardiac disease and is included in the latest American Heart Association/American College of Cardiology guidelines. However, guidelines selecting eligible couples who will have the strongest risk reduction most from PGT are lacking. We developed an objective decision model to select eligibility for PGT and compared its results with those from a multidisciplinary team. METHODS: All couples with an inherited cardiac disease referred to the national PGT center were included. A multidisciplinary team approved or rejected the indication based on clinical and genetic information. We developed a decision model based on published risk prediction models and literature, to evaluate the severity of the cardiac phenotype and the penetrance of the familial variant in referred patients. The outcomes of the model and the multidisciplinary team were compared in a blinded fashion. RESULTS: Eighty-three couples were referred for PGT (1997-2022), comprising 19 different genes for 8 different inherited cardiac diseases (cardiomyopathies and arrhythmias). Using our model and proposed cutoff values, a definitive decision was reached for 76 (92%) couples, aligning with 95% of the multidisciplinary team decisions. In a prospective cohort of 11 couples, we showed the clinical applicability of the model to select couples most eligible for PGT. CONCLUSIONS: The number of PGT requests for inherited cardiac diseases increases rapidly, without the availability of specific guidelines. We propose a 2-step decision model that helps select couples with the highest risk reduction for cardiac disease in their offspring after PGT.


Subject(s)
Clinical Decision-Making , Genetic Diseases, Inborn , Genetic Testing , Heart Diseases , Preimplantation Diagnosis , Referral and Consultation , Female , Humans , Genetic Testing/methods , Heart Diseases/congenital , Heart Diseases/diagnosis , Heart Diseases/genetics , Heart Diseases/prevention & control , Preimplantation Diagnosis/methods , Male , Clinical Decision-Making/methods , Arrhythmias, Cardiac/diagnosis , Arrhythmias, Cardiac/genetics , Cardiomyopathies/diagnosis , Cardiomyopathies/genetics , Risk Management , Genetic Diseases, Inborn/diagnosis , Genetic Diseases, Inborn/genetics , Genetic Diseases, Inborn/prevention & control , Heterozygote , Prospective Studies , Family Characteristics
16.
Nat Commun ; 15(1): 1640, 2024 Feb 22.
Article in English | MEDLINE | ID: mdl-38388531

ABSTRACT

THOC6 variants are the genetic basis of autosomal recessive THOC6 Intellectual Disability Syndrome (TIDS). THOC6 is critical for mammalian Transcription Export complex (TREX) tetramer formation, which is composed of four six-subunit THO monomers. The TREX tetramer facilitates mammalian RNA processing, in addition to the nuclear mRNA export functions of the TREX dimer conserved through yeast. Human and mouse TIDS model systems revealed novel THOC6-dependent, species-specific TREX tetramer functions. Germline biallelic Thoc6 loss-of-function (LOF) variants result in mouse embryonic lethality. Biallelic THOC6 LOF variants reduce the binding affinity of ALYREF to THOC5 without affecting the protein expression of TREX members, implicating impaired TREX tetramer formation. Defects in RNA nuclear export functions were not detected in biallelic THOC6 LOF human neural cells. Instead, mis-splicing was detected in human and mouse neural tissue, revealing novel THOC6-mediated TREX coordination of mRNA processing. We demonstrate that THOC6 is required for key signaling pathways known to regulate the transition from proliferative to neurogenic divisions during human corticogenesis. Together, these findings implicate altered RNA processing in the developmental biology of TIDS neuropathology.


Subject(s)
Intellectual Disability , RNA , Stilbenes , Sulfonic Acids , Humans , Animals , Mice , RNA/metabolism , Intellectual Disability/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA Processing, Post-Transcriptional , RNA Transport , Mammals/genetics , Nuclear Proteins/metabolism , RNA-Binding Proteins/genetics , RNA-Binding Proteins/metabolism
17.
Res Sq ; 2023 Sep 06.
Article in English | MEDLINE | ID: mdl-37720017

ABSTRACT

THOC6 is the genetic basis of autosomal recessive THOC6 Intellectual Disability Syndrome (TIDS). THOC6 facilitates the formation of the Transcription Export complex (TREX) tetramer, composed of four THO monomers. The TREX tetramer supports mammalian mRNA processing that is distinct from yeast TREX dimer functions. Human and mouse TIDS model systems allow novel THOC6-dependent TREX tetramer functions to be investigated. Biallelic loss-of-functon(LOF) THOC6 variants do not influence the expression and localization of TREX members in human cells, but our data suggests reduced binding affinity of ALYREF. Impairment of TREX nuclear export functions were not detected in cells with biallelic THOC6 LOF. Instead, mRNA mis-splicing was observed in human and mouse neural tissue, revealing novel insights into THOC6-mediated TREX coordination of mRNA processing. We demonstrate that THOC6 is required for regulation of key signaling pathways in human corticogenesis that dictate the transition from proliferative to neurogenic divisions that may inform TIDS neuropathology.

18.
Am J Med Genet A ; 158A(11): 2733-42, 2012 Nov.
Article in English | MEDLINE | ID: mdl-23023959

ABSTRACT

Meier-Gorlin syndrome (MGS) is a rare autosomal recessive disorder characterized by primordial dwarfism, microtia, and patellar aplasia/hypoplasia. Recently, mutations in the ORC1, ORC4, ORC6, CDT1, and CDC6 genes, encoding components of the pre-replication complex, have been identified. This complex is essential for DNA replication and therefore mutations are expected to impair cell proliferation and consequently could globally reduce growth. However, detailed growth characteristics of MGS patients have not been reported, and so this is addressed here through study of 45 MGS patients, the largest cohort worldwide. Here, we report that growth velocity (length) is impaired in MGS during pregnancy and first year of life, but, thereafter, height increases in paralleled normal reference centiles, resulting in a mean adult height of -4.5 standard deviations (SD). Height is dependent on ethnic background and underlying molecular cause, with ORC1 and ORC4 mutations causing more severe short stature and microcephaly. Growth hormone therapy (n = 9) was generally ineffective, though in two patients with significantly reduced IGF1 levels, growth was substantially improved by GH treatment, with 2SD and 3.8 SD improvement in height. Growth parameters for monitoring growth in future MGS patients are provided and as well we highlight that growth is disproportionately affected in certain structures, with growth related minor genital abnormalities (42%) and mammary hypoplasia (100%) frequently present, in addition to established effects on ears and patellar growth.


Subject(s)
Growth Charts , Growth Disorders/diagnosis , Micrognathism/diagnosis , Sexual Development , Cell Cycle Proteins/genetics , Child, Preschool , Cohort Studies , Congenital Microtia , Ear/abnormalities , Female , Growth Disorders/drug therapy , Growth Disorders/genetics , Human Growth Hormone/blood , Human Growth Hormone/therapeutic use , Humans , Infant , Male , Micrognathism/drug therapy , Micrognathism/genetics , Mutation , Origin Recognition Complex/genetics , Patella/abnormalities , Sexual Development/genetics , Urogenital Abnormalities
19.
Elife ; 112022 Oct 17.
Article in English | MEDLINE | ID: mdl-36250618

ABSTRACT

Background: De novo variants (DNVs) are currently not routinely evaluated as part of diagnostic whole exome sequencing (WES) analysis in patients with suspected inborn errors of immunity (IEI). Methods: This study explored the potential added value of systematic assessment of DNVs in a retrospective cohort of 123 patients with a suspected sporadic IEI that underwent patient-parent trio-based WES. Results: A (likely) molecular diagnosis for (part) of the immunological phenotype was achieved in 12 patients with the diagnostic in silico IEI WES gene panel. Systematic evaluation of rare, non-synonymous DNVs in coding or splice site regions led to the identification of 14 candidate DNVs in genes with an annotated immune function. DNVs were found in IEI genes (NLRP3 and RELA) and in potentially novel candidate genes, including PSMB10, DDX1, KMT2C, and FBXW11. The FBXW11 canonical splice site DNV was shown to lead to defective RNA splicing, increased NF-κB p65 signalling, and elevated IL-1ß production in primary immune cells extracted from the patient with autoinflammatory disease. Conclusions: Our findings in this retrospective cohort study advocate the implementation of trio-based sequencing in routine diagnostics of patients with sporadic IEI. Furthermore, we provide functional evidence supporting a causal role for FBXW11 loss-of-function mutations in autoinflammatory disease. Funding: This research was supported by grants from the European Union, ZonMW and the Radboud Institute for Molecular Life Sciences.


Subject(s)
Exome , Hereditary Autoinflammatory Diseases , Humans , Exome Sequencing , Retrospective Studies , Sequence Analysis, DNA , Hereditary Autoinflammatory Diseases/genetics
20.
Eur J Hum Genet ; 29(7): 1110-1120, 2021 07.
Article in English | MEDLINE | ID: mdl-33654309

ABSTRACT

The MCM2-7 helicase is a heterohexameric complex with essential roles as part of both the pre-replication and pre-initiation complexes in the early stages of DNA replication. Meier-Gorlin syndrome, a rare primordial dwarfism, is strongly associated with disruption to the pre-replication complex, including a single case described with variants in MCM5. Conversely, a biallelic pathogenic variant in MCM4 underlies immune deficiency with growth retardation, features also seen in individuals with pathogenic variants in other pre-initiation complex encoding genes such as GINS1, MCM10, and POLE. Through exome and chromium genome sequencing, supported by functional studies, we identify biallelic pathogenic variants in MCM7 and a strong candidate biallelic pathogenic variant in MCM3. We confirm variants in MCM7 are deleterious and through interfering with MCM complex formation, impact efficiency of S phase progression. The associated phenotypes are striking; one patient has typical Meier-Gorlin syndrome, whereas the second case has a multi-system disorder with neonatal progeroid appearance, lipodystrophy and adrenal insufficiency. We provide further insight into the developmental complexity of disrupted MCM function, highlighted by two patients with a similar variant profile in MCM7 but disparate clinical features. Our results build on other genetic findings linked to disruption of the pre-replication and pre-initiation complexes, and the replisome, and expand the complex clinical genetics landscape emerging due to disruption of DNA replication.


Subject(s)
Adrenal Insufficiency/diagnosis , Adrenal Insufficiency/genetics , Congenital Microtia/diagnosis , Congenital Microtia/genetics , Growth Disorders/diagnosis , Growth Disorders/genetics , Lipodystrophy/diagnosis , Lipodystrophy/genetics , Micrognathism/diagnosis , Micrognathism/genetics , Minichromosome Maintenance Complex Component 3/genetics , Minichromosome Maintenance Complex Component 7/genetics , Patella/abnormalities , Adolescent , Alleles , Amino Acid Sequence , Cell Cycle/genetics , Child , Child, Preschool , Facies , Female , Genetic Association Studies , Genetic Predisposition to Disease , Genetic Variation , Genotype , Humans , Infant , Male , Minichromosome Maintenance Complex Component 3/chemistry , Minichromosome Maintenance Complex Component 7/chemistry , Models, Molecular , New Zealand , Phenotype , Protein Conformation
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