Mutation or uniparental disomy? Evaluating abnormal inheritance patterns using Object-Oriented Bayesian Networks.
Mutation or uniparental disomy? Evaluating abnormal inheritance patterns using Object-Oriented Bayesian Networks.
- Research Article
11
- 10.1002/mgg3.1792
- Sep 29, 2021
- Molecular Genetics & Genomic Medicine
BackgroundUniparental disomy (UPD) is the inheritance of two homologous chromosomes from the same parent. UPD may result in clinical phenotypes when occurring on chromosomes with specific imprinting pattern, when leading to homozygosity of a deleterious recessive allele inherited from one carrier parent, or when associated with a mosaic aneuploidy. Due to the importance of UPD in genetic disease etiology, UPD analysis has started to be implemented in the context of exome sequencing (ES) or genome sequencing.MethodsWe developed an in‐house algorithm TRIPS (Trio Parentage/UPD Studies) to identify UPD events in trio ES cases. This method identifies regions with uniparental inheritance by utilizing the trio genotyping data obtained from the concurrent SNP array to delineate the parental origin of the SNPs in the proband.ResultsWe identified 16 UPD events from 2675 ES trios. Among those, four events led to imprinting disorders, seven unmasked a pathogenic/likely pathogenic variant in a recessive disease gene, and two were consistent with a mosaic genome wide paternal UPD pattern. Twelve of these UPD events directly contributed to the molecular diagnosis of the patients.ConclusionOur study demonstrated the contribution of UPD to the molecular diagnosis in one clinical ES cohort, thus UPD analysis should be incorporated into routine clinical ES interpretation.
- Research Article
53
- 10.1038/s41436-020-01092-8
- Jan 1, 2021
- Genetics in Medicine
PurposeData on the clinical prevalence and spectrum of uniparental disomy (UPD) remain limited. Trio exome sequencing (ES) presents a comprehensive method for detection of UPD alongside sequence and copy-number variant analysis. MethodsWe analyzed 32,067 ES trios referred for diagnostic testing to create a profile of UPD events and their disease associations. ES single-nucleotide polymorphism (SNP) and copy-number data were used to identify both whole-chromosome and segmental UPD and to categorize whole-chromosome results as isodisomy, heterodisomy, or mixed. ResultsNinety-nine whole-chromosome and 13 segmental UPD events were identified. Of these, 29 were associated with an imprinting disorder, and 16 were associated with a positive test result through homozygous sequence variants. Isodisomy was more commonly observed in large chromosomes along with a higher rate of homozygous pathogenic variants, while heterodisomy was more frequent in chromosomes associated with imprinting or trisomy mosaicism (14, 15, 16, 20, 22). ConclusionWhole-chromosome UPD was observed in 0.31% of cases, resulting in a diagnostic finding in 0.14%. Only three UPD-positive cases had a diagnostic finding unrelated to the UPD. Thirteen UPD events were identified in cases with prior normal SNP chromosomal microarray results, demonstrating the additional diagnostic value of UPD detection by trio ES.
- Research Article
5
- 10.1016/j.legalmed.2023.102381
- Dec 22, 2023
- Legal Medicine
Effect of uniparental disomy in parentage testing
- Research Article
10
- 10.1007/s00414-019-02215-w
- Dec 6, 2019
- International Journal of Legal Medicine
Uniparental disomy (UPD) has attracted more attention recently in paternity testing, though it is an infrequent genetic event. Although short tandem repeat (STR) profiling has been widely used in paternity testing, it is not sufficient to use STR only to judge the genetic relationship, because the existence of UPD will inevitably affect the results of genotyping. Compared with complete UPD, segmental UPD is more difficult to detect because it does not affect all genotypes on the same chromosome. It is necessary to determine the type of UPD with multiple methods because a single method is not sufficient. Therefore, it is advisable to detect UPD in paternity testing with multiple methods. In this study, after autosomal STR profiling was used, we found that there were several gene loci on the same chromosome that did not conform to Mendelian genetic law, thus we highly suspected the existence of UPD and performed X-STR profiling immediately. Then whole-genome single nucleotide polymorphism (SNP) array analysis was performed to identify the type, and the results provided straightforward evidence for distinguishing complete from segmental UPD. Lastly, we used deletion insertion polymorphism (DIP)-SNP SNaPshot assay and Miseq FGx sequencing (for SNP and STR) to determine whether the mutation source is maternal uniparental disomy (mUPD) or paternal uniparental disomy (pUPD). To avoid false exclusion of kinship, it is vital to determine the type of UPD in paternity testing and effective strategies based on multiple methods to detect the type of UPD are provided in this study.
- Research Article
16
- 10.1210/jc.2012-1980
- Aug 31, 2012
- The Journal of Clinical Endocrinology & Metabolism
Silver-Russell syndrome (SRS; online inheritance in man 180860) is a low-birth-weight syndrome characterized by postnatal growth restriction and variable dysmorphic features. Although maternal uniparental disomy (UPD) of chromosome 7 and hypomethylation of H19 have been reported in up to 50% of all cases, no unifying mechanism is apparent. Ten patients and their parents were studied using the Illumina GoldenGate methylation array and the Illumina 370K HumHap single-nucleotide polymorphism array to identify aberrations in DNA methylation as well as genomic changes including copy number changes and uniparental disomy events. We found evidence of UPD events outside chromosome 7 in all patients. In up to 30% of patients with SRS, DNA methylation changes occur in imprinted gene loci outside 11p15.5 (PEG3, PLAGL1, and GRB10), not previously consistently linked with SRS. Furthermore, hypermethylation of GRB10 was associated with increased mRNA expression. In addition, 20% of patients appear to have DNA methylation abnormalities within multiple loci. Not all the imprinted loci with methylation defects were affected directly by UPD. The association of widespread UPD associated with abnormal methylation and mRNA expression in imprinted genes in SRS is consistent with the concept of UPD as an initial genomic abnormality leading to unstable DNA methylation within the regulatory network of imprinted genes. Furthermore, disruption of any one of these genes may contribute to the heterogeneous clinical spectrum of SRS.
- Research Article
1
- 10.3785/j.issn.1008-9292.2019.10.15
- Jul 25, 2019
- Zhejiang da xue xue bao. Yi xue ban = Journal of Zhejiang University. Medical sciences
Uniparental disomy (UPD) refers to a chromosome defect that an individual's homologous chromosome or segments are inherited from one parent. UPD can cause either aberrant patterns of genomic imprinting or homozygosity of mutations, leading to various diseases, including cancer. The mechanisms of UPD formation are diverse but largely due to the incorrect chromosome separation during cell division. UPD does not alter the number of gene copies, thus is difficult to be detected by conventional cytogenetic techniques effectively. Assisted by the new techniques such as single nucleotide polymorphism arrays, more and more UPD-related cases have been reported recently. UPD events are non-randomly distributed across cancer types, which play important role in the occurrence, development and metastasis of cancer. Here we review the research progress on the formation mechanisms, detection methods, the involved chromosomal regions and genes, and clinical significance of UPD; and also discuss the directions for future studies in this field.
- Research Article
- 10.1182/blood-2025-746
- Nov 3, 2025
- Blood
Polyclonal somatic gene rescue via uniparental disomy confers multilineage hematopoietic potential in treatment-independent patients with DBA syndrome
- Research Article
17
- 10.1016/j.ymgme.2011.11.196
- Dec 1, 2011
- Molecular Genetics and Metabolism
Morquio A syndrome due to Maternal Uniparental Isodisomy of the telomeric end of chromosome 16
- Research Article
1
- 10.3760/cma.j.issn.1003-9406.2019.09.021
- Sep 10, 2019
- Zhonghua yi xue yi chuan xue za zhi = Zhonghua yixue yichuanxue zazhi = Chinese journal of medical genetics
To explore the influence of uniparental disomy (UPD) on bipartite and tripartite paternity testing. Two cases of paternity testing were analyzed by multiplex amplification and capillary electrophoresis typing. Suspected UPD was verified by using single nucleotide polymorphism array (SNP array). Parental power index was calculated by using a bipartite or tripartite model. The two cases were found to harbor respectively three short tandem repeats on chromosome 2 and two short tandem repeats on chromosome 15. SNP array verified that both cases were of UPD. Case 1 had a parental power index of 122274987565.23 by a tripartite model, while case 2 had a parental power index of 13500.8463 by a bipartite model. Based on the technical specification, the conclusions supported a biological parent-child relationship in both cases. UPD may lead to misjudgment of paternity testing. The possibility of UPD should be considered when certain loci which do not conform to Mendelian inheritance have aggregated to one chromosome.
- Discussion
3
- 10.1080/08880018.2018.1546783
- Nov 17, 2018
- Pediatric Hematology and Oncology
Uniparental disomy (UPD) refers to a situation when a person inherits both homologs of a region or complete part of a chromosome from only one parent. Here, we present an unusual case of UPD in congenital severe factor (F) XIII deficiency. A 6-year-old girl experienced cephalhematoma and umbilical bleeding after birth and easy bruising, and postextraction bleeding since early infancy. FXIII activity was 0% [mother 53.7% and father 132.5% (normal 70–140%)] and the FXIII antigen level was 2.5% [mother 38.9% and father 151% (normal 75–155%)]. The washed platelet FXIII activity was 0.1% in the patient (normal 64–144%), suggesting a deficiency of FXIII-A subunit. The FXIII-A subunit genetic analysis detected a homozygous p.Arg382Ser mutation. A similar heterozygous mutation was detected in the mother but surprisingly, not in the father. Kinship was confirmed by a paternity test. To confirm the possibility of UPD, a test using four markers in the vicinity of the F13A1 gene revealed that she inherited duplicate mutations from a heterozygous mutation in her mother, presenting a unique case of unusual maternal segmental UPD in otherwise unexplained congenital (homozygous) severe FXIII deficiency. UPD as a rare cause of autosomal recessive bleeding disorder when only one parent is affected is critical for genetic counseling.
- Research Article
5
- 10.1038/s41598-023-50584-5
- Jan 2, 2024
- Scientific Reports
Fetal growth restriction (FGR), a leading cause of perinatal morbidity and mortality, is caused by fetal, maternal, and placental factors. Uniparental disomy (UPD) is a rare condition that leads to imprinting effects, low-level mosaic aneuploidies and homozygosity for pathogenic variants. In the present study, UPD events were detected in 5 women with FGR by trio exome sequencing (trio-WES) of a cohort of 150 FGR cases. Furthermore, noninvasive prenatal testing results of the 5 patients revealed a high risk of rare autosomal trisomy. Trio-WES showed no copy-number variations (CNVs) or nondisease-causing mutations associated with FGR. Among the 5 women with FGR, two showed gene imprinting, and two exhibited confined placental mosaicism (CPM) by copy number variant sequencing (CNV-seq). The present study showed that in FGR patients with UPD, the detection of imprinted genes and CPM could enhance the genetic diagnosis of FGR.
- Research Article
119
- 10.1002/pd.1384
- Feb 21, 2006
- Prenatal Diagnosis
Carriers of nonhomologous Robertsonian translocations (ROB) are at risk for having offspring with uniparental disomy (UPD). Although risk estimates have been calculated in several independent studies, the estimates have not been optimal because most studies are not of sufficient size and UPD events are rare. However, these collective data have provided the opportunity to derive an overall risk estimate for UPD in the fetus after the prenatal identification of a ROB.
- Abstract
1
- 10.1182/blood.v118.21.237.237
- Nov 18, 2011
- Blood
Assessment of Clonal Evolution in 42 AML with NPM1 Mutations by Molecular Characterization of Paired Diagnosis and Relapse Samples
- Research Article
30
- 10.1111/bjh.15688
- Nov 20, 2018
- British Journal of Haematology
Spontaneous remission in a Diamond-Blackfan anaemia patient due to a revertant uniparental disomy ablating a de novo RPS19 mutation.
- Research Article
16
- 10.1016/j.ymgme.2020.10.008
- Oct 16, 2020
- Molecular Genetics and Metabolism
Uniparental isodisomy as a cause of mitochondrial complex I respiratory chain disorder due to a novel splicing NDUFS4 mutation