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At least 19 recordsLinked to original sources

Focal segmental glomerulosclerosis in solitary kidney in WAGR syndrome.

WAGR syndrome consists of Wilms' tumour, aniridia, genitourinary malformations and mental retardation, and is associated with chromosomal microdeletion of 11p13. We report a case of young male, exhibiting several typical features of WAGR syndrome (e.g. WT, aniridia and genitourinary abnormalities), but missing some other (mental retardation and chromosomal abnormality absent). Renal biopsy performed in our patient for unexplained proteinuria showed focal segmental glomerulosclerosis, presumably of secondary origin; the decrease of proteinuria was achieved by the firm control of BP in conjunction with the reduction of body weight.

Adult↗

A 1.7-Mb YAC contig around the human BDNF gene (11p13): integration of the physical, genetic, and cytogenetic maps in relation to WAGR syndrome.

WAGR (Wilms tumor, aniridia, genito-urinary abnormalities, mental retardation) syndrome in humans is associated with deletions of the 11p13 region. The brain-derived neurotrophic factor (BDNF) gene maps to this region, and its deletion seems to contribute to the severity of the patients' mental retardation. Yeast artificial chromosomes (YACs) carrying the BDNF gene have been isolated and characterized. Localization of two known exons of this gene leads to a minimal estimation of its size of about 40 kb. Chimerism of the BDNF YACs has been investigated by fluorescence in situ hybridization and chromosome assignment on somatic cell hybrids. Using the BDNF gene, YAC end sequence tagged sites (STS), and Généthon microsatellite markers, we constructed a 1.7-Mb contig and refined the cytogenetic map at 11p13. The resulting integrated physical, genetic, and cytogenetic map constitutes a resource for the characterization of genes that may be involved in the WAGR syndrome.

Base Sequence↗

[Association between WAGR syndrome and diaphragmatic hernia].

Anomalies in WT-1 (Wilms' tumor gene), mapped to 11p13, cause Denys-Drash, Frasier and WAGR syndromes. WAGR syndrome is characterized by Wilms' tumor (W), aniridia (A), genitourinary anomalies (G) and mental retardation (R). In the early human fetus, WT-1 is expressed in the pleural and abdominal mesothelium, and consequently this gene may play a role in diaphragm development. The first report of an association between WAGR syndrome and congenital diaphragmatic hernia has recently been published. We present another infant with aniridia, left cryptorchidism with testicular dysgenesis, right-sided posterolateral diaphragmatic hernia and moderate psychomotor retardation, in whom genetic study showed a deletion of 11p13 and PAX-6, confirming the diagnosis of WAGR syndrome.

Hernia, Diaphragmatic↗

[WAGR syndrome: a case report].

OBJECTIVE: WAGR syndrome is a rare syndrome which involves microdeletions of the short arm of chromosome 11 at band 11p13. The clinical features are Wilms' tumor, amiridia, genitourinary abnormalities and mental retardation. There are very few reported cases. We report a new case of WAGR syndrome and review the literature. PATIENTS AND METHODS: Chromosome preparations were obtained from lymphocyte cultures of peripheral blood. For chromosome analysis GTG banding and fluorescent "in situ" hybridization (FISH) were used. RESULTS: Chromosomal analysis revealed deletion of p12-p13 bands. Our patient had bilateral aniridia, Wilms' tumor and cryptorquidia. CONCLUSIONS: The karyotype was 46, XY, del (11)(p12-p13). The p13 band deletion was the cause of the WAGR syndrome.

Chromosomes, Human, Pair 11↗

WAGR syndrome: a clinical review of 54 cases.

WAGR syndrome is a rare genetic disorder characterized by a de novo deletion of 11p13 and is clinically associated with Wilms' tumor, aniridia, genitourinary anomalies, and mental retardation (W-A-G-R). Although the genotypic defects in WAGR syndrome have been well established, the large variety of phenotypic manifestations of the syndrome has never been reported. We report on 54 cases of WAGR syndrome to demonstrate both the classical clinical signs and nonclassical manifestations found in a large population of individuals with this disorder. An understanding of WAGR syndrome and its clinical findings can provide important insight regarding the functions of the involved genetic region. Recommendations for diagnosis, evaluation, and surveillance of patients with WAGR syndrome are also presented.

Child↗

Morbid obesity and hyperphagia in the WAGR syndrome.

A 33-year-old man with WAGR syndrome is described with morbid obesity associated with hyperphagia and an apparent lack of satiety. It is possible that a gene associated with satiety is present at 11p13 although it is premature to conclude that obesity is a specific feature of WAGR syndrome.

Adult↗

Aniridia as part of a WAGR syndrome in a girl whose brother presented hypospadias.

Aniridia can arise as part of the WAGR syndrome (Wilms tumour. aniridia, genitourinary anomalies, and mental retardation), due to a deletion or chromosomal region 11p13. We report a girl with a complete WAGR syndrome, whose brother presented hypospadias. Cytogenetic, FISH and molecular studies showed a deletion in one chromosome 11 of the patient. No cytogenetic rearrangement or deletion affecting the genes included in this region (PAX6 and WT1) were observed in her brother and parents. This excludes a higher risk than that of the general population for developing Wilms tumour in the brother and supports that the presence of WAGR syndrome in the patient and hypospadias in her brother is a chance association. We conclude that the identification and definition of the deletions in the WAGR region, which include the WT1 locus are important in order to identify a high tumour risk in infant patients with aniridia including those without other WAGR anomalies.

Aniridia↗

Renal pathology in WAGR syndrome.

The Wilms' tumor-aniridia-genital anomalies-mental retardation (WAGR) syndrome is associated with an increased risk for developing Wilms' tumor. A right nephrectomy was performed following the diagnosis of Wilms' tumor in a 2-year-old girl with WAGR syndrome and chromosome 11, del 11p13. Pathologic examination revealed intralobar nephrogenic rests and a peripelvic multicystic mass, sharply delineated from the adjacent typical intralobar nephrogenic rests and renal parenchyma, which may represent a cystic Wilms' tumor (cystic partially differentiated nephroblastoma). We studied the expression of the H19 gene by in-situ hybridization performed on paraffin sections of the kidney. H19 is an imprinted maternally-expressed gene that is not translated to protein and functions as a regulatory RNA molecule. It is tightly linked with the paternally-imprinted gene of insulin-like growth factor 2. While IGF2 presumably plays a role in tumorigenesis of Wilms' tumor, H19 is not expressed in the majority of Wilms' tumors. The expression of H19 in the intralobar nephrogenic rests was found to be prominent in the component of the blastema and markedly reduced with differentiation to tubular structures similar to the fetal kidney. The differential diagnosis of hyperplastic intralobar nephrogenic rests from a small Wilms' tumor arising in intralobar nephrogenic rests is difficult. Complete understanding of the chain of molecular events occurring in the evolution of Wilms' tumors may lead to the development of tumor markers to be used on paraffin sections and so help in the differential diagnosis of hyperplasia versus malignant transformation.

Child, Preschool↗

Congenital diaphragmatic hernia in WAGR syndrome.

Wilms tumor, aniridia, genitourinary anomalies, and mental retardation (WAGR) syndrome is a contiguous gene deletion syndrome involving the Wilms tumor 1 gene (WT1), the paired box gene 6 (PAX6), and possibly other genes on chromosome 11p13. WT1 is required for normal formation of the genitourinary system and the high incidence of Wilms tumor and genitourinary anomalies found in patients with WAGR are attributed to haploinsufficiency of this gene. It has been hypothesized that WT1 also plays an important role in the development of the diaphragm. During mammalian embryonic development, WT1 is expressed in the pleural and abdominal mesothelium that forms part of the diaphragm. Furthermore, mice that are homozygous for a deletion in the mouse homolog of WT1 have diaphragmatic hernias. Case reports describing congenital diaphragmatic hernias in infants with Denys-Drash and Frasier syndromes, both of which can be caused by mutations in WT1, provide additional support for this hypothesis. We report an infant with aniridia, bilateral cryptorchidism, vesicoureteral reflux, and a right-sided Morgagni-type diaphragmatic hernia. G-banded chromosome analysis revealed a deletion of 11p12-p15.1. Breakpoint regions were refined by fluorescence in situ hybridization (FISH) and deletion of the WAGR critical region, including WT1, was confirmed. A review of the medical literature identified a second patient with a deletion of 11p13, a left-sided Bochdalek-type diaphragmatic hernia, and anomalies that suggest a diagnosis of WAGR including bilateral microphthalmia, a small penis, bilateral cryptorchidism, and a hypoplastic scrotum. These cases demonstrate that congenital diaphragmatic hernia can be associated with WAGR syndrome and suggest that deletions of WT1 may predispose individuals to develop congenital diaphragmatic hernia.

Abnormalities, Multiple↗

Bilateral preaxial polydactyly in a WAGR syndrome patient.

We report on a 30-month-old baby girl with typical clinical features of WAGR syndrome. In addition, the patient showed bilateral preaxial polydactyly of the feet. Cytogenetic and fluorescent in situ hybridization (FISH) analyses identified a deletion, del(11)(p13p14.1), extending from 6.1 to 21.7 Mb in size. Although the simultaneous appearance of WAGR and polydactyly has been already described, to our knowledge this is the first case in which the characterization at the cytogenetic molecular level of a patient with these phenotypes is reported. These observations indicate that preaxial polydactyly may be another feature of the WAGR syndrome and suggest the existence of a related gene in the WAGR critical region or in its proximity.

Abnormalities, Multiple↗

WAGR syndrome: is the 'R' always justified?

Although mild-to-moderate intellectual disability is usually considered part of WAGR syndrome (Wilms' tumour (WT), Aniridia, Genital abnormalities, and metal Retardation, due to 11p13 deletion) the neuropsychological profile of the syndrome is little reported in the literature. We report about a 12-year-old boy presenting with WAGR syndrome (WT, right complete aniridia, bilateral cryptorchidism, interstitial deletion involving band 11p13) but with no mental retardation. An in-depth clinical evaluation revealed no behavioural or social problems and the child's neuropsychological profile was found to be within the normal range for all abilities and functions investigated (with the exception of an impulsive cognitive style and some difficulties in academic skills). This case underlines the importance of in-depth neuropsychological evaluation that includes not only IQ measurement, but also examination of attention and academic skills, in order to establish the complete phenotypical profile of WAGR patients, rather than labelling them as learning disabled (i.e. mental retardation).

Child↗

Clinical, cytogenetic and molecular characterization of a patient with combined succinic semialdehyde dehydrogenase deficiency and incomplete WAGR syndrome with obesity.

We describe the clinical course, as well as cytogenetic and molecular findings, of a 3-year-old obese boy with psychomotor retardation who exhibited two rare conditions: succinic semialdehyde dehydrogenase deficiency (SSADH deficiency, MIM 271980), a disorder of gamma-aminobutyric acid metabolism with a heterogeneous clinical spectrum, and partial Wilms' tumor, aniridia, genital abnormalities, and mental retardation (WAGR) syndrome, an association between Wilms' tumor, aniridia, genitourinary malformations, and mental retardation due to mutations involving the short arm of chromosome 11, particularly deletions at the chromosomal region 11p13 (MIM 194072). Diagnosis of SSADH deficiency in our patient was established by demonstration of absent enzyme activity in isolated leucocytes, and was associated with a novel missense mutation (c.587G>A; p.Gly196Asp) in the SSADH coding sequence. We further confirmed an incomplete WAGR syndrome in this boy [karyotype 46, XY, del (11) (p13p14.2)] with a normal WT1 (Wilms' tumor) gene and an absence of pathology in the genitourinary tract, but with obesity (WAGR syndrome with obesity, WAGRO syndrome). The patient also exhibited distinctive cerebral anomalies such as increased signals of the globi pallidi, internal hydrocephalus and cerebellar vermian atrophy. However, treatment options for this patient are limited, including supportive treatment, physiotherapy, special educational training, and vigabatrin. In summary, we report the first patient with the exceptional rare findings of both SSADH deficiency and partial WAGR/WAGRO syndrome.

Cerebellum↗

Obesity and WAGR syndrome.

We describe a 15-year-old boy with WAGR syndrome and obesity and suggest that obesity should be added to the WAGR spectrum. It is also suggested that a putative gene for obesity might be located within the 11p13 band.

Adolescent↗

Three patients with hallucal polydactyly and WAGR syndrome, including discordant expression of Wilms tumor in MZ twins.

The WAGR contiguous gene deletion syndrome is a combination of Wilms tumor, Aniridia, Genito-urinary abnormalities, and growth and mental retardation which is invariably associated with an 11p13 deletion. We report two monozygotic twins and a third, unrelated patient with WAGR syndrome and additional clinical features not usually associated with WAGR. Both twins had developmental delay, growth deficiency, severe ocular involvement (nystagmus, aniridia, cataracts), atrial septal defect and two uncommon findings: agenesis of the corpus callosum and duplication of the halluces. One twin developed Wilms tumors aged 19 months while her sister remained tumor free by the age of 6.5 years. The singleton patient showed typical WAGR syndrome and preaxial hallucal polydactyly. Molecular cytogenetic studies refined the identification of the extent of the deleted segments, which were not identical in the two families. The two deletions included the PAX6 and WT1 genes as previously reported in typical WAGR patients. The unusual anomalies described in this report, may represent the expression of low penetrant traits associated with haploinsufficency of one or more of the genes present in the deletion (PAX6 is expressed in CNS) or may indicate epistatic influences of modifier genes on the expression of gene(s) present in the WAGR region.

Abnormalities, Multiple↗

[A case of Wilm's tumor with full symptomatic WAGR syndrome].

The authors of this paper presented a case of a baby with full-symptomatic WAGR syndrome (Wilms tumor, aniridia, genital tract malformation and mental retardation) treated in the I Department of Pediatrics, Institute of Pediatrics, Medical Academy Poznań. The etiology of this syndrome was discussed (deletion of the 13th band of the 11th chromosome short arm). The reason for treatment failure was analysed.

Combined Modality Therapy↗

Insertional inactivation of the WT1 gene in tumour cells from a patient with WAGR syndrome.

The WT1 gene was analysed using DNA from a Wilms' tumour derived from a patient with the WAGR syndrome using single strand conformation polymorphism analysis and polymerase chain reaction sequencing. A 14-bp insertion was found in the intron part of the splice donor site of exon 7 and was a tandem duplication of an upstream exon sequence. This mutation would be expected to disrupt the correct processing of the WT1 mRNA and is predicted to result in a non-functional protein. This observation further supports the role of WT1 in Wilms' tumorigenesis in patients with constitutional 11p13 deletions.

Abnormalities, Multiple↗

A highly polymorphic locus cloned from the breakpoint of a chromosome 11p13 deletion associated with the WAGR syndrome.

Children with constitutional deletions of chromosome 11p13 suffer from aniridia, genitourinary malformations, and mental retardation and are predisposed to develop bilateral Wilms tumor (the WAGR syndrome). The critical region for these defects has been narrowed to a segment of band 11p13 between the catalase and the beta-follicle-stimulating hormone genes. In this report, we have cloned the endpoints from a WAGR patient whose large cytogenetic deletion, del(11)(p14.3::p13), does not include the catalase gene. The deletion was characterized using DNA polymorphisms and found to originate in the paternally derived chromosome 11. The distal endpoint was identified as a rearrangement of locus D11S21 in conventional Southern blots of the patient's genomic DNA, but was not detected in leukocyte DNA from either parent or in sperm DNA from the father. The proximal endpoint was isolated by cloning the junction fragment and was mapped in relation to other markers and breakpoints. It defines a new locus in 11p13-delta J, which is close to the Wilms tumor gene and the breakpoint cluster region (TCL2) of the frequent t(11;14)(p13;q11) translocation in acute T-cell leukemia. An unusual concentration of base pair substitutions was discovered at delta J, in which 9 of 44 restriction sites tested (greater than 20%) vary in the population. This property makes delta J one of the most polymorphic loci on chromosome 11 and may reflect an underlying instability that contributed to the original mutation. The breakpoint extends the genetic map of this region and provides a useful marker for linkage studies and the analysis of allelic segregation in tumor cells.

Adult↗

[WAGR syndrome, Wilms' tumor, aniridia, gonadoblastoma, mental retardation: a review apropos of 2 cases].

From 41 reviewed cases and 2 personal observations of the WAGR syndrome, the main symptoms and their relative frequency are described: aniridia, mental retardation, Wilms' tumor. Sexual anomalies and gonadoblastoma are less frequent. The chromosomic micro-deletion can be shown by using highly sophisticated cytogenetic techniques, or suspected by blood enzymatic dosage (mainly catalase). Kidney echographic follow-up is highly recommended.

Chromosome Aberrations↗