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Prosthetic treatments for patients with ectodermal dysplasia.

This article defines and describes the nature of ectodermal dysplasias, highlighting the dental complications associated with this congenital/developmental condition. A treatment protocol for meeting patients' functional and esthetic needs as they grow into adulthood is presented.

Adolescent↗

[Ocular involvement in ectodermal dysplasia].

The authors describe the ophthalmological findings and clinical course in two patients with EEC syndrome and one patient with anhydrotic ectodermal dysplasia. A retinal complication was seen in a 43-year-old patient which seems to be associated with the EEC syndrome and has not yet been described. A review of the literature indicates the frequency of ocular findings. So far, primary ocular changes in anhydrotic ectodermal dysplasia have never been observed. The older the patient, the more severe the secondary complications affecting the lids and cornea can be; the eye may even be lost.

Adult↗

[Contribution to familial ectodermal dysplasia].

The frequent occurrence of the clinical picture of ectodermal dysplasia in the family P. is described. The differences between subjects in symptomatology are discussed in detail. The author's experience speaks well for a great variability of the hereditary mode of this disease. Furthermore, advice is given on the detection and regular ambulatory supervision by the stomatologist.

Anodontia↗

Mutation in the regulatory region of the EDA gene coincides with the symptoms of anhidrotic ectodermal dysplasia.

We have investigated a fragment of the regulatory region of the EDA gene in a patient with clinical symptoms of anhidrotic ectodermal dysplasia (EDA), whose DNA sequence of exon 1 was normal. The single-strand conformation polymorphism (SSCP) analysis of PCR-amplified fragments of the regulatory region of the EDA gene suggested a mutation localized within the fragment extending from nucleotide -571 to -182 upstream of the 5' end of the cDNA. Sequence analysis of this fragment documented an additional adenine in position -452, located 32 nucleotides upstream from the response element HK-1, a target for transcription factor LEF-1, involved in the differentiation of tissues of ectodermal and mesodermal origin. We postulate that this mutation might interfere with the transcription process of the EDA gene and might be responsible, at least in part, for the clinical symptoms of anhidrotic ectodermal dysplasia.

Child↗

A dental approach to carrier screening in X linked hypohidrotic ectodermal dysplasia.

The frequency of carriers of X linked hypohidrotic ectodermal dysplasia among females with hypodontia of the permanent dentition (excluding third molars) could be as high as 1 in 500, and among females with deciduous hypodontia could be as high as 1 in 50. Since it may be possible to identify carriers form among female hypodontia cases in general by virtue of a reduced sweat pore count, the potential exists for a reasonably practical method of screening for carriers at the population level.

Anodontia↗

Anhidrotic ectodermal dysplasia and immunodeficiency: the role of NEMO.

Anhidrotic (hypohidrotic) ectodermal dysplasia associated with immunodeficiency (EDA-ID; OMIM 300291) is a newly recognised primary immunodeficiency caused by mutations in NEMO, the gene encoding nuclear factor kappaB (NF-kappaB) essential modulator, NEMO, or inhibitor of kappaB kinase (IKK-gamma). This protein is essential for activation of the transcription factor NF-kappaB, which plays an important role in human development, skin homoeostasis, and immunity.

Child, Preschool↗

Prosthetic rehabilitation of a child affected from anhydrotic ectodermal dysplasia: a case report.

The aim of this clinical report is to describe the management of a young patient, affected by ectodermal dysplasia, during a nine-year period. Dental treatment can vary depending on the severity of the disease (tooth size, morphology, and amount of available alveolar bone). New technologies, such as adhesive dentistry, and new materials, such as composite resin, represent current options in the management of the dental rehabilitation of patients affected by ectodermal dysplasia. Removable partial dentures were used to replace congenitally missing teeth, and composite resin materials were used to restore conical-shaped maxillary teeth to achieve a favorable esthetic result. This option minimized the sacrifice of healthy dental tissue. Prosthodontic and restorative treatment was provided for the psychological and social comfort of the young patient.

Alveolar Process↗

Anhidrotic ectodermal dysplasia gene region cloned in yeast artificial chromosomes.

Anhidrotic ectodermal dysplasia (EDA), an X-chromosomal recessive disorder, is expressed in a few females with chromosomal translocations involving bands Xq12-q13. Using available DNA markers from the region and somatic cell hybrids we mapped the X-chromosomal breakpoints in two such translocations. The breakpoints were further mapped within a yeast artificial chromosome contig constructed by chromosome walking techniques. Genomic DNA markers that map between the two translocation breakpoints were recovered representing putative portions of the EDA gene.

Base Sequence↗

Osteopetrosis, lymphedema, anhidrotic ectodermal dysplasia, and immunodeficiency in a boy and incontinentia pigmenti in his mother.

A child with X-linked osteopetrosis, lymphedema, anhidrotic ectodermal dysplasia, and immunodeficiency (OL-EDA-ID) was recently reported. We report the clinical features of a second boy with this novel syndrome and his mother, who presented with signs of incontinentia pigmenti (IP). The child had mild osteopetrosis without neurosensory complications, unilateral lymphedema of the left leg, and characteristic features of anhidrotic ectodermal dysplasia with sparse hair, facial dysmorphy, delayed eruption of teeth, and sweat gland abnormalities. He died at 18 months of severe immunodeficiency with multiple infections caused by Gram-negative (Salmonella enteritidis) and Gram-positive (Streptococcus pneumoniae) bacteria, nontuberculous mycobacteria (Mycobacterium kansasii), and fungi (Pneumocystis carinii). His 30-year-old mother's medical history, together with residual cutaneous lesions, was highly suggestive of IP without neurologic impairment. In this patient with OL-EDA-ID, we detected the same NF-kappaB essential modulator stop codon hypomorphic mutation identified in the previous patient. The occurrence of the same clinical features in 2 unrelated patients with the same genotype demonstrates that OL-EDA-ID is a genuine clinical syndrome. The clinical and biological descriptions of the proband and his mother further corroborate the relationship between IP and EDA. Both syndromes are allelic and are associated with mutations in NF-kappaB essential modulator, with a genotype-phenotype correlation in hemizygous males. In contrast, loss-of-function mutations and hypomorphic mutations may cause IP in females.

Abnormalities, Multiple↗

Mosaic expression of hypohidrotic ectodermal dysplasia in an isolated affected female child.

BACKGROUND: Hypohidrotic ectodermal dysplasia (HED) is characterized by hypotrichosis, hypodontia, onychodysplasia and, as the most striking feature, hypohidrosis. The X-linked recessive form of HED, also known as Christ-Siemens-Touraine syndrome, is the most frequent and widely documented form. A clinically identical autosomal recessive form of HED has also been described. Because of the X-linked mode of inheritance, nearly all observations have concerned pedigrees of predominantly male affected patients. We present a rare isolated affected female child with a mosaic expression of HED. We attempted to assess the mode of inheritance in our case. OBSERVATIONS: We documented the characteristic clinical appearance in our proband, as well as the scanning electron microscopic findings regarding the hair. The starch-iodine test results in this patient revealed the clinical expression of HED in a mosaic fashion, running along the Blaschko lines. CONCLUSIONS: The starch-iodine test results proved to be useful in the assessment of carriers of X-linked HED, and our proband was considered to an isolated affected female with a mosaic expression of HED.

Child, Preschool↗

Connexin30 mutations responsible for hidrotic ectodermal dysplasia cause abnormal hemichannel activity.

Clouston syndrome or hidrotic ectodermal dysplasia (HED) is a rare dominant genodermatosis characterized by palmoplantar hyperkeratosis, generalized alopecia and nail defects. The disease is caused by mutations in the human GJB6 gene which encodes the gap junction protein connexin30 (Cx30). To gain insight into the molecular mechanisms underlying HED, we have analyzed the consequences of two of these mutations (G11R Cx30 and A88V Cx30) on the functional properties of the connexons they form. Here, we show that the distribution of Cx30 is similar in affected palmoplantar skin and in normal epidermis. We further demonstrate that the presence of the wild-type protein (wt Cx30) improves the trafficking of mutated Cx30 to the plasma membrane where both G11R and A88V Cx30 co-localize with wt Cx30 and form functional intercellular channels. The electrophysiological properties of channels made of G11R and A88V Cx30 differ slightly from those of wt Cx30 but allow for dye transfer between transfected HeLa cells. Finally, we document a gain of function of G11R and A88V Cx30, which form functional hemichannels at the cell surface and, when expressed in HeLa cells, generate a leakage of ATP into the extracellular medium. Such increased ATP levels might act as a paracrine messenger that, by altering the epidermal factors which control the proliferation and differentiation of keratinocytes, may play an important role in the pathophysiological processes leading to the HED phenotype.

Adenosine Triphosphate↗

X-linked hypohidrotic ectodermal dysplasia mutations in Brazilian families.

X-linked hypohidrotic ectodermal dysplasia (XLHED) is characterized by severe hypohidrosis, hypotrichosis, and hypodontia. The gene responsible for this pleiotropic syndrome (ED1) consists of 12 exons, 8 of them coding for a transmembrane protein (ectodysplasin-A; EDA-A) involved in the developmental process of epithelial-mesenchymal interaction. ED1 mutations that cause alterations in this protein lead to the XLHED phenotype. The major objective of the present study was to detect ED1 mutations in four Brazilian families with the XLHED phenotype and to compare them to the more than 60 different mutations already reported. DNA of the EDA-A coding exons was amplified by PCR, and single strand conformation analysis (SSCA) of the electrophoretic bands was carried out in polyacrylamide gel stained with silver nitrate. Two of these four families showed altered DNA band patterns. Subsequent DNA sequencing of the two mutated exons showed: (1) a 36 nucleotide deletion at exon 5 responsible for the loss of four Gly-X-Y repeats of the collagen subdomain of EDA-A; (2) a guanine deletion at exon 6 (966 or 967 sites) that alters EDA-A after amino acid 241 and leads to a premature ending at amino acid 279. This mutation at exon 6 seems not to have been reported previously and determines a truncated EDA-A without a part of its extracellular domain that contains the whole TNF homologue subdomain. These two DNA mutations are compatible with the XLHED phenotype. In the other two families the PCR-SSCA methodology was unable to detect any mutation responsible for the XLHED phenotype.

Brazil↗

A hypermorphic IkappaBalpha mutation is associated with autosomal dominant anhidrotic ectodermal dysplasia and T cell immunodeficiency.

X-linked anhidrotic ectodermal dysplasia with immunodeficiency (XL-EDA-ID) is caused by hypomorphic mutations in the gene encoding NEMO/IKKgamma, the regulatory subunit of the IkappaB kinase (IKK) complex. IKK normally phosphorylates the IkappaB-inhibitors of NF-kappaB at specific serine residues, thereby promoting their ubiquitination and degradation by the proteasome. This allows NF-kappaB complexes to translocate into the nucleus where they activate their target genes. Here, we describe an autosomal-dominant (AD) form of EDA-ID associated with a heterozygous missense mutation at serine 32 of IkappaBalpha. This mutation is gain-of-function, as it enhances the inhibitory capacity of IkappaBalpha by preventing its phosphorylation and degradation, and results in impaired NF-kappaB activation. The developmental, immunologic, and infectious phenotypes associated with hypomorphic NEMO and hypermorphic IKBA mutations largely overlap and include EDA, impaired cellular responses to ligands of TIR (TLR-ligands, IL-1beta, and IL-18), and TNFR (TNF-alpha, LTalpha1/beta2, and CD154) superfamily members and severe bacterial diseases. However, AD-EDA-ID but not XL-EDA-ID is associated with a severe and unique T cell immunodeficiency. Despite a marked blood lymphocytosis, there are no detectable memory T cells in vivo, and naive T cells do not respond to CD3-TCR activation in vitro. Our report highlights both the diversity of genotypes associated with EDA-ID and the diversity of immunologic phenotypes associated with mutations in different components of the NF-kappaB signaling pathway.

Child↗

[A case of EEC (ectrodactyly, ectodermal dysplasia, and cleft lip) syndrome].

EEC syndrome is a rare congenital malformation characterized by ectrodactyly, ectodermal dysplasia, cleft lip and/or palate. We reported a case of EEC syndrome with cleft palate. The patient was a 15-month-old girl. She had split hands of the upper extremities, syndactyly and polydactyly of the right lower extremity, ectodermal dysplasia including sparse hair, enamel hypoplasia and cleft palate. The patient underwent palatoplasty at the age of 18 months.

Abnormalities, Multiple↗

Sequence polymorphisms of the EDA and the DL genes in the patients with an X-linked and an autosomal forms of anhidrotic ectodermal dysplasia.

Oligodontia, sparse hair and deficiency of eccrine sweat glands are the features characteristic for the phenotype of the patients with anhidrotic ectodermal dysplasia (EDA). This syndrome is caused by mutations in the EDA or DL (downless) genes, encoding members of the TNF ligand and TNF receptor families, involved in the communication between the cells during embryonic life. We investigated both the coding and noncoding regions of the EDA and the DL genes in the patients exhibiting clinical symptoms of ectodermal dysplasia. Sequence analysis of the amplified fragments of the EDA gene revealed polymorphisms in introns three, four and five. The polymorphism in intron four was found in about 60% of the patients and was no more frequent than in the normal individuals. The two other polymorphisms were rare. Polymorphisms were also observed in exons 9 and 12 of the DL gene, but they did not alter the sequence of the protein product of the gene. Our results indicate that in order to accelerate screening for the mutations of the EDA gene and reduce the costs, the amplified fragments should not contain intronic sequences. However, in the case of the DL gene, where polymorphic sites are located in exons, restriction analysis with the use of appropriate enzyme should be conducted, but usually sequencing analysis could not be avoided.

Ectodermal Dysplasia↗

Clinical and genetic aspects of X-linked ectodermal dysplasia in the dog -- a review including three new spontaneous cases.

This review presents the clinical, dermato-histopathological and genetic features of canine X-linked ectodermal dysplasia in previously reported cases and in three new spontaneous cases. The condition is compared with anhidrotic ectodermal dysplasia in humans and, based on current genetic concepts, we suggest that the two conditions are caused by the same gene and, consequently, represent a single pathological entity that affects both humans and dogs.

Animals↗

Recurrent fever and lack of tooth buds. a case of ectodermal dysplasia in a 9 months old boy.

We present the case of a 9 months old boy with an X-linked form of anhidrotic (hypohidrotic) ectodermal dysplasia. Several chest X-rays had been performed to rule out pneumonia because of recurrent episodes of high fever. The child's lack of tooth buds (hypodontia), which could be encountered on the margins of the chest X-rays, are suggestive for ectodermal dysplasia.

Anodontia↗