We describe 13 unrelated children with abnormalities of somatic growth, face, brain, and connective tissue including vasculature. Although the condition in these children falls under the general group of disorders known as cutis marmorata telangiectatica congenita (CMTC), the constellation of abnormalities appears to constitute a distinct and easily recognizable phenotype within this general group. In contrast to most children reported with CMTC, children in this subgroup have a high risk for neurologic abnormalities, including developmental delay, mental retardation, megalencephaly, and hydrocephalus. Early recognition of this condition is important for appropriate surveillance for known complications and parental counseling.
Ehlers-Danlos syndrome (EDS) is a genetically and pathogenetically heterogeneous group of disorders of which at least 11 types have been described. All are connective tissue disorders characterized by defects of the skin, ligaments and blood vessels with the clinical spectrum ranging from innocuous findings to lethality. Mutations in the genes encoding the major fibrillar collagen types I and III have been demonstrated in EDS types VII and IV, respectively, while mutations in the lysyl hydroxylase and ATP7A genes, with roles in collagen cross-linking, are responsible for EDS types VI and IX. The biochemical and molecular bases for the most common forms of EDS (types I, II and III) are unknown. Here, we describe a balanced translocation between chromosome 9 and an X chromosome that disrupts the minor fibrillar collagen type V gene COL5A1 in a patient with both EDS type I and hypomelanosis of Ito. The breakpoint occurs at 9q34 within COL5A1 intron 24 and interestingly, within a LINE-1 (L1) element at Xp21.1. A fusion mRNA between COL5A1 and an Alu sequence is produced, but no aberrant protein is detectable. Rather, the amount of type V collagen is reduced in the patient's fibroblasts, suggesting haploinsufficiency as a cuase of the phenotype. This demonstrates that a mutation in a type V collagen gene, COL5A1, results in EDS type I, and shows the involvement of L1 sequences in a constitutional chromosomal translocation. Because collagen type V is a heteromorphic protein in which molecules may be composed of polypeptides encoded by three COL5A genes, this suggests all three genes as candidates for mutations in EDS.
We report a male with features of frontonasal dysplasia, but also with ocular and auricular defects. This child most likely has oculoauriculofrontonasal syndrome, an autosomal recessive syndrome first described in 1981. We also review the literature on this syndrome, and discuss differential diagnosis.
We describe a boy with low birth weight, congenital microcephaly, multiple minor facial anomalies, cleft palate, soft tissue syndactyly of fingers and toes, and moderate to severe mental retardation. Literature review suggested 6 possible diagnoses, including Scott craniodigital syndrome, Chitayat syndrome, Filippi syndrome, Zerres syndrome, Kelly syndrome, and Woods syndrome. Each has as part of the phenotype craniofacial anomalies and soft tissue syndactyly of fingers and toes; and superficially, distinction among the 6 may be difficult. However, based on the phenotype analysis we performed, we conclude that our patient has Filippi syndrome, and thus is the first reported case from the United States.
We have evaluated, both clinically and by linkage analysis, a large family with 22 known affected males with the MASA syndrome (McKusick 303300). Clinical findings varied widely amongst the affected family members, with some appearing initially to have the MASA syndrome and others to have X-linked hydrocephalus (HSAS) (McKusick 307000). Important findings included the presence of adducted thumbs in two obligate carriers, learning problems or mild mental retardation in three females, two of whom were obligate carriers, and hydrocephalus with neonatal death in three females born to obligate carriers. X-inactivation analysis in lymphocytes from the two women with adducted thumbs revealed preferential inactivation of one X chromosome, suggesting that nonrandom X-inactivation may be responsible for clinical expression in females. The presence of HSAS in some individuals of this family and the MASA syndrome in others further supports the hypothesis that these two conditions are the result of a mutation in the same gene.
Journal Article Translocation breakpoint in Aarskog syndrome maps to Xp11.21 between ALAS2 and DXS323 Get access Thomas W. Glover, Thomas W. Glover * *To whom correspondence should be addressed at: Department of Human Genetics, 4708 Med. Sci II, Box 0618, University of Michigan, Ann Arbor, MI 48109, USA Search for other works by this author on: Oxford Academic PubMed Google Scholar Vera Verga, Vera Verga Search for other works by this author on: Oxford Academic PubMed Google Scholar Jill Rafael, Jill Rafael Search for other works by this author on: Oxford Academic PubMed Google Scholar Christine Barcroft, Christine Barcroft Search for other works by this author on: Oxford Academic PubMed Google Scholar Jerome L. Gorski, Jerome L. Gorski Search for other works by this author on: Oxford Academic PubMed Google Scholar Erawati V. Bawle, Erawati V. Bawle 1Department of Genetics and Metabolic Disorders, Detroit Children's HospitalDetroit, MI Search for other works by this author on: Oxford Academic PubMed Google Scholar James V. Higgins James V. Higgins 2Department of Pediatrics and Human Development, Michigan State UnivesityE Lanang, MI, USA Search for other works by this author on: Oxford Academic PubMed Google Scholar Human Molecular Genetics, Volume 2, Issue 10, October 1993, Pages 1717–1718, https://doi.org/10.1093/hmg/2.10.1717 Published: 01 October 1993 Article history Received: 21 June 1993 Revision received: 08 August 1993 Accepted: 08 August 1993 Published: 01 October 1993
We describe an apparently new syndrome in 2 unrelated boys with aplasia cutis congenita, epibulbar dermoids, postnatally appearing areas of truncal hyperpigmentation, and macrocephaly. © 1993 Wiley-Liss, Inc.
Stippled epiphyses occur in several monogenic, teratogenic, or aneuploidy syndromes. We describe two sibs with a provisionally unique chondrodysplasia punctata syndrome, who have, in addition to stippled epiphyses, minor facial anomalies, short stature, and ocular colobomata. Inheritance of this condition is likely autosomal recessive.
American Journal of Medical GeneticsVolume 44, Issue 2 p. 252-252 Letter to the Editor Report of another child with sex reversal and cardiac, pulmonary, and diaphragm defects Helga V. Toriello, Helga V. Toriello Genetics Services, Butterworth Hospital, Grand Rapids, MichiganSearch for more papers by this authorJames V. Higgins, James V. Higgins Department of Pediatrics and Human Development, Michigan State University, East Lansing, MichiganSearch for more papers by this author Helga V. Toriello, Helga V. Toriello Genetics Services, Butterworth Hospital, Grand Rapids, MichiganSearch for more papers by this authorJames V. Higgins, James V. Higgins Department of Pediatrics and Human Development, Michigan State University, East Lansing, MichiganSearch for more papers by this author First published: 15 September 1992 https://doi.org/10.1002/ajmg.1320440232Citations: 6AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL No abstract is available for this article. References Elias S, Simpson JL, Carson SA, Malinak LR, Buttram VC Jr (1984): Genetic studies in incomplete Müllerian fusion. Obstet Gynecol 63: 276– 2279. Meacham LR, Winn KJ, Culler FL, Parks JS (1991): Double vagina, cardiac, pulmonarY, and other genital malformations with 46XY karyotype. Am J Med Genet 41: 478– 491. Citing Literature Volume44, Issue215 September 1992Pages 252-252 ReferencesRelatedInformation
The MASA syndrome is an X‐linked disorder with mental retardation, spastic paraparesis, and adducted thumbs as the most characteristic features. We performed linkage analysis, using Xq28 markers, on a large MASA syndrome family. The maximum lodscore was 6.37 at 0 recombination for DXS52 and 5.99 at 0 recombination for DXS305. Crossovers were demonstrated between the disorder and DXS455. Clinical and linkage data from this family further support the hypothesis that the MASA syndrome and X‐linked hydrocephalus are allelic disorders.
Menkes syndrome is a rare X-linked recessive disorder characterized by an inability to metabolize copper. A female patient with both this disease and an X; autosome translocation with karyotype 46,X,t(X;2)(q13;q32.2) has previously been described. The translocation breakpoint in Xq13 coincides with a previous assignment of the Menkes gene at Xq13 by linkage data in humans and by analogy to the mottled mutations which are models for Menkes disease in the mouse. Therefore, this translocation probably interrupts the gene for Menkes syndrome in band Xq13. We describe here experiments to precisely map the translocation breakpoint within this chromosomal band. We have established a lymphoblastoid cell line from this patient and have used it to isolate the der(2) translocation chromosome (2pter----2q32::Xq13----Xqter) in human/hamster somatic cell hybrids. Southern blot analyses using a number of probes specific for chromosomes X and 2 have been studied to define precisely the location of the translocation breakpoint. Our results show that the breakpoint in this patient--and, therefore, likely the Menkes gene--maps to a small subregion of band Xq13.2-q13.3 proximal to the PGK1 locus and distal to all other Xq13 loci tested.
A term white girl presented with low birth weight, minor anomalies, and congenital heart defects. The infant had microcephaly, upslanting palpebral fissures, prominent nasal bridge, short philtrum, thin upper lip vermilion, down-turned corners of the mouth, receding mandible, and short broad neck. The hands showed proximal placement of the thumbs, bilateral clinodactyly of the index finger, and bilateral transverse crease. Both hands were clenched, with the index finger overlapping the third finger and the fifth finger overlapping the fourth. There was also talipes calcaneo-valgus, bilateral dorsiflexion of the metatarsophalangeal joints, flexion of the interphalangeal joints, and hypoplasia of all nails. The patient's karyotype was 46,XX,-22, + der(9)t(9;22)(q21.13;q12.1)mat; the mother had the balanced translocation 46,XX,t(9;22)(9pter----9q21.13::22q12.1----22qter++ +;22pter---- 22q12.1::9q21.3----9qter). The infant died at age 10 days, and the autopsy showed absent thyroid isthmus and rudimentary thymus, with one small ectopic parathyroid attached to it. The lungs were hypoplastic, with abnormal lobation. The cardiac anomalies included truncus arteriosus, truncal valve stenosis, single carotid trunk, subclavian arteries arising from the distal part of the aortic arch, atrial and ventricular septal defects, right ventricular hypertrophy, and a hypoplastic left pulmonary artery. Also, multiple small accessory spleens were present in addition to a normal-sized spleen. This case combines features associated with DiGeorge anomaly and dup(9p). The chromosome abnormality in this patient appears to have arisen in a maternal germ cell due to adjacent type II disjunction.
A brother and sister with Tel Hashomer camptodactyly and mitral valve prolapse are described. Mitral valve prolapse is heterogenous, but appears to occur more frequently in individuals with connective tissue disorders. The presence of mitral valve prolapse as a component manifestation of Tel Hashomer camptodactyly suggests that abnormal connective tissue is a pleiotropic effect of the mutant allele.
Two premature sibs had Potter sequence and died of respiratory failure within the first day. Ultrasonography at 26 weeks during the earlier of the two pregnancies showed complete absence of amniotic fluid, and the urinary bladder was not visualized. Ultrasound examinations during the second pregnancy showed adequate amniotic fluid at 16 and 20 weeks, with a subsequent reduction in fluid volume. Two older sibs had also died of respiratory failure shortly after birth. Postmortem histopathologic studies showed all four sibs to have severely deficient renal tubular development. However, the presence of numerous glomeruli indicated prolific nephrogenesis. Most of the tubules in sections of cortex had the lectin-binding and immunohistochemical characteristics of collecting ducts; proximal tubules were not identified by lectin-binding. Electron-microscopic examination showed a general absence of differentiated characteristics in cortical tubular epithelium, except that rare tubules contained rudimentary proximal tubular brush borders. Three of the sibs were boys, one a girl. The three children that were studied had normal chromosomes. Two unaffected sibs are alive and well. Neither parent has any clinical evidence of renal disease. These studies support the interpretation that renal tubular dysgenesis is autosomal recessive with pleiotropy. However, the relatively late appearance of oligohydramnios makes early diagnosis difficult, even when the condition is suspected.
We describe three sisters with unilateral agenesis of the diaphragm. No other anomalies were present. As a developmental field defect, diaphragmatic defect is, by definition, causally heterogeneous, and may be seen in several syndromes. Whereas most isolated diaphragmatic defects are likely multifactorially determined, monogenic forms seem to exist.
It is paradoxical that the inactivated X is the only chromosome that can be identified in the interphase nucleus, yet in metaphase, it is indistinguishable from its genetically active homolog unless special culture and staining procedures are employed. A specific inactivation-associated fold in proximal Xq resolves that paradox. We describe here how the fold in the proximal long arm can be used as a simple and reliable marker to identify the inactivated X in G-, Q-, or R-banded preparations. Several examples are given, including localization of the inactivation center to band Xq13 or q21.1, identification of nonrandom inactivation in X-chromosome rearrangements, identification of multiple active X chromosomes in tumor cell lines, analysis of X-inactivation patterns in female carriers of the fragile site at Xq27, and comparison of X-inactivation patterns among primate species.