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Genetic heterogeneity of syndromic X-linked recessive microphthalmia-anophthalmia: is Lenz microphthalmia a single disorder?

Nonsyndromic congenital microphthalmia or anophthalmia is a heterogeneous malformation with autosomal dominant, autosomal recessive, and X-linked modes of inheritance. Lenz microphthalmia syndrome comprises microphthalmia with mental retardation, malformed ears, skeletal anomalies, and is inherited in an X-linked recessive pattern. Prior studies have shown linkage of both isolated (or nonsyndromic) anophthalmos (ANOP1, [MIM 301590]) and Lenz syndrome [MIM 309800] to Xq27-q28. Nonsyndromic colobomatous microphthalmia [MIM 300345] has been linked to Xp11.4-Xq11.1. We describe a five-generation African-American family with microphthalmia or anophthalmia, mental retardation, and urogenital anomalies, in an X-linked recessive inheritance pattern, consistent with Lenz syndrome. Initial linkage analysis with microsatellite markers excluded the region in Xq27-q28 previously reported as a candidate region for ANOP1 [MIM 301590]. An X-chromosome scan revealed linkage to a 10-cM region between markers DXS228 and DXS992 in Xp11.4-p21.2. Multipoint analysis gave a maximum LOD score of 2.46 at marker DXS993. These data show that X-linked recessive syndromic microphthalmia exhibits genetic heterogeneity. In addition, it suggests that Lenz microphthalmia syndrome, previously thought to be a single disorder, may represent an amalgam of two distinct disorders.

Abnormalities, Multiple↗

Malformation syndrome associated with small extra chromosome.

We report an infant with a previously apparently unreported lethal malformation syndrome concentrated primarily on the left half of the body, but including midline defects such as meningomyelocele, cleft lip and cleft palate, and imperforate anus. The infant also had a small extra metacentric chromosome in 60% of lymphocytes. It is postulated that the small extra chromosome (whose origin remains unknown) caused the infant's condition, and that its asymmetry is compatible with an uneven distribution of the normal and aneuploid cell lines in the two halves of the body during critical phases of prenatal development.

Abnormalities, Multiple↗

The Meckel syndrome in the Hutterites.

At least three cases of the Meckel syndrome have been identified in the Hutterites. Two of these were sibs and were studied during life; the other, a close relative, was diagnosed retrospectively by a review of hospital records. All parents were consanguineous. The phenotype ranged in severity from the association of occipital meningocele, cystic kidneys, postaxial polydactyly, and microphthalmia to a milder expression consisting of cystic kidneys, ocular defects apparent only on funduscopic examination, and a brain abnormality demonstrated by computer tomography. Survival ranged from 5 to 13 months. In one patient, the renal lesion was manifested as a tubular rather than a glomerular defect, and was probably not the primary cause of death.

Canada↗

The first Meckel oration: on the causes of morphological differences in a population of guinea pigs.

The first morphological abnormality considered here was of a very superficial sort: deviations from the smooth coat of wild cavies and most guinea pigs. The deviations of "rough-furred" individuals range from a single irregularity or a single pair of rosettes to the "full rough" pattern. Roughness may be restricted to the hind toes, forehead, or hair around the eyes or belly, or (very rarely) to a small area on one side of the back. There is no indication of gene control in the last, and no analysis of the only strain (in Professor Castle's laboratory) that I have seen, of roughness restricted to the belly. A dominant gene, R, in combination with a semidominant modifier, M, account for the fancier roughs (R-MM toes only, R-mm full rough). A gene, st, that is completely dominant in the absence of R, semidominant in its presence, was descended from 3 animals from outside the colony. It accounts for a large forehead rosette, usually with a small white spot in front of its center. A statistically semidominant gene, Re, with extremely irregular, often asymmetric penetrance tends to cause rosettes about the eyes. This arose by mutation late in the history of the Whitman colony. It is strengthened by presence of R MM. Considerable variation occurs in the numbers of dorsal rosettes of R Mm and R mm. These have not been analyzed satisfactorily because the genetic differences are confounded by nongenetic ones. It is not practicable to summarize briefly all of the complex interaction effects of these factors, but it may be noted that the most surprising one had to do with genes St and R. The forehead rosette due to rr St closely resembles that of R mm (except for the absence of the pleiotropic white spot). The combination, R mm St St, shows none of the expected enhancement but instead shows nearly complete cancellation of the rosette. Moreover, the anterior dorsal rosettes of R mm st st are much reduced and seemingly shoved backward and laterally to give a large smooth shield back of the ears. St St also reduces the usual dorsal pair of rosettes of R Mm. With St st, all of these antagonistic effects are weaker and less regular. Another morphological deviation to be considered was the fairly common restoration of an atavistic little toe.(ABSTRACT TRUNCATED AT 400 WORDS)

Abnormalities, Severe Teratoid↗

New autosomal dominant branchio-oculo-facial syndrome.

We observed an autosomal dominant disorder of abnormal upper lip, which resembles a poorly repaired cleft lip, malformed nose with broad bridge and flattened tip, lacrimal duct obstruction, malformed ears, and branchial cleft sinuses and/or linear skin lesions behind the ears in several persons in 3 families. In each of the 3 families, an affected parent had at least one affected child. Father-to-son transmission in one of these families ruled out X-linked inheritance. Other anomalies include coloboma, microphthalmia, auricular pits, lip pits, highly arched plate, dental anomalies, and subcutaneous cysts of the scalp. Premature graying of hair occurred in the affected adults. Growth retardation, developmental delay, and hand anomalies are variable components of the syndrome.

Abnormalities, Multiple↗

Microphthalmia and chorioretinal lesions in a girl with an Xp22.2-pter deletion and partial 3p trisomy: clinical observations relevant to Aicardi syndrome gene localization.

We present a 4-year-old girl with a maternally derived, unbalanced X;3 translocation resulting in partial Xp monosomy and partial 3p trisomy. She had chorioretinal defects, developmental delay, infantile seizures, and microphthalmia. These findings initially suggested a diagnosis of Aicardi syndrome. However, she had a normal-appearing corpus callosum on CT and magnetic resonance imaging scans of the brain and her retinal findings were not typical for Aicardi syndrome. This represents the 6th reported example of microphthalmia associated with an Xp22 chromosome abnormality. Four of these individuals also had features suggestive of focal dermal hypoplasia (FDH), which was not evident in our patient. The available evidence supports the hypothesis that gene disruption at Xp22 may lead to findings similar to those seen in Aicardi syndrome and FDH, both of which are believed to be X-linked dominant male lethal conditions.

Child, Preschool↗

Xp22.3 microdeletion syndrome with microphthalmia, sclerocornea, linear skin defects, and congenital heart defects.

We report on an infant girl with congenital erythematous, linear skin lesions on face and neck, bilateral microphthalmia, sclerocornea, cataracts, and a complex cardiac anomaly including atrial septal and ventricular septal defects. This patient had an Xp22.3 microdeletion and a chromosome satellite on the abnormal X p-arm. The abnormal X chromosome was late replicating in peripheral blood lymphocytes and cultured skin fibroblasts. Four other patients with similar congenital anomalies and Xp deficiency have been reported previously and are compared with this patient. One patient had an interstitial or terminal deletion, but in others the material translocated to Xp22.3 was variable (Yq material in two patients, and Yp material and an unidentifiable satellite in one patient each). Several mechanisms are suggested by which this chromosome abnormality might produce this phenotype in these patients. Our patient is the first with this syndrome to have a congenital heart defect.

Abnormalities, Multiple↗

MIDAS syndrome (microphthalmia, dermal aplasia, and sclerocornea): an X-linked phenotype distinct from Goltz syndrome.

Bilateral microphthalmia with blepharophimosis, linear lesions of dermal aplasia involving the face, and microcephaly were present in a newborn girl who died at age 9 months from cardiomyopathy resulting in ventricular fibrillation. Autopsy showed an atrial septum defect, persistent gross trabeculation of the left ventricle, and an arteria lusoria. This case represents a further example of a new entity for which we propose the term MIDAS syndrome. The acronym stands for microphthalmia, dermal aplasia, and sclerocornea. Our patient is the second with this syndrome to have a major congenital heart defect. Cytogenetic studies reported in previous cases indicate that the underlying gene defect can be assigned to Xp22.3. This new X-linked male-lethal trait should be distinguished from focal dermal hypoplasia that will be found to map elsewhere on the X-chromosome.

Abnormalities, Multiple↗

Craniofacial anomalies, abnormal hair, camptodactyly, and caudal appendage (Teebi-Shaltout syndrome): clinical and autopsy findings.

Teebi and Shaltout [1989: Am J Med Genet 33: 58-60] described a new syndrome of craniofacial anomalies, abnormal hair, camptodactyly, and caudal appendage in children born to a consanguineous couple. We report on a second family with the same pattern of anomalies occurring in a liveborn female and 3 spontaneously aborted fetuses, and include autopsy findings. As additional findings 2 of our cases had unilateral microphthalmia and kidney anomalies. Our observation confirms that this pattern of anomalies is a distinct syndrome with autosomal recessive inheritance; we suggest the synonym Teebi-Shaltout syndrome.

Abnormalities, Multiple↗

Microphthalmia with linear skin defects (MLS) syndrome: clinical, cytogenetic, and molecular characterization.

The microphthalmia with linear skin defects (MLS) syndrome (MIM 309801) is a severe developmental disorder observed in XX individuals with distal Xp segmental monosomy. The phenotype of this syndrome overlaps with that of both Aicardi (MIM 304050) and Goltz (MIM 305600) syndromes, two X-linked dominant, male-lethal disorders. Here we report the clinical, cytogenetic, and molecular characterization of 3 patients with this syndrome. Two of these patients are females with a terminal Xpter-p22.2 deletion. One of these 2 patients had an aborted fetus with anencephaly and the same chromosome abnormality. The third patient is an XX male with Xp/Yp exchange spanning the SRY gene which results in distal Xp monosomy. The extensive clinical variability observed in these patients and the results of the molecular analysis suggest that X-inactivation plays an important role in determining the phenotype of the MLS syndrome. We propose that the MLS, Aicardi, and Goltz syndromes are due to the involvement of the same gene(s), and that different patterns of X-inactivation are responsible for the phenotypic differences observed in these 3 disorders. However, we cannot rule out that each component of the MLS phenotype is caused by deletion of a different gene (a contiguous gene syndrome).

Abnormalities, Multiple↗

Autosomal recessive colobomatous microphthalmia.

Colobomatous microphthalmia was studied in multiple relatives of 5 families. In these families, the disorder was an autosomal recessive trait as opposed to the usual autosomal dominant form of the disorder. A relatively high incidence of this recessive allele is found in the Iranian Jewish community.

Adult↗

Female infant with oncocytic cardiomyopathy and microphthalmia with linear skin defects (MLS): a clue to the pathogenesis of oncocytic cardiomyopathy?

A infant girl had red stellate skin lesions on the cheeks and neck, and mildly short palpebral fissures. Her skin abnormality was typical of microphthalmia with linear skin defects (MLS), a newly recognized syndrome consisting of congenital linear skin defects and ocular abnormalities in females monosomic for Xp22. She died suddenly and unexpectedly at age 4 months; the cause of death was ascribed to oncocytic cardiomyopathy. Oncocytic cardiomyopathy occurs only in young children, who present with refractory arrhythmias leading to cardiac arrest. The coexistence of two rare conditions, one of which is mapped to the X chromosome, and an excess of affected females with oncocytic cardiomyopathy, make it likely that oncocytic cardiomyopathy is also X-linked, with Xp22 being a candidate region. Overlapping manifestations in the two conditions (ocular abnormalities in cases of oncocytic cardiomyopathy and arrhythmias in MLS) offer additional support for this hypothesis.

Abnormalities, Multiple↗