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C Turleau

Publications and source records attributed to C Turleau.

At least 55 records · Page 3Linked to original sources

[Genetics and genetic counseling: the retinoblastoma case].

Forty-percent of retinoblastomas are due to a mutation inherited as an autosomal dominant trait with a high penetrance. Cytogenetic forms of retinoblastoma have led to the location of the gene, to the identification of numerous chromosome 13 specific DNA polymorphisms, and to the cloning of the gene. Intragenic DNA polymorphisms are now known. Using Southern blot hybridization, study of the mutation is possible either by direct analysis or by an indirect approach using linkage with polymorphic genetic markers. The majority of cases cannot be examined by these techniques. Their value and limits are discussed.

Alleles↗

Rett phenotype with X/autosome translocation: possible mapping to the short arm of chromosome X.

Rett syndrome (RS) was diagnosed in a girl with a t(X;22) (p11.22;p11). This translocation was also present in her unaffected mother and her sister affected by a neurological disorder compatible with a "forme fruste" of RS. Different etiological mechanisms are considered: gene disruption, X inactivation disturbance, metabolic interference. Whatever this may be, the localization of a RS related gene to the short arm of chromosome X is likely.

Child↗

Investigation of three patients with the "ring syndrome", including familial transmission of ring 5, and estimation of reproductive risks.

We report three cases of ring chromosome 5 [r(5)], two familial (mother and daughter) and one sporadic. The phenotype resembled that of the "ring syndrome" with prenatal onset of short stature, growth retardation, mild facial dysmorphism and normal psychomotor development. Extended metaphase and prometaphase chromosome preparations using G-, R- and Q-banding and scanning electron microscopy (SEM) failed to demonstrate deletion in the ring 5. Flow karyotype using the FACS cell sorter and peak area analysis showed the r(5) to be in the same position as the normal chromosome 5. The deletion that is presumably associated with ring formation appears to involve less that one megabase of DNA. In the "complex" rings, high resolution SEM showed fragile sites at the 5q34 and 5q35 region with frequent deletions at that site. A literature survey suggests that when a parent carries a ring chromosome about 80% of recognised pregnancies result in live birth. Of these, about half have a normal phenotype and karyotype, and half inherit the parental ring; about half of those acquiring the ring (20%) show significant mental retardation.

Adult↗

Autosomal mendelian disorders and microcytogenetics.

The development of cytogenetic high resolution banding techniques has allowed the observation of specific chromosome rearrangements--i.e. microdeletions, translocations--in patients with morbid conditions suspected to have a genetic component but for which a precise etiology had not, or rarely, been recognized. The most striking examples are retinoblastoma, the WAGR complex, Beckwith-Wiedemann syndrome, Langer-Giedion syndrome, Prader-Willi syndrome, Miller-Dieker syndrome and others, which thus could be mapped to the genome. Molecular technology further allowed in a number of cases cloning of the genes proper or of linked DNA polymorphisms permitting genetic counseling.

Chromosome Aberrations↗

Molecular definition of the 11p15.5 region involved in Beckwith-Wiedemann syndrome and probably in predisposition to adrenocortical carcinoma.

To define more precisely, in molecular terms, the region involved in Beckwith-Wiedemann syndrome (BWS), we have studied patients with BWS and a constitutional duplication of 11p15 using eight 11p15 markers. In the first case with a de novo duplication and extra material on 11p, the region spanning pter to CALCA, excluded, was duplicated. In the second case, the rearrangement was characterized using somatic cell hybrids established with lymphocytes from the father who carried a balanced translocation t(11;18)(p15.4;p11.1). The breakpoint lay exactly in the same region. It could thus be inferred that the two sons, who were the first cases reported of BWS with dup11p15 and adrenocortical carcinoma (ADCC), carried a duplication similar to that observed in the first case. Together with evidence for specific somatic chromosomal events leading to loss of 11p15 alleles in familial cases of ADCC, it can be hypothesized that a gene involved in predisposition to ADCC maps to region 11p15.5.

Adrenal Cortex Neoplasms↗

X-linked hypohidrotic ectodermal dysplasia and t(X;12) in a female.

A female patient with features of hypohidrotic ectodermal dysplasia (HED) was found to be a carrier of a de novo t(X;12) with a breakpoint in Xq13.1. This is the second instance of an X/autosome translocation, with apparently the same X breakpoint, reported in HED.

Child, Preschool↗

The decrease of catalase or esterase D activity in patients with microdeletions of 11p or 13q does not increase their radiosensitivity.

Lymphocyte cultures from patients affected by retinoblastoma (Rb), with or without a microdeletion of chromosome 13, and Wilms tumor (WT), with a microdeletion of chromosome 11p where exposed to gamma-ray radiation during S and G2 phases. Chromatid and chromosome lesions were scored and compared to those observed in controls. No significant differences were detected, neither between patients and controls, nor between patients carrying or not a microdeletion. This lack of difference was unexpected since the genes for catalase and esterase D, also called S-formyl glutathione hydrolase, which are two detoxication enzymes, are deleted in case of microdeletion of 11p and 13q, respectively.

Acatalasia↗

Regional mapping of the human renin gene to 1q32 by in situ hybridization.

Renin, related to other aspartyl proteases, plays an important role in the cascade which regulates blood pressure and salt metabolism. A human renin 1 100 bp long cDNA including most of the coding region and the 3' non coding region has been subcloned by Soubrier et al., 1983. A 1000 b RNA probe derived by subcloning into pSP64 vector was hybridized to EcoRI and HindIII digests of the DNA of a panel of 24 man-rodent somatic cell hybrids. With HindIII, four restriction fragments were observed, two of them revealing polymorphism (8.4 kb and 6.0 kb). Analysis of the distribution of the human signal among the hybrids confirms the localization of the renin gene (REN) to human chromosome 1. The whole plasmid including the 1 100 bp long insert was used for regional mapping by in situ hybridization; 45% of silver grains were found on chromosome 1, with a clear peak at band 1q32 (33% of silver grains on chromosome 1) and a smaller one at band 1q42 (17%). These data favour a regional localization of the renin gene to 1q32-1q42. Mac Gill et al. (1987) have localized the REN gene to 1q25-1q32 using in situ hybridization. Thus, 1q32 could be the most probable localization. No other peak could be observed. This is in agreement with results obtained with somatic cell hybrids.

Chromosome Mapping↗

Incontinentia pigmenti: Xp breakpoint is not the same in a case of r(X) and in X/autosome translocations.

X-specific DNA probes were used to characterize the r(X) of a 45,X/46,X,r(X) female patient with Incontinentia pigmenti. It was found to be of maternal origin. Breakpoints were shown to be in or distal to p11.22 and between q12.2 and q13.1. When considering all known cases of Incontinentia pigmenti and X rearrangements at least four different break sites on the X have been shown.

Chromosome Aberrations↗

Y;autosome translocations and mosaicism in the aetiology of 45,X maleness: assignment of fertility factor to distal Yq11.

Three 45,X males have been studied with Y-DNA probes by Southern blotting and in situ hybridization. Southern blotting studies with a panel of mapped Y-DNA probes showed that in all three individuals contiguous portions of the Y chromosome including all of the short arm, the centromere, and part of the euchromatic portion of the long arm were present. The breakpoint was different in each case. The individual with the largest portion (intervals 1-6) is a fertile male belonging to a family in which the translocation is inherited in four generations. The second adult patient, who has intervals 1-5, is an azoospermic, sterile male. These phenotypic findings suggest the existence of a gene involved in spermatogenesis in interval 6 in distal Yq11. The third case, a boy with penoscrotal hypospadias, has intervals 1-4B. In situ hybridization with the pseudoautosomal probe pDP230 and the Y chromosome specific probe pDP105 showed that Y-derived DNA was translocated onto the short arm of a chromosome 15, 14, and 14, respectively. One of the patients was a mosaic for the 14p+ translocation chromosome. Our data and those reported by others suggest the following conclusions based on molecular studies in eight 45,X males: The predominant aetiological factor is Y;autosome translocation observed in seven of the eight cases. As the remaining case was a low-grade mosaic involving a normal Y chromosome, the maleness in all cases was due to the effect of the testis determining factor, TDF. There is preferential involvement of the short arm of an acrocentric chromosome (five out of seven translocations) but other autosomal regions can also be involved. The reason why one of the derivative translocation chromosomes becomes lost may be that it has no centromere.

Adolescent↗

Regional mapping to 4q32.1 by in situ hybridization of a DNA domain rearranged in human liver cancer.

Recently, a unique cellular DNA segment, representing the normal allele counterpart of hepatitis B virus integration site, has been isolated. It has allowed the identification of a cellular domain in which rearrangements occur in approximately 10% of primary liver tumours. We here report on the assignment of this probe, D4S112, by in situ hybridization to band 4q32.1.

Carcinoma, Hepatocellular↗

6q1 monosomy: a distinctive syndrome.

A female infant with a de novo del 6q14q16.2 and five other patients with del 6q1 reported in the literature allow the delineation of a characteristic syndrome, the main features of which are: severe mental retardation, a round face with full cheeks, upslanting palpebral fissures, a short neck, umbilical hernia, malpositioned feet with syndactyly II-III, and typical dermatoglyphics with an excess of whorls and clinodactyly of the Vth finger.

Abnormalities, Multiple↗

Duplication of HRAS1, INS, and IGF2 is not a common event in Beckwith-Wiedemann syndrome.

A few cases of Beckwith-Wiedemann syndrome (BWS) have in common a duplication of 11p15. Among the genes located in 11p15, c-Ha-ras 1 (HRAS1), insulin (INS), and insulin-like growth factor II (IGF2) may account for the clinical features and the increased risk for malignancy. Using eight 11p15 markers including HRAS1, INS and IGF2 we have studied eight sporadic and hereditary cases of BWS whether or not associated with a nephroblastoma. By gene dosage determination and family studies, we have shown the following: the eight patients examined had an apparent diploid representation of all of the eight markers studied, thus indicating that a microduplication of these markers or of the region characterized by these markers is not a common event in BWS; in a family with three affected sibs the genes for HRAS1 and INS/IGF2 did not cosegregate with BWS and therefore may not participate in the pathogenic processes here observed.

Beckwith-Wiedemann Syndrome↗