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Abnormal chromosome in Prader-Willi syndrome.

A Prader-Willi Syndrome (PWS) patient was found to have an extra satellite chromosome, smaller than the normal Chromosome 22, in 60% of her metaphases. G- and C-bandings showed that the extra chromosome did not derive from a Chromosome 15 as has been reported in some PWS patients. Because of variation in chromosomal abnormalities in the PWS patients reported, it was concluded that the chromosomal abnormalities found in them may be a secondary phenomenon rather than the cause of PWS.

Adult↗

Multiple myeloma with monosomy 13 developed in trisomy 13 acute myelocytic leukemia: numerical chromosome abnormality during chromosomal segregation process.

We report here an acute myelocytic leukemia (AML-M2) patient with trisomy 13 as the sole cytogenetic anomaly, who had relapse of AML with a normal karyotype and developed multiple myeloma. Fluorescence in situ hybridization analysis using the RB gene probe revealed the plasma cells of multiple myeloma (MM) to have monosomy 13 anomaly, whereas relapsed blast cells of AML carried disomy of chromosome 13. To our knowledge, this is the first case showing clonal evolution of trisomy 13 AML and monosomy 13 MM, which might be derived from the leukemic clone at relapse.

Chromosome Aberrations↗

Faconi anemia and bone marrow clonal chromosome abnormalities.

Clonal chromosome abnormalities were detected in bone marrow cells of 20 patients with Fanconi anemia investigated at various stages of the disease. Two presented with acute leukemia, six with myelodysplastic syndrome, and 12 had minor or no morphological abnormalities of hematopoietic cells. Abnormalities of chromosome 7 were detected in nine patients (monosomy, isochromosome, or other structural rearrangement), and chromosome 1 was rearranged in four. The types and the significance of clonal chromosome abnormalities which may be present without apparent evolution toward acute leukemia or myelodysplastic syndrome in Fanconi anemia patients are discussed.

Adolescent↗

Abnormal chromosomes in histocytic lymphoma.

Five of six diffuse histocytic lymphoma patients had chromosomal abnormalities. Four had abnormal clones; three, a large acrocentric chromosome (LAC); and one, an abnormal large submetacentric chromosome (LSC). The LAC was a 14q+ and the LSC, a 4q+. Although no cytogenetic abnormality was found in a normal lymph node of a patient whose diseased lymph node had an LAC, abnormal chromosomes were seen in three patients with normal morphological bone marrow and in two peripheral blood specimens with a normal differential count. Since staging is important in aiding the clinician to select the type of treatment in this disease, it is recommended that cytogenetic studies in all biopsied tissues should be done as part of an overall diagnostic procedure in patients suspected of this disease.

Aged↗

Chromosomal abnormalities and y chromosome microdeletions in infertile men with varicocele and idiopathic infertility of South Indian origin.

Various factors cause spermatogenesis arrest in men and, in a large number of cases, the underlying reason still remains unknown. Little attention is paid to determining the genetic defects of varicocele-related infertility. The objective of our present study was to investigate the chromosomal abnormalities and Y chromosome microdeletions in infertile men of South Indian origin with varicocele and idiopathic infertility. Metaphase chromosomes of 251 infertile men with varicocele and unexplained infertility were analyzed using Giemsa-Trypsin-Giemsa (GTG) banding and fluorescence in situ hybridization (FISH). The microdeletions in 6 genes and 18 sequence-tagged-sites (STS) in the Yq region were screened using polymerase chain reaction (PCR) techniques. Out of 251 infertile men, 57 (22.7%) men were with varicocele, of which 8.77% were azoospermic, 26.31% were severely oligozoospermic, 21.05% were mildly oligozoospermic, and 43.85% were oligoasthenoteratozoospermic (OAT), and 194 (77.29%), with idiopathic infertility, of which 51% were azoospermic, 13.40% were severely oligozoospermic, 19.07% were mildly oligozoospermic, and 16.4% were with OAT. Genetic defects were observed in 38 (15.13%) infertile individuals, including 14 (24.56%) men with varicocele and 24 (12.37%) men with idiopathic infertility. The frequencies of chromosomal defects in varicocele and idiopathic infertility were 19.3% and 8.76%, respectively, whereas Y chromosome microdeletions were 5.26% and 3.60%, respectively. Overall rate of incidence of chromosomal anomalies and microdeletions in 251 infertile men were 11.5% and 3.98%, respectively, indicating a very significant higher association of genetic defects with varicocele than idiopathic male infertility. Our data also demonstrate that, among infertile men with varicocele, severely oligozoospermic and OAT men with varicocele have higher incidences of genetic defects than mildly oligozoospermic and azoospermic men.

Adult↗

Prevalence and distribution of chromosome abnormalities in a sample of first trimester internal abortions.

Cytogenetic analysis was performed directly on villus material from 202 samples obtained at the evacuation of the uterine cavity in cases of retained abortion in the first trimester, identified as such by ultrasound examination. A precise delineation of the karyotype was obtained in 94% of the cases, while the efficiency of karyotype analysis in samples of spontaneous abortion was not higher than 50%. An abnormal chromosome constitution was found in 145 fetuses (76.7%) of which 117, including mosaics, were aneuploid (70%), 16 polyploid (8.5%) and 12 had structural abnormalities (6.3%). The relative proportion of chromosome abnormalities in this material is higher than that found in spontaneous abortion for trisomies and double trisomies, but lower for 45,X and polyploidy. The method was found to be efficient in obtaining fetal karyotypes also in those cases in which the villous material was scarce (1 mg), and thus it seems appropriate for routine cytogenetic studies in the first trimester abortions.

Abortion, Spontaneous↗

Transmission of chromosomal abnormalities: participation of chromosomally unbalanced gametes in fertilization and early development of unbalanced embryos in the Chinese hamster.

Using 14 Chinese hamster stocks with various reciprocal translocations, chromosomally unbalanced gametes were produced and used to investigate the participation of the unbalanced gametes in fertilization and the development of unbalanced embryos. The selection of chromosomally abnormal gametes during fertilization was investigated by the chromosomal analysis of meiotic cells in heterozygotes for the 14 reciprocal translocations and pronuclei of fertilized ova obtained from crossing these heterozygotes. Compared with the expected frequencies from meiotic metaphase II (MII) scoring, the frequencies of male pronuclei having commonly a deficiency of chromosome 1 (q14-->q42) or chromosome 3 (p23-->q31) in one-cell embryos decreased significantly. However, the frequencies of male pronuclei with other abnormalities were all consistent with those expected from MII scoring. In contrast, the frequencies of female pronuclei with any karyotype including the same ones, as those decreased in male pronuclei from the translocation heterozygotes were all consistent with those estimated from MII scoring. These results suggest that gametes with nullisomies as well as disomies for any chromosomal segments may mostly participate in fertilization, whereas some sperm nullisomic for the specific segments of chromosomes 1 and 3 may fail to fertilize. On the other hand, the zygotic selection of chromosomal imbalance was investigated by direct analyses of pre-implantation embryos from crosses between chromosomally normal females and male heterozygotes from the 14 stocks with various reciprocal translocations. The chromosomal and morphological analysis revealed that some embryos were arrested in development at the two-cell stage and their common abnormality was partial monosomy for chromosome 1 or 2. Embryos with partial monosomy including chromosomes 1, 3 and 4 showed arrested development at four-eight-cell stages. Among day 4 embryos, some chromosomally unbalanced embryos, mainly with a deficiency of other segments, such as chromosomes 1p, 2q, 5q and 8, had fewer blastomeres than karyotypically normal and balanced embryos. The homology between the mouse and the Chinese hamster chromosomes relating to the developmental abnormalities at early stages was partially confirmed.

Animals↗

The genetic sonogram: its use in the detection of chromosomal abnormalities in fetuses of women of advanced maternal age.

Real-time and color Doppler ultrasound were used to examine 103 second trimester fetuses with abnormal chromosomes (trisomies 13, 18, 21 and sex aneuploidy =86; other =17) and 2000 controls from women of advanced maternal age who electively underwent genetic amniocentesis. Ten ultrasound markers were analyzed and likelihood ratios were computed for each abnormal ultrasound finding and for a normal ultrasound study if none of the ten markers were present. Abnormal ultrasound markers were present in 81% of fetuses with abnormal karyotypes. The false-positive rate was 13%. The likelihood ratios and the 5% and 95% confidence limits for each of the ultrasound markers were as follows: choroid plexus cyst(s) 1.5 (0.7-3.6); central nervous system abnormalities 16.2 (4.4-60.3); abnormal nuchal skin fold 20.9 (8.4-52.1); ventricular septal defect 8.3 (4.7-14.9); outflow tract defects of the heart 3.6 (0.9-14.6); right-to-left chamber disproportion of the heart 36.9 (14.4-94.5); pericardial effusion 7.2 (3.2-16.1); tricupsid regurgitation 4.7 (2.1-10.7); hyperechoic bowel 3.7 (1.8-7.7); and pyelectasis 2.7 (1.0-7.7). All ultrasound markers were independent of each other. The likelihood ratio following a normal ultrasound study was 0.20. Isolated ultrasound markers were present in 20.4% (n=21) of fetuses. When all markers were compared to non-cardiovascular markers, the detection rate for fetuses with a chromosomal abnormality decreased from 81% to 52% (p<0.01). Given the above data, the posterior risk following an ultrasound examination using the ultrasound markers evaluated in this study can be used to compute the risk for an abnormal karyotypes in women of advanced maternal age.

Adult↗

Genetic counseling for sex chromosome abnormalities.

Sex chromosome abnormalities (SCAs) are the most frequently occurring chromosomal abnormalities encountered at both prenatal diagnosis and at birth. Approximately 1/400 newborns has an SCA, and incidence at prenatal diagnosis is even greater, 1/250 to 1/300. Physicians and health providers from various specialties are encountering diagnoses of SCAs with increased frequency as more individuals are becoming identified, both prenatally and postnatally. Because these conditions generally have relatively few serious physical implications and because they are extremely variable, genetic counseling is often more complex and challenging than that occurring with an autosomal abnormality. It is imperative that health professionals have the knowledge of content and methodology to provide appropriate counseling to such individuals and their families. During the period from 1964 to 1975, seven international groups (including the Denver group) screened a total of 199,898 consecutive births and identified 307 individuals with SCA. The Denver group has followed more than 40 such individuals from birth to adulthood. In addition, the Denver group has experience in counseling over 1,000 families with a prenatal diagnosis of SCA. Based on these studies and contacts, guidelines for the counseling of individuals and families with SCA are provided. Accurate information must be presented and the variability and imprecise prognosis recognized. Successful counseling strategies include interfamily contact, viewing photographs, and utilizing support groups. Issues of disclosure, follow-up, and anticipatory guidance should be addressed.

Disclosure↗

The value of reverse banding in detecting bone marrow chromosomal abnormalities: translocation between chromosomes 1, 9, and 22 in a case of chronic myelogenous leukemia (CML).

A case of chronic myelogenous leukemia (CML) with complex chromosomal abnormalities is reported. Conventional staining techniques indicated incorrectly that the Ph1 chromosome was not present. These studies showed a 46,XY,-1,+C karyotype in all bone marrow cells. Employing RFA (R bands by fluorescence using acridine orange) technique it was clear that the part of the long arm of chromosome 1 (1q23 leads to qter) was missing the tip of the long arm chromosome 22 (band q22) was translocated to it. The missing long arm of chromosome 1 was translocated to the long arm of chromosome 9. Furthermore, there was a break at band 9q22 and the whole terminal part was lost. The value of RFA technique is discussed.

Acridines↗

Further cases of equine sex chromosome abnormalities.

Sex chromosome abnormalities have been detected in a further five mares with clinical histories of small ovaries and absent or irregular oestrous cycles. Three mares had 63,XO karyotypes (X monosomy) and two were sex chromosome mosaics with karyotypes of 63,XO/64,XY and 63,XO/64,XX/64,XY respectively. A sex chromosome abnormality (X monosomy) has also been found in a filly where it was suspected because of her short stature.

Journal Article↗

An update of chromosomal abnormalities in mares.

Chromosomal abnormality was detectable in 98 of 180 mares aged 3 years or over with gonadal dysgenesis. The most common abnormality was X monosomy (63,X). The second most common abnormality was a karyotype indistinguishable by G- or C-banding from that of a male horse (64,XY). Two mares demonstrated structural abnormality of one X chromosome [64,X,del(Xp)] which has not previously been reported in horses. One of these foaled a filly with the same karyotype as her dam. Blood typing confirmed parentage of the foal. This is the only example in our experience of fertility in a mare with gonadal dysgenesis and chromosomal abnormality. Chromosomal abnormalities were also found in 4 yearling fillies investigated solely because of small size, poor conformation and lack of vigour. One was 63,X; one was 63,X/64,XX; one was 64X,del(Xp) and the 4th had an autosomal trisomy, tentatively 64,XX,i(?26), which demonstrated a second new abnormal karyotype of the horse.

Animals↗

Hemifacial microsomia and abnormal chromosome 22.

We report on partial dup(22q), growth deficiency, and the facioauriculovertebral sequence including hemifacial microsomia, cleft lip and palate, preauricular tags, and hearing loss in one patient. No endocrine or systemic cause for growth deficiency was identified. The case illustrates applicability of chromosome analysis in syndrome-associated growth failure, and a previously unreported associated chromosome abnormality.

Abnormalities, Multiple↗

Inverted neurons in agyria. A Golgi study of a case with abnormal chromosome 17.

An anatomoclinical observation of agyria is reported. The karyotype revealed a partial deletion of the short arm of chromosome 17. The etiology of agyria is reviewed in the light of this chromosomal abnormality. In addition we describe the peculiar pattern of neurons in the cortex: Golgi stain demonstrated many inverted pyramidal cells in the superficial part of the cortical layer. The mechanism of this abnormality is discussed.

Abnormalities, Multiple↗

Microdissection and DOP-PCR-based reverse chromosome painting as a fast and reliable strategy in the analysis of various structural chromosome abnormalities.

Reverse chromosome painting has become a powerful tool in clinical genetics for the characterization of cytogenetically unclassifiable aberrations. In this report, the application of a sensitive and rapid procedure for the complete and precise identification of four different de novo structural chromosome abnormalities is presented. These chromosome rearrangements include a marker derived from chromosome 3(cen-q11), an interstitial deletion of chromosome 13 [del(13)(q14q22)], an unbalanced translocation [46,XY, -4, +der(4)t(4;8)(p 15.2;p21.1)] leading to Wolf-Hirschhorn syndrome, and a partial inverted duplication in conjunction with a partial deletion of chromosome 5p [46,XX, -5, +der(5)(:p13-p15.1::p15.1-qter)] which is responsible for the manifestation of the cri-du-chat syndrome. The importance of a fast and reliable evaluation of complex chromosome aberrations in pre- and postnatal diagnosis with regard to comprehensive genetic counselling is emphasized.

Chromosome Aberrations↗

Chromosome abnormalities in malignant melanoma: clinical significance of nonrandom chromosome abnormalities in 206 cases.

We report the cytogenetic abnormalities from a series of 206 primary malignant melanoma specimens referred to a single institution. A total of 169 out of 206 unique cases had chromosome breakpoints. A previously described statistical method was used to detect nonrandom distribution of chromosome breakpoints at the level of chromosome regions. Nonrandom occurrence of chromosome breakpoints (indicating that the observed number of breaks significantly exceeded the expected number of breaks) was detected in 28 regions, suggesting a hierarchy of genetic abnormalities in melanoma. Clinical variables and tumor characteristics were analyzed for associations with the presence of any nonrandom chromosome breakpoints; with individual, nonrandomly involved chromosome regions; and with paired, nonrandomly involved chromosome regions. No nonrandomly involved chromosome regions or pairs of regions appeared to significantly affect survival. These results identify recurring, nonrandom chromosome abnormalities in malignant melanoma. These results suggest that recurring, nonrandom chromosome alterations play a key role in the etiology and/or progression of malignant melanoma and identify targets within the genome for molecular genetic studies.

Chromosome Aberrations↗

Chromosomal abnormalities in Philadelphia chromosome-negative metaphases appearing during imatinib mesylate therapy in patients with Philadelphia chromosome-positive chronic myelogenous leukemia in chronic phase.

BACKGROUND: Anecdotal cases of chromosomal abnormalities in Philadelphia chromosome (Ph)-negative metaphases have been reported in patients with chronic myelogenous leukemia (CML) in the chronic phase during treatment with interferon and, more recently, with imatinib. This phenomenon is different from true clonal evolution in that the additional cytogenetic abnormality occurs in Ph-negative cells. METHODS: The authors analyzed their experience with 342 patients with CML in chronic phase treated with imatinib to investigate the frequency and significance of this event. RESULTS: After a median follow-up of 30 months (range, 16-35 months), 21 patients (6%; 95% confidence interval, 0.04, 0.09) developed 25 chromosomal abnormalities in Ph-negative cells. Thirteen (54%) of these abnormalities were seen in 2 or more metaphases. The median time from the start of treatment with imatinib to the appearance of the abnormalities was 6 months (range, 3-22 months). The most common cytogenetic abnormality detected was trisomy 8 (33%). Twenty of 21 patients (95%) achieved a major (Ph < 35%) cytogenetic response (complete cytogenetic response in 13-62%). After a median follow-up of 22 months (range, 4-33 months), all 21 patients were alive, 20 of them in chronic phase and in complete hematologic response. None of the patients showed features of myelodysplasia. CONCLUSIONS: Cytogenetic abnormalities occur in Ph-negative cells in a fraction of patients with CML in chronic phase treated with imatinib. With a short follow-up, no clear clinical consequences can be identified.

Adult↗