PubMed HealthSearch

SEARCH · PubMed Health

Results for “Monosomy”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Distal 11q monosomy. The typical 11q monosomy syndrome is due to deletion of subband 11q24.1.

In this paper we describe two new patients with distal 11q monosomy and precisely localize breakpoints using high resolution banding techniques. The findings in these two patients further contribute to the precise localization of the crucial band for 11q monosomy syndrome as being at 11q24.1. A very distal 11q24.2 deletion in the second patient resulted in a completely different phenotype.

Adult

Monosomy 14, monosomy 22 and 13q--three chromosomal abnormalities observed in cells of two malignant mesotheliomas studied by banding techniques.

Two malignant mesotheliomas were studied by banding techniques. Both neoplasms had a hypodiploid stemline. Five and eight marker chromosomes, respectively, were included in the stemline karyotypes. Monosomy 14, monosomy 22 and a No. 13 with an interstitial long-arm deletion were deviations found in both neoplasms. In addition, closely located regions in No. 1 and No. 3 were involved in both tumors in the formation of other marker types with dissimilar morphology.

Adult

Pathogenetic significance of "pure" monosomy 7 in myeloproliferative disorders. Analysis of 14 cases.

Monosomy 7 is frequent in acute myeloid leukaemia (AML) and in preleukaemic dysmyelopoietic syndromes but often it is not the only chromosome anomaly associated with these conditions. We report 14 patients with "pure" monosomy 7 and their clinical and haematological data are analysed in order to clarify the possible implications of this chromosome anomaly. The following points are considered: 1) In spite of the apparent variability of clinical forms in which monosomy 7 is found, several characteristics are common to all monosomy 7 patients, i.e. the presence of a preleukaemic phase and blood and marrow features suggesting the early involvement in the disease of all marrow cell lines. The different diagnoses associated with monosomy 7 are correlated with different steps of a unique myeloproliferative disease whose typical course can be reconstructed. 2) Monosomy 7 has a negative prognostic value. When it is found in a preleukaemic disorder it indicates a high risk of progression to AML, while in AML it implies recurrent infections, poor response to therapy and short survival. 3) The significance of the lack of Colton blood group antigens in monosomy 7 patients is discussed, with particular regard to the fact that the patients in whom this lack was found are the only ones who had not received transfusions in the months before the tests were done. 4) The finding of defective neutrophil chemotaxis in monosomy 7 patients is confirmed and the clinical importance of this fact is emphasized. 5) The data on the 14 patients support the opinion that AML, in general, is heterogeneous in origin. It is postulated that monosomy 7 is a marker of a specific pathogenetic pathway of AML, which implies the beginning of the malignancy in a pluripotent stem cell.

Adult

Clonal analysis of myelodysplastic syndrome: monosomy 7 is expressed in the myeloid lineage, but not in the lymphoid lineage as detected by fluorescent in situ hybridization.

Conflicting results have been published on whether or not myelodysplastic syndromes (MDS) affect all cell lineages. Involvement of myeloid and erythroid cell lineages has been regularly observed, but it remains controversial whether the different lymphoid cell lineages are involved. In this study of eight patients with MDS associated with monosomy 7, fluorescent in situ hybridization (FISH) was used to enumerate the chromosomes 7 in interphase cells. With the probe D7Z1, the rate of false-positive detection of monosomy 7 was 3% +/- 2% in normal cells. T- and B-cell lines were established from eight patients with MDS and monosomy 7. As determined by FISH in interphase cells, 1.9% (0% to 3%) of the cells in the B-cell lines showed one fluorescent spot and 1.1% (0% to 2.9%) of the cells in the T-cell lines. These values do not differ from normal values. However, the possibility that normal cells were selected when the T- and B-cell lines were established could not be excluded. Therefore, peripheral blood cells were obtained, separated according to surface markers specific for lymphoid and myeloid cell lineage with a cell sorter, and analyzed for the expression of monosomy 7 by FISH. Antibodies recognizing T cells (CD3), B cells (CD20), natural killer (NK) cells (CD57), monocytes and granulocytes (low and high expression of CD11b antigen), and myeloid progenitors (CD33) were used to separate cells. The expression of monosomy 7 in the T cells, NK cells, and B cells did not differ from control values. These results in the lymphoid subpopulations are in stark contrast with the observations in the myeloid populations; the percentage of cells with monosomy 7 ranged from 9% to 78% (controls: 6% +/- 2%) in cells with low CD11b expression, 20% to 89% in cells with a high expression of the CD11b antigen (controls: 7% +/- 3%), and 23% to 91% in the CD33 positive cells (controls: 5% +/- 3%). The results of this study suggest that monosomy 7 does not usually affect lymphoid subpopulations but is restricted to committed progenitor cells with the capacity to differentiate into mature myeloid cells.

Adolescent

Monosomy 7 syndrome in an infant with neurofibromatosis.

A 9-month-old boy with known familial neurofibromatosis type I (NF-1) presented with a clinical and laboratory picture suggestive of juvenile chronic myelomonocytic leukemia (JCMMoL). Chromosomal studies obtained from the bone marrow indicated, however, that he had monosomy 7 syndrome. We believe this is the first reported case of monosomy 7 syndrome in a child with NF in the United States, and that this case complements a recent report of two cases of NF, JCMMoL, and monosomy 7 in Japanese children. Since monosomy 7 syndrome is very difficult to differentiate from JCMMoL or acute nonlymphocytic leukemia (ANLL) unless appropriate chromosomal studies are obtained, we believe it is possible that monosomy 7 may occur with increased frequency in patients with NF-1. Monosomy 7 syndrome might therefore be a significant cause of the known association between NF-1 and nonlymphoid leukemia.

Antineoplastic Combined Chemotherapy Protocols

Reactive oxygen species of neutrophils from patients with monosomy 7 in the bone marrow: contradictory chemiluminescence activity by whole blood or by purified cells.

Monosomy 7, a deletion of the long arm of chromosome 7, was shown in the neutrophils of peripheral blood in 5 of 6 patients with a myelodysplastic syndrome or leukemia who had monosomy 7 in their bone marrow cells. In a chemiluminescence assay the production of reactive oxygen species by neutrophils from patients was increased in whole blood and decreased in purified cells, which suggests that neutrophils with monosomy 7 tolerate poorly the cell purification procedures used. The in vitro migration of purified neutrophils obtained from patients with monosomy 7 was impaired. It is known that patients with monosomy 7 have an increased susceptibility to infections. It is possible that neutrophils with monosomy 7 are too easily triggered to a full-scale respiratory burst and thereby the cells exhaust their ability to eliminate invading microbes efficiently.

Adult

Diabetes insipidus, acute myelogenous leukemia, and monosomy 7.

Diabetes insipidus together with acute myelogenous leukemia has rarely been seen. Still rarer is the occurrence of monosomy 7 with the two diseases (only six cases reported). A patient who had diabetes insipidus develop before the diagnosis of acute myelogenous leukemia was found at karyotyping to have monosomy 7. Although a specific mechanism whereby monosomy 7 would cause diabetes insipidus has been proposed, some have suggested that monosomy 7 may have its effect by altering cell wall membranes. Others have suggested that acute myelogenous leukemia causes diabetes insipidus by causing infiltrates in the hypothalamus or posterior lobe of the pituitary gland. Magnetic resonance imaging of the patient's brain showed no abnormalities of the hypothalamus or pituitary gland. Lumbar puncture revealed no leukocytes in the cerebrospinal fluid. The authors believe that the cause of diabetes insipidus can be explained in patients with acute myelogenous leukemia by checking for monosomy 7 during karyotyping. Because karyotyping is now more frequently performed in evaluation of patients for chemotherapy or bone marrow transplantation, genetic abnormalities such as monosomy 7 will become increasingly apparent.

Anti-Bacterial Agents

Bone marrow monosomy 7: hematologic and clinical manifestations in childhood and adolescence.

The hematologic manifestations and clinical course are described for six children and adolescents with bone marrow monosomy 7. One child with secondary acute myelogenous leukemia had monosomy 7 plus a marker chromosome; the remaining patients had marrow monosomy 7 as the only karyotypic abnormality. The hematologic abnormalities were diverse, but the majority of patients had a smoldering preleukemic or myeloproliferative phase. Leukemic blasts were either undifferentiated or demonstrated evidence of myeloid differentiation. All patients responded poorly to antileukemic therapy. Bone marrow monosomy 7 was observed in one patient with severe marrow hypoplasia. Antileukemic therapy in another patient with greater than 30 per cent marrow blasts was associated with the development of a bone marrow myeloproliferative disorder with persistence of the monosomy 7 karyotype. We speculate that monosomy 7 may be a specific marker for a pluripotent hematopoietic stem cell abnormality that is associated with either blastic leukemia or a myeloproliferative disorder.

Acute Disease

[Effect of monosomy of the autosomes on the preimplantation stages of embryogenesis in laboratory mice].

The effects of monosomy for the autosomes 1, 2, 3, 5, 6, 16 and 19 were studied in mice with single or double Robertsonian translocations. The monosomy for different autosomes affects the preimplantation development of the mouse embryos in different ways. The monosomy for the autosomes 1, 3, 6, 16 or 19 does not affect cleavage, compactization or blastulation and is, in some cases, even compatible with the implantation. The most these embryos are eliminated at the blastocyst stage (monosomy for the autosomes 3, 6 or 19) or, sometimes, at the postimplantation stages (1 or 16). The monosomy for the autosomes 2 or 5 is realized during cleavage causing the developmental delay, pathological changes in the nuclei of blastomeres and elimination at the morula stage. The results obtained suggest differential activity of chromosomes at the preimplantation stages of embryogenesis. Possible reasons for the early death of the embryos with particular types of monosomy are discussed. A hypothesis of mutual activation of the homologous autosomes at the early developmental stages is put forward. According to this hypothesis, the loci of a single unpaired autosome, especially of paternal origin, remain inactive during the early embryogenesis.

Aneuploidy

The effects of X monosomy on brain development: monozygotic twins discordant for Turner's syndrome.

Monosomy for the X chromosome is the most frequent cause of Turner's syndrome, a common clinical syndrome associated with particular physical and neurobehavioral features. The results from comprehensive assessment of prepubertal monozygotic female twins discordant for X monosomy are presented. Zygosity was established with DNA Fingerprinting and no evidence of chromosomal mosaicism was seen in either child. Physical features in the affected twin were relatively mild with respect to the full spectrum of physical malformations and disabilities associated with Turner's syndrome. The neurobehavioral phenotypes of the twins were compared. Although both sisters scored in the superior range of intelligence, the affected twin's Performance IQ was 18 points less than her sister, whereas Verbal IQ showed only a 3-point difference between the sisters. Other relative differences were noted within the executive, visuospatial, and visuomotor domains of function. Behavioral evaluation indicated greater problems with attention, hyperactivity, and anxiety in the affected twin. Quantitative analysis of brain anatomy revealed evidence of both general and regional effects of X monosomy on neurodevelopment. Cerebrospinal fluid volume was increased by 25% in the affected twin compared with her sister with a corresponding decrease in gray matter volume. The right frontal, right parietal-occipital, and left parietal-perisylvian regions showed the greatest discrepancy between the sisters with respect to increased cerebrospinal fluid and decreased gray matter volumes in twin with X monosomy. Differences in the posterior fossa were also noted with a 50% relative increase in the volumes of the fourth ventricle and cisterna magna and a 10 to 15% relative reduction in size of the cerebellar vermis, pons, and medulla in the affected twin. The association between the neurobehavioral and neuroanatomical findings in the affected twin is discussed. The unique nature of the naturally occurring genetic phenomenon seen in this twin pair provides an opportunity to more fully elucidate the neurobehavioral phenotype associated with X monosomy and Turner's syndrome.

Brain

Detection of monosomy 7 by fluorescence in situ hybridization in acute nonlymphocytic leukemia and myelodysplastic syndrome.

Fluorescence in situ hybridization (FISH) with a chromosome 7 specific alpha satellite DNA probe was used to detect monosomy 7 in interphase and metaphase cells obtained from patients with myelodysplastic syndrome (MDS) and acute nonlymphocytic leukemia (ANLL). Chromosome analysis revealed monosomy 7, either alone or as part of a complex chromosome abnormality, in all cell samples. FISH analyses of 12 marrow samples and a blood sample using a chromosome 7 specific alpha satellite DNA probe revealed a single fluorescence spot in 80.5-97.5% of interphase cells indicating monosomy 7. In contrast, 83.5-92.0% of the same cells had two copies of chromosome 17 as two fluorescent spots were detected using a chromosome 17 specific alpha satellite DNA probe used as a positive control. The proportion of interphase cells with monosomy 7 did not correlated with the percentage of metaphase cells with monosomy 7 detected by conventional karyotyping or with the percentage of blast cells in the bone marrow.

Adult