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F Mitelman

Publications and source records attributed to F Mitelman.

At least 181 records · Page 10Linked to original sources

Isochromosomes in neoplasia.

In order to ascertain the frequency and distribution of isochromosomes in neoplasia, we surveyed the cytogenetic data from 20,007 tumors with clonal chromosome aberrations reported in the literature. Tumor types for which at least 50 cases with acquired aberrations and 10 cases with isochromosomes had been reported were selected, yielding a total of 18,160 neoplasms. Of these, 1,792 cases (9.9%) displayed a total of 2,014 isochromosomes. The 9 most common isochromosomes (detected in at least 50 cases) were, in decreasing order of frequency, i(17q), i(8q), i(1q), i(12p), i(6p), i(7q), i(9q), i(5p), and i(21q). The frequency of isochromosomes varied among the different tumor types, with the highest incidence in germ cell neoplasms (60%) and the lowest in chronic myeloproliferative disorders (2.3%). Also, the spectrum of isochromosomes differed among the neoplasms. The most common isochromosomes in the different tumor types were i(11q), i(17q), and i(21q) in acute myeloid leukemia; i(9q), i(17q), and i(22q) in chronic myeloid leukemia; i(17q) in chronic myeloproliferative disorders; i(X)(q13), i(17q), and i(21q) in myelodysplastic syndromes; i(7q), i(9q), and i(17q) in acute lymphoblastic leukemia; i(1q), i(7q), i(8q), and i(17q) in chronic lymphoproliferative disorders; i(1q), i(6p), i(9p), i(17q), and i(21q) in Hodgkin's disease; i(1q), i(6p), and i(17q) in non-Hodgkin's lymphoma; i(1q), i(8q), and i(17q) in adenocarcinoma; i(1q), i(3q), i(5p), and i(8q) in squamous cell carcinoma; i(5p), i(8q), and i(11q) in transitional cell carcinoma; i(1q), i(7q), and i(17q) in Wilms' tumor; i(1q), i(12p), and i(17q) in germ cell neoplasms; i(1p), i(1q), i(6p), and i(17q) in sarcoma; i(5p), i(6p), i(7p), and i(21q) in mesothelioma; i(1q), i(6p), and i(17q) in malignant neurogenic neoplasms; i(1q), i(6p), and i(17q) in retinoblastoma; and i(1q), i(6p), and i(8q) in malignant melanoma.

Chromosome Aberrations↗

Fusion of the FUS gene with ERG in acute myeloid leukemia with t(16;21)(p11;q22).

It has been shown that the gene ERG in 21q22 is rearranged in the t(16;21)(p11;q22) associated with acute myeloid leukemia (AML). ERG is a member of the ETS gene family and is fused with EWS in a subset of Ewing's sarcomas. EWS in 22q12 has a very high homology with FUS (also called TLS) in 16p11; the latter gene is rearranged in the t(12;16)(q13;p11) that characterizes myxoid liposarcoma. To investigate whether FUS is involved in the t(16;21) of AML, we used the Southern blot technique and polymerase chain reaction (PCR) to examine the bone marrow of a 3-year-old boy with a t(16;21)(p11;q22)-positive AML. Hybridization of Southern blot filters containing digested DNA with probes for FUS and ERG showed both germline and aberrant fragments. Using specific primers for the 5' part of FUS and the 3' part of ERG, we amplified a 4.4 kb genomic FUS/ERG DNA fragment from the leukemic sample. In a second PCR experiment, in which we used primers upstream of the 5' part of ERG and downstream of the 3' part of FUS, a 5.6 kb fragment was amplified. Blotting and hybridization with specific probes for FUS and ERG revealed that the amplified fragments consisted of FUS/ERG and ERG/FUS hybrid DNA. Both PCR fragments, when used as probes, detected germline ERG and FUS as well as aberrant fragments on Southern blot filters. The results suggest that the t(16;21) in AML leads to rearrangement and fusion of the FUS and ERG genes.(ABSTRACT TRUNCATED AT 250 WORDS)

Base Sequence↗

Clonal structural chromosome aberrations in fibrous dysplasia.

Cytogenetic analysis of short-term cultures from a case of monostotic fibrous dysplasia in a 14-year-old girl revealed multiple clonal structural rearrangements with evidence of clonal evolution. The karyotype was 46,XX,del(3)(q27),add(10)(q22),add(12)(p13)/46,idem,t(3;8)(p21;q13 ),add(10) (q26),der(15)del(15)del(15)(q15q22)ins(15;?) q15;?)/46,id em,-X,+2,t(3;8),add(10),der(15). The finding of clonal structural aberrations suggests that fibrous dysplasia is a neoplastic lesion which develops as the result of somatic mutations.

Adolescent↗

Isolation and regional localization of cosmid linking clones from human chromosome 12.

We have developed a new method for constructing cosmid linking libraries. The method is based on the insertion of a selection gene, beta-lactamase, in genomic cosmid clones containing recognition sites for rare-cutting enzymes. The selection gene is maintained as a gene cassette in a plasmid and may be excised by the enzymes NotI, SacII, SplI, MluI, BssHII, and NarI or combinations of these enzymes. Using this gene cassette and a genomic cosmid library made from a human-hamster cell line containing the human chromosome 12 as its only human component, a chromosome 12-specific NotI linking library was constructed. The NotI linking clones contained recognition sites for other rate-cutting enzymes, SacII and BssHII, at high frequency, indicating the presence of CpG islands. Thirty cosmid linking clones were regionally localized by FISH and were found to be clustered to chromosome bands 12p13, 12q13, and 12q24.

Animals↗

A new cytogenetic subgroup in lipomas: loss of chromosome 16 material in spindle cell and pleomorphic lipomas.

Six spindle cell lipomas and two pleomorphic lipomas were analyzed cytogenetically. One spindle cell lipoma had a supernumerary ring chromosome as the sole anomaly. The other five spindle cell lipomas and both pleomorphic lipomas had hypodiploid stemlines with monosomy 16 or unbalanced aberrations leading to loss of 16q13-qter, a feature distinguishing these lipoma subtypes from other benign and borderline adipose tissue tumor histotypes. unbalanced aberrations of chromosomes 13 and 10 were found in five and three cases respectively; 13q12 was lost in all of these cases, whereas there was no common deleted segment in chromosome 10. No aberrations involving 12q13-15, which are frequent in typical lipomas, were found. Both pleomorphic lipomas, but none of the spindle cell lipomas, had hypotetraploid sidelines, multiple nonclonal aberrations, and telomeric associations. The present findings reveal a new cytogenetic/histopathological association in adipose tissue tumors.

Aged↗

Trisomy 19 as the sole chromosomal anomaly in hematologic neoplasms.

Trisomy 19 was found as the sole chromosomal aberration in three hematologic malignancies: one chronic myelomonocytic leukemia and two cases of of immunophenotypically immature acute myeloid leukemia (AML). A compilation of previously published hematologic neoplasms with +19 as the only change reveals that this anomaly is strongly associated with myeloid malignancies; 25 of 31 cases have been myelodysplastic syndromes (MDS) or AML. Eight of the 11 MDS cases have been either refractory anemia (RA) or RA with excess of blasts, and four of the 14 AML cases have had preleukemic myelodysplastic cases phase, with the +19 accruing during the time of leukemic transformation. The AML cases have, in general, been either or early maturation arrest, i.e. undifferentiated or AML-M1/M2, or of myelomonocytic-monoblastic origin, i.e., AML-M4/M5. None of the MDS or AML cases with +19 had had a previous history of radio- or chemotherapy. We conclude that trisomy 19, as the sole anomaly, is a characteristic abnormality in de novo myeloid malignancies. No clinical features seem to characterize patients with +19 AML and MDS and the prognostic impact of the aberration remains to be elucidated.

Acute Disease↗

Cytogenetic characterization of a periampullary adenocarcinoma of the pancreas, its liver metastasis, and a cell line established from the metastasis and a cell line established from the metastasis in a patient with Gardner's syndrome.

A cell line was established from a liver metastasis of a periampullary pancreatic carcinoma in a patient with Gardner's syndrome. The primary tumor, the liver metastasis, and passages 6 and 15 of the cell line were characterized cytogenetically. The only aberration common to all samples was a der(15)t(8;15); this was probably the primary chromosomal abnormality. Loss of the short arm of chromosome 19 was also found in all samples but was brought about by different aberrations in the primary tumor and the metastasis. The secondary aberrations characteristic of clonal evolution often included further gain of 8q material but losses from 1p, 6q, and chromosomes 17 and 18, all of which have been seen before in sporadic pancreatic and colorectal carcinomas. This is the first cell line established from a tumor in a Gardner's syndrome patient and also the first characterization of an abnormal tumor karyotype associated with this autosomal dominant cancer syndrome.

Adenocarcinoma, Papillary↗

Cytogenetic intratumor heterogeneity in soft tissue tumors.

Multiple (two to seven) samples, obtained from the same surgical specimen or at different occasions, were analyzed in 54 benign and malignant soft tissue tumors, to investigate cytogenetic clonal evolution. In 28 tumors only normal karyotypes were found. Ten tumors had abnormal karyotypes, but were noninformative, most often due to a high level of karyotypic complexity or great cell-to-cell variation. Sixteen tumors were informative: four (leiomyosarcoma, liposarcoma, malignant Schwannoma, and a benign mesenchymal tumor, probably leiomyoma) had identical karyotypes in different samples, whereas the remaining 12 tumors (seven malignant fibrous histiocytomas [MFH], two leiomyosarcomas, two liposarcomas, and one synovial sarcoma) displayed intersample heterogeneity. Also, intrasample heterogeneity was detected; more than one clone was found in 21 of 73 samples with aberrations from 26 tumors. The different clones were related in all cases except two. In seven cases, samples from different occasions were studied, and clonal evolution could be evidenced in five of them, whereas in two cases the karyotypes remained unchanged. The results indicate that the acquisition of ring chromosomes is an early event in the development of MFH and possibly also pleomorphic liposarcoma. The findings, together with previous data, also indicate that rearrangements of 19p13 are late events in the progression of pleomorphic sarcomas. The overall conclusion from this study is that cytogenetic heterogeneity is common in soft tissue tumors, and that this might influence the evaluation of cytogenetic and molecular genetic findings.

Adult↗

No rearrangements of the CHOP gene in malignant fibrous histiocytoma.

The human transcription factor gene, CHOP, which maps to 12q13, was recently shown to be disrupted by the t(12;16)(q13;p11) in myxoid liposarcoma. The most common soft tissue sarcoma, malignant fibrous histiocytoma (MFH) histopathologically may contain liposarcoma like areas and is often characterized by complex chromosome anomalies, which may include 12q13-15 aberrations, but never as t(12;16). By Southern blot technique, we detected no rearrangements of the CHOP gene in 41 MFH, including five with liposarcoma like areas. Thus, rearrangements of the CHOP gene appear to be specific for myxoid liposarcoma with t(12;16) and are not associated with lipoblastic differentiation.

CCAAT-Enhancer-Binding Proteins↗

Cytogenetic heterogeneity in a clear cell hidradenoma of the skin.

Short-term cultures from a clear cell hidradenoma, a benign skin tumor for which no chromosome data exist, were cytogenetically analyzed. A total of eight unrelated aberrant clones were identified. The karyotypic profiles of two separately processed parts of the sample--a tumor nodule and seemingly normal adjacent dermal tissue--were different. Characteristic for the tumor nodule was a single abnormal clonal population consisting of three subclones: 46,XY,der(2)inv(2)(p13q23)t(2;9)(p13;q22), der(9)t(2;9)(q23;q22),t(11;19)(q21;p13),t(12;19)(q24;p13)/46,idem, inv(1)(p32q44)/92,idemx2. The adjacent tissue contained, in addition to the clone found in the tumor nodule, a spectrum of unrelated clones, the largest of which also showed clonal evolution: 45-47,XY,t(3;6)(p25;p25),t(12;17)(q15;q12),-17,+r(17)x2 [cp]/45-47,idem,inv(5)(p15q22)/90-94,idemx2. The remaining six clones found in this part were small and had simpler numerical or structural aberrations. The multiclonal pattern observed in this hidradenoma seems to reflect both cytogenetic convergence and divergence during neoplastic progression. The presence of unrelated clones may be an indication that the tumor was of multicellular origin.

Acrospiroma↗

Acute myeloid leukemia (AML-M1) with multiple trisomies and t(8;21)(q22;q22).

Cytogenetic analysis of an acute myeloid leukemia (AML-M1) showed the karyotype 53,XY, +6, +8,t(8;21)(q22;q22), +9, +10, +13, +19, +21. Only one AML with a massively hyperdiploid karyotype (> 50 chromosomes) and t(8;21) has been published before. A comparison of the two cases reveals similarities both with regard to the morphologic subtype (M1) and to which chromosomes were trisomic (+6, +8, +13, +19, and +21 were found in both cases). We surmise that the t(8;21) was the primary chromosomal abnormality and that the set of multiple trisomies occurred secondarily; this pattern of clonal evolution may have favored a more immature leukemic phenotype in these two cases than is regularly seen in t(8;21)-associated leukemias.

Child↗

Clonal chromosome aberrations in three sacral chordomas.

Cytogenetic analysis was successful in seven of eight sacral chordomas. Clonal chromosome aberrations were detected in three. One had a t(1;6)(q44;q11) as the sole aberration, one displayed three near-diploid clones that shared del(2)(p21), del(9)(p13), -10, structural rearrangements of 12q13, and add(19)(p13), and the third chordoma had two aberrant cell populations--one hypodiploid with several numerical and structural changes, the other hypertriploid-hypotetraploid with all marker chromosomes in duplicate. Including the present cases, seven cytogenetically aberrant chordomas have been reported. Five have had hypodiploid clones and the most frequent changes have been -3, -4, -10, and -13. No recurrent structural rearrangement has been identified; the only chromosome bands involved more than once are 1q21, 3q11, 5p15, 20q13, and 21q22.

Adult↗

Characteristic karyotypic features in lacrimal and salivary gland carcinomas.

Short-term cultures from 12 non-squamous cell carcinomas (NSCCs) of the head and neck were cytogenetically investigated. Three tumours were acinic cell carcinomas, two adenoid cystic carcinomas, three mucoepidermoid carcinomas, two carcinomas in pleomorphic adenoma, and two adenocarcinomas. Clonal chromosome aberrations were detected in all but one adenocarcinoma. Including our data, a total of 40 head and neck NSCCs with clonal aberrations have been described. Deletions of the long arm of chromosome 6 are the most common aberrations (11/40 cases); they have been detected in all types of NSCC except carcinoma in pleomorphic adenoma. Two aberrations seem to be closely associated with tumour type: t(6;9)(q21-24;p13-23), which has been seen in three of 11 adenoid cystic carcinomas (in two as the sole aberration), and structural rearrangements of 8q12-13, which have been detected in three of four carcinomas in pleomorphic adenoma.

Adenocarcinoma↗

Cytogenetic analysis of multifocal breast carcinomas: detection of karyotypically unrelated clones as well as clonal similarities between tumour foci.

Cytogenetic analysis was performed on short-term cell cultures of two foci (A and B) from each of three multifocal breast carcinomas. In case I, four clones (three related and one unrelated) were detected in sample A. In sample B, two of the three related clones and the unrelated clone seen in A were found, as was also a third subclone showing a pattern of clonal evolution slightly different from that detected in A. In cases II and III, multiple cytogenetically unrelated clones were found in A and B, with only one clone being shared by both foci in each case. Our finding of cytogenetic similarities between macroscopically distinct tumour lesions indicates that the multifocality reflects intramammary tumour spread rather than the synchronous emergence of pathogenetically independent carcinomas within the same breast. On the other hand, the detection of karyotypic heterogeneity in the form of cytogenetically unrelated clones in all foci suggests that human breast carcinoma may be polyclonal. This polyclonality may be part of the explanation for the cellular heterogeneity commonly seen at the phenotypic level in breast cancer.

Aged↗

[Significance of chromosomal abnormalities in solid tumors of humans].

Solid tumours in man are characterized by acquired genetic rearrangements that, in most cases, can be detected by cytogenetic methods as clonal chromosomal abnormalities. Whereas primary abnormalities contribute to the establishment of the tumour and often are seen as solitary changes, secondary aberrations accrue during clonal evolution. Both abnormalities are nonrandom in distribution. Some primary abnormalities are so characteristic as to be virtually pathognomonic for particular types of solid tumours, eg, t (11;22)(q24;q12) in Ewing's sarcoma, t (9,22)(q22;q12) in extraskeletal myxoid chondrosarcoma, t (X;18)(p11;q11) in synovial sarcoma, and t (12;16)(q13;p11) in myxoid liposarcoma. To these purely cytogenetic data implicating specific genetic changes in carcinogenesis may now be added a growing evidence of molecular specificity emerging from recombinant DNA-studies. It appears that both currently known classes of directly cancer-relevant genes, the dominant oncogenes and the recessive tumour suppressor genes, are located at precisely those genomic sites that are visibly involved in neoplasia-associated chromosomal rearrangements. The importance of cytogenetic characterization of solid tumors is thus twofold. First, the recurrent aberrations provide insight into the pathogenetic mechanisms that are operative. They pinpoint areas of the human genome that carry genes or regulatory sequences whose function is disrupted in neoplastic cells. Second, even before the long-term goal of a more fundamental understanding of the neoplastic process is reached, the cytogenetic aberrations have direct clinical importance. The finding of an acquired clonal chromosomal abnormality identifies the presence of a neoplastic disease, and the specific type of aberration may reveal the true nature of the tumor and thus improve the diagnostic precision.

Chromosome Aberrations↗

Secondary chromosomal abnormalities in acute leukemias.

Secondary chromosomal aberrations reported in the literature were surveyed in acute myeloid or lymphoblastic leukemia (AML or ALL) with one of the following primary abnormalities: in AML, t(1;3), t(1;22), der(1;7), inv(3), t(3;5) +4, del(5q), t(6;9), -7, t(7;11), del(7q), +8, t(8;16), t(8;21), +9, t(9;11), del(9q), t(9;22), +11, del(11q), t(11;19), del(12p), +13, t(15;17), inv(16), t(16;21), i(17)(q10), del(20q), -21, +21, +22, and -Y; in ALL, t(1;14), t(1;19), der(19)t(1;19), t(4;11), del(6q), t(8;14)(q24;q11), t(8;14)(q24;q32), t(8;22), del(9p), dic(9;12), i(9)(q10), t(9;22), t(10;14), t(11;14), t(11;19), del(12p), -20, +21, and del(22q). Out of 7111 acute leukemias with clonal karyotypic aberrations, 2414 AMLs and 1078 ALLs had one of the selected primary chromosome rearrangements, and 40 and 49% of these AMLs and ALLs, respectively, displayed additional abnormalities. The type and frequency of these secondary changes were ascertained and then correlated with both the primary abnormality and the morphology or immunophenotype of the acute leukemia. The distribution of the secondary changes was clearly nonrandom. The most frequent numerical changes were -Y, -X, -7, +8, and +22 in AML and +X, +6, -7, +8, and +21 in ALL. The most common structural aberrations were del(5q), del(7q), and del(9q) in AML and dup(1q), i(7q)(q10), and der(22)t(9;22) in ALL. Some secondary changes were common to both disease groups, e.g. -7, +8, and +21, but several anomalies were restricted to either AML, such as -X, -5, and del(9q), or ALL, e.g. +X, i(7)(q10), and i(9)(q10). The type and frequency of the secondary aberrations varied within the AMLs and ALLs, not only among the different primary abnormality subgroups but also among the AML morphologies and the immunophenotypic maturation degrees of the ALLs. In general, the type of primary abnormality, rather than the differentiation stage of the acute leukemia, appeared to be instrumental in determining the type of secondary changes accruing. This conclusion was based on the finding that several primary abnormalities characterizing acute leukemias of the same morphology or immunophenotype displayed different patterns of secondary anomalies. The nonrandom, and sometimes quite specific, patterns of secondary aberrations strongly indicate that they are responsible for important phenotypic features of the tumor cell population, presumably closely associated with tumor progression. The molecular pathogenetic consequences of the secondary anomalies are unknown, but since most secondary changes are monosomies, trisomies, deletions, or isochromosomes resulting in genomic imbalances, one may hypothesize that gene dosage alterations rather than specific gene rearrangements are essential for tumor evolution.(ABSTRACT TRUNCATED AT 400 WORDS)

Acute Disease↗

Age- and gender-related heterogeneity of cancer chromosome aberrations.

The karyotype of a neoplasm is known to be associated not only with the histopathologic subtype of the tumor but also with previous cytotoxic exposure and with the geographic place of origin of the patient. Some data also indicate that cytogenetic patterns vary with age and gender. To further investigate whether the frequencies of cancer chromosome aberrations differ between children and adults or between men and women, clinical and karyologic data on 14,141 neoplasms with clonal chromosome changes reported in the literature were assessed. In cytogenetically well-characterized neoplasias, recognized primary and secondary chromosome aberrations were selected, and their frequencies were calculated in men, women, children (< or = 15 years), and adults (> 15 years). In general, the frequencies of the various aberrations did not differ between men and women or between children and adults, but a few exceptions were found. In refractory anemia (RA) and RA with excess of blasts or in transformation, del(5q) was more common among women. In acute lymphoblastic leukemia (ALL-L1 + L2), t(1;19) was more frequently detected in women and del(6q) more common among men. In Philadelphia chromosome positive chronic myeloid leukemia, gain of an extra der(22)t(9;22) occurred more frequently among men. Four primary aberrations were more common in children than in adults: t(8;21) in acute myeloid leukemia (AML-M2), -7 in AML-M4, der(11q) in AML-M5, and t(8;14) in ALL-L3. On the other hand, der(16q) in AML-M4 and t(9;22) in ALL-L1 + L2 were more common in adults. The only secondary cancer chromosome aberration showing a variation with age was loss of the Y chromosome in AML-M2 with t(8;21), being more common in children than in adults. These variations might be spurious and level out when more data are collected, but more probably they reflect, for reasons presently unknown, that different genetic mechanisms may be operative in children and adults--and even in men and women--in the development of some tumors.

Adult↗

Cytogenetic analysis of 52 colorectal carcinomas--non-random aberration pattern and correlation with pathologic parameters.

Cytogenetic analysis of short-term cultures from 52 colorectal carcinomas revealed a normal karyotype in 13 and clonal chromosome aberrations in 39 tumors. In the abnormal group, 13 tumors had simple numerical changes only, whereas 26 had at least one structural rearrangement with or without concomitant numerical changes. The most common numerical abnormalities were, in order of decreasing frequency, +7, -18, -Y, +8, +13 and -14. The most common structural rearrangements affected, again in order of decreasing frequency, chromosomes 8, 1, 6, 7, 17, 3, 11, 13, 14, 16, 2 and 10. The chromosome bands most frequently involved in the structural changes were 8q10, 17p11, 11q13, 8p11, 6q21, 7p15, 7q36, 12q13, 13q10, and 16q13. The most frequent genomic imbalances brought about by the structural rearrangements were losses from chromosome arms 8p, 1p, 6q, 17p, 7p, and 16q, as well as gains of 7q, 8q, 13q, and 11q. A statistically significant (p < 0.05) correlation between the karyotypic pattern and tumor grade was found, with the poorly differentiated carcinomas generally having more massive chromosomal abnormalities.

Adult↗