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Biomedical subjects

F Mitelman

Publications and source records attributed to F Mitelman.

At least 145 records · Page 8Linked to original sources

Clonal heterogeneity in breast cancer: karyotypic comparisons of multiple intra- and extra-tumorous samples from 3 patients.

Intratumor phenotypic heterogeneity is one of the characteristics of breast carcinomas, and genetic mechanisms are likely to contribute to it. We have studied breast cancer clonal heterogeneity by cytogenetic analysis of multiple tumor samples (one from each tumor quadrant) as well as samples of macroscopically normal surrounding breast tissue from 3 patients with this disease. Clonal chromosome aberrations were found in all 8 successfully analyzed samples from the carcinomas. Two to 6 cytogenetically unrelated clones were detected in each case, unevenly distributed among the tumor quadrants. Karyotypic abnormalities were also found in 4 out of 9 macroscopically tumor-free samples from the surrounding tissue; in 2 of these samples, a ductal carcinoma in situ was detected histologically, and the cytogenetic evidence suggests that the remaining 2 samples also contained neoplastic cells. Quantitative analysis of the findings revealed a statistically significant higher frequency of karyotypically abnormal cells in samples with a histologic diagnosis of carcinoma vs. samples without any detected malignancy. That cells bearing cytogenetic evidence that they belong to the tumor parenchyma are left behind during breast-conserving surgery for carcinoma of the breast may account for the relatively high long-term local relapse rates seen in this disease.

Adult↗

Two distinct FUS breakpoint clusters in myxoid liposarcoma and acute myeloid leukemia with the translocations t(12;16) and t(16;21).

The FUS gene, which maps to 16p11, is fused to the CHOP gene in the t(12;16) (q13;p11) that characterizes myxoid liposarcomas (MLS) and to the ERG gene in acute myeloid leukemia (AML) with t(16;21) (p11;q22). In the present study we have mapped the breakpoints within FUS in 13 MLS with t(12;16) and in one AML with t(16;21). This region of FUS is about 3.9 kb and contains four exons. The breakpoints clustered to two zones (1 and 2). A strong association was found between the two known types of FUS/CHOP transcripts and the genomic localization of the breakpoints. In all cases expressing only type I or both type I and II FUS/CHOP transcript the genomic breakpoints mapped to zone 1. In all cases expressing only the type II transcript the breakpoints occurred in zone 2. The breakpoint in the AML case was in zone 1, suggesting that in-frame fusion transcripts are selected by similar mechanisms in both MLS and AML.

Base Sequence↗

Chromosomal abnormalities involving 11q13 are associated with poor prognosis in patients with squamous cell carcinoma of the head and neck.

BACKGROUND: In individual patients with squamous cell carcinoma of the head and neck (SCCHN), established prognostic factors do not satisfactorily predict clinical outcome. Although the karyotype is an independent prognostic factor in certain hematologic malignancies and solid tumors, no data have been reported concerning the possible relationship between chromosomal abnormalities and clinical outcome in patients with SCCHN: METHODS: In 116 cases of primary SCCHN, short term cultures were analyzed cytogenetically during 1987 through 1991, the karyotypes were divided into four groups: k1, normal (n = 35); k2, numeric changes only (n = 31); k3, simple structural abnormalities (n = 27); and k4, complex karyotypes (n = 23). The patients were followed for at least 18 months after diagnosis or until death. RESULTS: The 2-year survival rate was lower in the k4 subgroup (35%) than in the k1, k2, and k3 subgroups taken together (61%), both in the series as a whole (P = 0.02), and in the largest tumor site subgroup, laryngeal squamous cell carcinoma (n = 32), (P = 0.04). The most prevalent breakpoint was in chromosome band 11q13, occurring in 11 tumors, 10 of which belonged to the k4-subgroup. The 2-year survival rate was lower for patients with 11q13 rearrangements (20%) than for those without (60%), both in the series as a whole (P = 0.001), and in the k4-subgroup (P = 0.02). CONCLUSIONS: The results suggest that in SCCHN the presence of a complex karyotype is associated with poor prognosis, particularly when 11q13 rearrangements are present.

Adult↗

Chromosome abnormalities in bilateral breast carcinomas. Cytogenetic evaluation of the clonal origin of multiple primary tumors.

BACKGROUND: Although acquired somatic mutations presumably are crucial in carcinogenesis, nothing is known about the chromosome aberrations of bilateral breast carcinomas. METHODS: Eighteen specimens from 16 bilateral carcinomas were analyzed cytogenetically. The banding analysis was supplemented with fluorescence in situ hybridization with painting probes. RESULTS: In two cases, the finding of the same clonal abnormalities in samples from both breasts indicated that the bilaterality had arisen through a metastatic process. In the remaining cases, the absence of similarities between the two sides indicated an independent origin of the two carcinomas. Also, in multifocal lesions within the same breast, examples were found both of karyotypically related and unrelated clones. Altogether, multiple clones without similarities were detected in nine specimens, sometimes together with other, karyotypically related clones. There was no indication that bilateral carcinomas of the breast are cytogenetically different from unilateral ones. The following chromosomal abnormalities were recurrent: der(1;16)(q10;p10), del(1)(q11-n12), del(1)(q42), and del(3)(p12-n13p14-n21). CONCLUSIONS: Bilateral breast carcinomas have the same cytogenetic aberrations, including evidence of polyclonality, as unilateral carcinomas. The majority apparently arise independently, but some result from a metastasis from one breast to the other. In this sense, bilateral breast carcinomas are similar to multifocal breast cancer in general, of which bilateral tumors may represent a special case.

Aged↗

Cytogenetically detected clonal heterogeneity in a duodenal adenocarcinoma.

A primary duodenal adenocarcinoma, a tumor type for which no previous chromosome data existed, was cytogenetically analyzed after short-term culture. The main tumor mass was localized in the pancreatic head, but the histopathologic examination revealed its duodenal origin. A total of six abnormal, karyotypically unrelated, clones were identified. The largest exhibited clonal evolution and consisted of two subclones with massively rearranged karyotypes in the hypodiploid and hypotetraploid range. Chromosome imbalances brought about by these complex changes were gain of 1q, losses of chromosomes 6 and 9, and total or partial losses of 1p, 3p, 3q, 9p, 10p, 17p, 17q, 18q, 20p, and 20q. The remaining five smaller clones had 1-2 numerical or balanced structural chromosome aberrations. The present study thus revealed yet another epithelial tumor type characterized by karyotypically unrelated clones. For this as for other tumors, the pathogenetic significance of such cytogenetic polyclonality remains uncertain.

Adenocarcinoma↗

Nonrandom chromosome abnormalities in short-term cultured primary squamous cell carcinomas of the head and neck.

We report the finding of clonal chromosome abnormalities in short-term cultures from 44 squamous cell carcinomas of the head and neck region. Eleven tumors had gain or loss of the Y chromosome, sometimes one clone with +Y and another with -Y, as the sole anomaly, whereas the remaining 33 all carried structural rearrangements and usually were cytogenetically complex with multiple aberrations. The chromosomal bands most frequently involved were, in decreasing order of frequency, 8p11-q11, 1p11-q11, 3p11-q11, 11q13, 13p11-q11, 1p13, 5p11-q11, 7p11-q11, 15p11-q11, and 14p11-q11. Almost one-half of the breakpoints were located in centromeric or juxtacentromeric bands. Recurrent aberrations included i(8q), i(5p), i(1q), del(3)(p11-12), del(5)(p11), t(1;1)(p13;q25), and der(14;15)(q10;q10). To see whether the karyotypic features of head and neck squamous cell carcinoma differ depending on exact tumor site, we added to the present series our previously published 23 karyotypically abnormal head and neck squamous cell carcinomas that had been cultured in the same way as the tumors of the present series. In the ensuing correlation analysis, tumors of the oral cavity and oropharynx and hypopharynx were found to share many features: highly complex karyotypes were frequent, often containing isochromosomes such as i(8q) and i(5p), and also rearrangements of 11q13 (often as homogeneously staining regions) and loss of genetic material from the short arms of chromosomes 3, 13, 14, and 15 were repeatedly seen. Laryngeal carcinomas, on the other hand, often had simple karyotypic changes.

Adult↗

Cytogenetic findings in malignant peripheral nerve sheath tumors.

Clonal chromosome aberrations were detected in 8 short-term cultured malignant peripheral nerve sheath tumors (MPNST). Seven had a near-triploid chromosome number and I was in the hyperhaploid-hypodiploid range. No recurrent structural rearrangements were found; the bands most frequently involved (3 tumors) were 7p11, 12p13 and 14q11. The most common numerical changes were loss of a sex chromosome (all tumors) and loss of at least 1 copy of chromosomes 8, 16 and 22 (4 tumors). Pooling our data with those on the 20 previously published MPNST with abnormal karyotypes, we found that the chromosome number has often been in the triploid range (12 tumors), with stem line variation between 34 and 270. All chromosome arms, except 22p and the Y chromosome, were involved in recombinations. The most frequently rearranged bands were 7p22 (6 tumors) and 1p21, 7p11 and 14q11 (5 tumors each). Most numerical and unbalanced structural aberrations have led to loss of genetic material, in particular from Xq26-qter (13 tumors); 11q22-qter and 13p (12 tumors); 9p22-pter, 11p13-pter, 17p and 17q11-21 (11 tumors); 1p22-32 and 1p34-pter (10 tumors) and 6q25-qter and chromosome 16 (9 tumors).

Adolescent↗

Karyotypic features of malignant tumors of the nasal cavity and paranasal sinuses.

Cytogenetic analysis of short-term cultures from 6 tumors of the nasal cavity and paranasal sinuses--one esthesioneuroblastoma, 2 adenocarcinomas and 3 squamous-cell carcinomas (SCC)--revealed clonal chromosome aberrations in all cases. The esthesioneuroblastoma had a complex hyperdiploid karyotype. None of the aberrations was similar to those previously described in short-term cultures or established cell lines from esthesioneuroblastomas. The 2 adenocarcinomas had complex karyotypic changes, which in both cases included rearrangements of bands 9p22 and 14q11. One SCC had 5 unrelated pseudodiploid clones, 1 displayed a highly complex karyotype, including rearrangement of band 11q13, and 1 had simple karyotypic changes with loss of 6q material and gain of 3q. These findings are similar to those described in head-and-neck SCC at other sites.

Adenocarcinoma↗

Chromosome analysis of 97 primary breast carcinomas: identification of eight karyotypic subgroups.

Chromosome banding analysis of 97 short-term cultured primary breast carcinomas revealed clonal aberrations in 79 tumors, whereas 18 were karyotypically normal. In 34 of the 79 tumors with abnormalities, two to eight clones per case were detected; unrelated clones were present in 27 (34%) cases, whereas only related clones were found in seven. These findings indicate that a substantial proportion of breast carcinomas are of polyclonal origin. Altogether eight abnormalities were repeatedly identified both as sole chromosomal anomalies and as part of more complex karyotypes: the structural rearrangements i(1)(q10), der(1:16)(q10;p10), del(1)(q11-12), del(3)(p12-13p14-21), and del(6)(q21-22) and the numerical aberrations +7, +18, and +20. At least one of these changes was found in 41 (52%) of the karyotypically abnormal tumors. They identify a minimum number of cytogenetic subgroups in breast cancer and are likely to represent primary chromosome anomalies in this type of neoplasia. Other candidates for such a role are translocations of 3p12-13 and 4q21 with various partner chromosomes and inversions of chromosome 7, which also were seen repeatedly. Additional chromosomal aberrations that give the impression of occurring nonrandomly in breast carcinomas include structural rearrangements leading to partial monosomies for 1p, 8p, 11p, 11q, 15p, 17p, 19p, and 19q and losses of one copy of chromosomes X, 8, 9, 13, 14, 17, and 22. The latter changes were seen consistently only in complex karyotypes, however, and we therefore interpret them as being secondary anomalies acquired during clonal evolution.

Breast Neoplasms↗

Fluorescence in situ hybridization analysis of whole-arm 7;12 translocations in hematologic malignancies.

Cytogenetic analysis of one case of acute myeloid leukemia (AML), one of acute lymphoblastic leukemia (ALL), one of refractory anemia with excess of blasts (RAEB), and one of acute mixed lineage leukemia (AMLL) with unbalanced 7;12 translocations mapped the breakpoints to the centromeres on both chromosomes. The rearrangements were interpreted as the whole-arm translocations der(7;12)(q10;q10) in the AML and ALL and der(7;12)(p10;q10) in the RAEB and AMLL. However, further analysis by metaphase and/or interphase fluorescence in situ hybridization (FISH) showed centric fusion only in the AML and ALL. In the RAEB and AMLL, centromeric material from chromosome 7 but not from 12 was present in the derivative chromosome. Whereas the t(7;12) resulted in loss of 12p in all four cases, the corresponding chromosome 7 imbalances differed--monosomy for 7q in the RAEB and AMLL and monosomy for 7p in the AML and ALL. Six hematologic neoplasms with unbalanced whole-arm or near-centromeric 7;12 translocations and seven dic(7;12) with juxtacentromeric breakpoints have been reported previously: 2 AML, 1 RAEB in transformation, and 10 ALL. All karyotypically informative cases had loss of 12p material. All but one of the cases with combined 7p and 12p deletion were ALL, whereas all cases with 7q and 12p loss showed myeloid differentiation. No particular clinical, morphologic, or immunophenotypic features seem to characterize ALLs with t(7;12). AMLs with an unbalanced t(7;12), often together with 5q deletions, might be associated with previous genotoxic exposure and poor prognosis.

Adult↗

Massive cytogenetic heterogeneity in a pancreatic carcinoma: fifty-four karyotypically unrelated clones.

Chromosome analysis after short-term culture revealed remarkable cytogenetic heterogeneity in a pancreatic carcinoma. The patient had no prior history of radio- or chemotherapy. A total of 54 aberrant, near-diploid, karyotypically unrelated clones were identified, three of which displayed clonal evolution. The abnormalities were unbalanced in 30% of the clones. From one to eight karyotypic anomalies per clone were found. Numerical changes were rare, whereas structural aberrations were numerous and diverse and included deletions, duplication, insertions, inversions, translocations, ring formation, and telomeric associations. All chromosomes except No. 15 were involved in structural rearrangements, chromosomes 1, 6, 7, 8, 11, and 12 being the most frequently affected. A similarly massive cytogenetic polyclonality has never been reported previously. Although the spectrum of epithelial neoplasms characterized by karyotypically unrelated clones is increasing, the pathogenetic role of this type of cytogenetic intratumor heterogeneity remains unknown.

Aged↗

Trisomy 7 in non-neoplastic tubular epithelial cells of the kidney.

The cellular origin of trisomy 7 in non-neoplastic kidney tissue specimens from 10 patients, seven with malignant tumors and three with non-neoplastic kidney diseases, was studied by the MAC (morphology antibody chromosomes) technique, which allows analysis of cellular morphology/histology, immunophenotype, and chromosomal aneuploidy by conventional cytogenetics, and/or fluorescent in situ hybridization in both interphase and mitotic cells. In primary cultures, trisomy 7 was detected primarily in cytokeratin-positive cells. Among freshly isolated renal cells, the trisomy was mainly observed in proximal tubular cells positive to brush-border antigen, and, to a lesser extent, in distal tubular cells positive to Tamm-Horsfall glycoprotein. The frequency of trisomy 7 in lymphocytes expressing CD3 or CD22 antigens isolated from non-neoplastic and tumor tissues was substantially lower than in the epithelial cells and was not increased compared with that in control lymphocytes from peripheral blood. The results thus demonstrate that the non-neoplastic kidney cells with trisomy 7 are mainly normal epithelial cells, preferentially those of the proximal tubule.

Adolescent↗

Near-haploidy in two malignant fibrous histiocytomas.

Cytogenetic analysis of two malignant fibrous histiocytomas (MFH) revealed near-haploid clones in both tumors. One tumor had only 23 chromosomes, the lowest chromosome number so far detected in human neoplasia, and showed several structural rearrangements: 23, X, der(1)t(1;?;8)(q42;?;q13), +del(7)(p11),der(8)t(8;13)(q13;q12), inv(9)(p24q21), r(10)(p15q26), -13, der(14)t(14;22)(p13;q11), -15, +r. The other MFH had only numerical changes: 28,X, +5, +18, +20, +21, +22/56, idemx2. With the present two cases, four of 78 MFHs studied in our laboratory have been near-haploid, suggesting that this otherwise rare phenomenon in neoplasia may be relatively common in MFH.

Female↗

Tetraploidization and progressive loss of 6q in a squamous cell carcinoma of the parotid gland.

Cytogenetic analysis of short-term cultures from a squamous cell carcinoma (SCC) of the parotid gland revealed one clone with loss of the Y chromosome only, as well as three related subclones: 91,XXYY,add(6)(q21), -11,t(11;22)(q13;q11),ins(15;?)(q22;?)[cp5+ ++]/91,XXYY,add (6)(q21), -11,add(11)(p11), ins(15;?)(q22;?),der(22)t(11;22)(p11;q11)[2]/91,XXYY,add(6)(q11), -11,add(11)(p11),ins(15;?)(q22;?),der(22) t(11;22)(p11;q11) [cp4]. The finding of only one copy of all structurally rearranged chromosomes in a near-tetraploid karyotype indicates that tetraploidization was an early event in tumorigenesis. Rearrangements, in particular deletions, of 6q have previously been associated with adenoid salivary gland malignancies. Our finding of progressive 6q loss with clonal evolution, combined with the fact that 6q deletions were also seen in the two previously reported SCCs of the salivary glands, indicate that loss of genetic information from this chromosome arm is characteristic for most types of salivary gland carcinomas, irrespective of their histologic differentiation.

Aged↗

Cytogenetic analysis of short-term cultured squamous cell carcinomas of the lung.

Cytogenetic analysis of 122 primary squamous cell carcinomas of the lung revealed clonal abnormalities in 56 tumors. Karyotypes with simple numerical changes were found in 32 tumors: 45,X,-Y in 28, 47,XY,+7/45,X-Y, in two, 47,XY,+Y/45,X,-Y and 47,XY,+20/45,X,-Y in one tumor each. A super-numerary ring chromosome was the sole anomaly in two tumors. Complex structural changes were found in 22 tumors. The chromosomes most frequently involved in structural rearrangements were chromosomes 1 (15 tumors), 3, 7, and 11 (10 tumors each), 5 and 6 (nine tumors each), and 2, 8, and 12 (eight tumors each). The bands and regions most often affected were 1p11-13 and 5cen (six tumors each), 11p11, 14p11-13, 15cen, and 17p11-12 (five tumors each), and 12p13 and 13cen (four tumors each). The only recurrent changes were the whole-arm rearrangements i(5)(p10) (five tumors) and i(6)(p10), der(9;15)(q10;q10), and der(13;15)(q10;q10) (two tumors each). The most prominent genomic imbalances were, apart from losses of the Y chromosome, losses from 1p, 3p, 5q, 6q, 8p, 13p, and 14p and gains from 1q and 5p.

Aged↗