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N Pandis

Publications and source records attributed to N Pandis.

At least 73 records · Page 4Linked to original sources

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↗

Karyotypic changes in phyllodes tumors of the breast.

Cytogenetic analysis of short-term cultures of five phyllodes tumors of the breast-classified as benign (one tumor), borderline malignant (two tumors removed from the same breast in 1991 and 1993), and malignant (two tumors)--revealed clonal changes with simple structural abnormalities in the benign tumor, the borderline malignant tumors, and one malignant tumor in which benign areas and areas of borderline malignancy were also present. In contrast, the malignant tumor without admixed borderline malignant or benign areas had a complex karyotype. The karyotype of the benign phyllodes tumor was 46,XX,del(12)(p11p12)/46,XX,t(8;18)(p11;p11)/46,XX. The first borderline malignant phyllodes tumor had t(3;20)(p21;q13) as the sole abnormality. When the tumor recurred, this was no longer the only clone detected and the tumor karyotype was now 46,XX,t(3;20)(p21;q13)/46,XX,t(9;10)(p22;q22)/46,XX,t(1;8) (p34;q24)/46,XX,del(11)(q22-23)/46,XX. The malignant/borderline malignant/benign tumor had t(1;6)(p34;p22) as the sole clonal abnormality. Finally, the karyotype of the malignant phyllodes tumor which contained no benign or borderline malignant areas was 42,XX,der(1)t(1;4)(q21;q21),der(3)t(3;17)(q29;q21), -4,i(8)(q10), -10, -13,i(13)(q10),der(14)t(1;14)(q21;p11),der(14)t(4;14) (p12;p11), -17/80-90,idemx2, +del(1)(q12), +i(1)(p10), +dic(5;5)(p14;p14), +i(6)(p10), +del(7)(p11), +dup(7)(q11q36), +i(15)(q10),inc/46,XX. The findings indicate some cytogenetic similarities between benign/borderline malignant phyllodes tumors and fibroadenomas of the breast, presumably reflecting similar pathogenetic mechanisms in the two types of mixed-lineage tumors.

Aged↗

Chromosome abnormalities in adenolipomas of the breast: karyotypic evidence that the mesenchymal component constitutes the neoplastic parenchyma.

Cytogenetic analysis of adenolipomas of the breast, a tumor type that has not been chromosomally characterized before, revealed the karyotypes 47,XX, +del(1)(p22) in one tumor and 46,XX, t(12;16)(q15;q24) in the other. Breast adenolipomas thus seem to be karyotypically identical to sporadic lipomas in other locations: rearrangements of 12q13-15 are the most common cytogenetic aberrations in lipomas, and also breaks in and around 1p22 have been reported in such tumors. The similarity with lipoma could be documented further in case 2, in which epithelial and mesenchymal cells were cultured separately; the t(12;16) was present in the latter but not in the former. This is evidence that the connective tissue is the neoplastic parenchyma in adenolipomas of the breast, whereas the glandular elements show concomitant but nonneoplastic proliferation.

Adenoma↗

Interrelationship between methodological choices and conceptual models in solid tumor cytogenetics.

Scientific methods and models are interdependent. That the techniques one uses determine which findings one gets, is evident. But equally important is the influence of our a priori expectations; they may cause us to choose inadvertently those methods that are most likely to yield results that appear to confirm an already preconceived picture of reality. The conceptual models and methods of solid tumor cytogenetics are to a large extent inherited from leukemia and lymphoma cytogenetics. We illustrate how this may bias the generation and interpretation of new findings, especially when carcinomas are investigated. These malignant epithelial tumors much more often harbor cytogenetically unrelated clones than do hematologic or mesenchymal neoplasms. Carcinoma cytogenetics is therefore extremely susceptible to selection differences, making the results heavily dependent on which sample is processed, how it is disaggregated, how and for how long the cells are cultured, and on how the analysis is performed and the results presented. This calls for more efforts to be directed toward establishing also the phenotypic nature of those cells that are being karyotyped. As one cannot yet quality-grade most clonal chromosome changes in any reliable manner, meaning that one cannot determine to what extent each aberration or each clone contributes to the neoplastic process, statements about the "true" karyotypes of tumor parenchymas should be viewed with suspicion. A complete carcinoma karyotype may be much more complex than extrapolations from the analysis of a few cells may lead one to believe.

Chromosomes, Human↗

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↗

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↗

Deletion of 1p36 as a primary chromosomal aberration in intestinal tumorigenesis.

Cytogenetic analysis of short-term cultures from benign intestinal tumors revealed clonal chromosome aberrations in five colorectal adenomas, one adenoma of the papilla Vateri, and one hyperplastic polyp of the rectum. One adenoma had numerical aberrations only, but in all other tumors structural rearrangements were found that led to loss of genetic material from 1p. In three of the cases, the deletion was restricted to the 1p36 band; the rest had lost larger 1p segments. The rearrangement of chromosome 1 was the sole karyotypic anomaly in three adenomas, all with mild or moderate dysplasia, and in the hyperplastic polyp. Both adenomas that had additional aberrations beyond the 1p loss showed severe dysplasia. We conclude that cytogenetically detectable loss of genetic information from 1p36 is an early, seemingly primary, premalignant event in intestinal tumorigenesis. The fact that the adenomas with 1p- as the sole change showed only mild or moderate dysplasia and that the del(1p) was found also in the hyperplastic polyp suggests that this aberration is more related to the induction of hyperproliferation than to differentiation disturbances in the intestinal mucosa.

Adenoma↗

Cytogenetic aberrations in colorectal adenocarcinomas and their correlation with clinicopathologic features.

BACKGROUND: Little is known about the karyotypes of colorectal carcinomas and, in particular, about how the cytogenetic findings correlate with clinicopathologic features. METHODS: Short-term cultures from 49 colorectal adenocarcinomas were analyzed cytogenetically. The karyotypes were correlated with grade, stage, lymphocytic infiltration, and site (using the chi-square test), with patient age and tumor size (using the Student t test), and with survival (using the log-rank or Mantel-Haenszel test). RESULTS: Normal karyotypes were detected in 17, simple numeric changes in 22, and multiple structural and numeric abnormalities in 10. The most common numeric aberrations were +7, -Y, -18, and -22. The most common structural rearrangements were, in decreasing order of frequency, of chromosomes 1 (eight samples, leading to loss of 1p material in five), 3, 11, 17, 6, 8, 13, and 20. Marked or moderate lymphocytic infiltration was seen significantly less often (P < 0.05) in tumors with complex chromosomal abnormalities than in those with simple anomalies or normal karyotypes. The subset of patients who had tumors with multiple chromosomal abnormalities had a significantly shorter survival time (P < 0.025) than those who had lesions with simple changes or normal karyotypes. CONCLUSIONS: Loss of 1p material is the most consistent chromosomal change in colorectal carcinomas but probably represents a progressional rather than a primary event. Structural changes of chromosomes 3 and 11 seem to be more common in tumors located in the distal part of the large intestine. The significantly shorter survival time of patients with complex aberrations indicates that the karyotype could be used as a prognostic parameter in patients with colorectal cancer.

Adenocarcinoma↗

Chromosome analysis of 20 breast carcinomas: cytogenetic multiclonality and karyotypic-pathologic correlations.

Short-term cultures from 20 breast carcinomas were analyzed cytogenetically. A normal female chromosome complement was found in 4 cases. Clonal chromosome aberrations were detected in 16 tumors. In 10 tumors, multiple cytogenetic clones were found; in 2 cancers the clones were related, reflecting clonal evolution, but in the remaining 8 tumors the clones were cytogenetically unrelated, indicating clonal heterogeneity in the origin of the tumor parenchyma. Correlation analysis between karyotypic and pathologic parameters indicated that cases with complex karyotypes and/or cytogenetically unrelated clones, when compared with cases with a single simple karyotypic abnormality, were generally of higher histologic malignancy grade, had more mitoses in the histologic sections, and also more often had carcinoma in situ lesions in the same breast.

Aneuploidy↗

Interstitial deletion of the short arm of chromosome 3 as a primary chromosome abnormality in carcinomas of the breast.

Interstitial deletions of the short arm of chromosome 3 were found in short-term cultures of five breast carcinomas (of 41 breast cancers with clonal aberrations analyzed by us during the same period). They were the only clonal structural change in three tumors; in the remaining two, the clone with 3p-coexisted with seemingly unrelated clones that had other structural and numerical aberrations. The deletions were identical, del(3)(p12p14), in four cases. The fifth tumor seemed to have a smaller deletion, interpreted as del(3)(p13p14). Our findings constitute karyotypic evidence that 3p deletions are relatively common in breast carcinomas and concur with the molecular genetic detection of loss of heterozygosity in this chromosome arm. The fact that the deletions were found as solitary changes indicates that loss of genetic information from 3p loci is an early, possibly primary, event in tumorigenesis.

Adenocarcinoma, Mucinous↗

Simple numerical chromosome aberrations in two pituitary adenomas.

Cytogenetic analysis of short-term cultures of one non-secreting and one prolactin-producing pituitary adenoma revealed simple clonal numerical abnormalities in both tumors. The karyotype of the non-secreting adenoma was 48,XX, +4, +9[42]/49,XX, +4, +9, +20[2]/46,XX[6]. In the prolactin-secreting adenoma, three aberrant clones were detected, giving the karyotype 45,X, -Y[20]/47,XY, +Y[6]/45,XY, -21[3]/46,XY[21]. One cell had the chromosome complement 46,X, -Y, +9; no other nonclonal aberrations were detected. The only hitherto published case of pituitary adenoma analyzed by banding techniques (Rey et al. [1986]: Cancer Genet Cytogenet 23:171-174) also had only numerical clonal changes that included extra copies of chromosome 9. We conclude that pituitary adenomas may be karyotypically characterized by numerical aberrations and that trisomy 9 seems to be the best candidate for a primary chromosomal anomaly.

Adenoma↗

Karyotypic abnormalities in tumours of the pancreas.

Short-term cultures from 20 pancreatic tumours, three endocrine and 17 exocrine, were cytogenetically analysed. All three endocrine tumours had a normal chromosome complement. Clonal chromosome aberrations were detected in 13 of the 17 exocrine tumours: simple karyotypic changes were found in five carcinomas and numerous numerical and/or structural changes in eight. When the present findings and those previously reported by our group were viewed in conjunction, the most common numerical imbalances among the 22 karyotypically abnormal pancreatic carcinomas thus available for evaluation turned out to be, in order of falling frequency, -18, -Y, +20, +7, +11 and -12. Imbalances brought about by structural changes most frequently affected chromosomes 1 (losses in 1p but especially gains of 1q), 8 (in particular 8q gains but also 8p losses), and 17 (mostly 17q gain but also loss of 17p). Chromosomal bands 1p32, 1q10, 6q21, 7p22, 8p21, 8q11, 14p11, 15q10-11, and 17q11 were the most common breakpoint sites affected by the structural rearrangements. Abnormal karyotypes were detected more frequently in poorly differentiated and anaplastic carcinomas than in moderately and well differentiated tumours.

Aged↗

Trisomy 7 in nonneoplastic focal steatosis of the liver.

Cytogenetic analysis of short-term cultures of a nonneoplastic focal steatosis of the liver showed trisomy 7 as the sole chromosomal change. This finding, especially when viewed in light of previous reports describing +7 in nonneoplastic tissues, strongly suggests that trisomy 7 cannot be considered a tumor-specific abnormality when it occurs as the only change. The cell type in which +7 is present is not yet known.

Adult↗

Trisomy 2 as the sole chromosomal abnormality in a hepatoblastoma.

Short-term cultures of a fine-needle aspirate from a hepatoblastoma were analyzed cytogenetically. Trisomy 2 was found as the sole abnormality, yielding the karyotype 47,XY, + 2/46,XY. Because trisomy for all or part of chromosome 2 has been described, although together with other aberrations, in seven of the 11 hepatoblastomas hitherto reported, the finding of + 2 as the only anomaly in the present case strongly indicates that additional chromosome 2 material is of pathogenetic significance in this tumor type.

Carcinoma, Hepatocellular↗

Improved technique for short-term culture and cytogenetic analysis of human breast cancer.

Various growth media and procedures for tissue disaggregation and culturing were tested with regard to cell attachment, the type of cells to grow out, and the emergence of cytogenetically abnormal clones in cultures of 20 primary breast carcinomas. Clonal chromosome abnormalities were detected in 16 cases (80%). Our findings allow us to suggest a series of modifications of existing culturing and chromosome preparation techniques for breast cancer cytogenetic analysis. The improvements include: (1) combined mechanical and enzymatic disaggregation of the tumor samples, (2) initiation of short-term cultures in plastic flasks that have a Primaria-modified tissue culture surface or have been coated with Vitrogen 100, (3) use of serum-free growth medium, CDM-5, but with temporary (24 hours) enrichment with 20% FBS if rapid cell attachment is not achieved, (4) partial and sequential harvesting of the cultures, and (5) use of minimal volumes of hypotonic and fixative solutions during harvesting.

Aneuploidy↗

Whole-arm t(1;16) and i(1q) as sole anomalies identify gain of 1q as a primary chromosomal abnormality in breast cancer.

Cytogenetic analysis of four ductal breast carcinomas revealed net gain of 1q in all tumors. In the first tumor, the only change was that one chromosome 16 was replaced by a derivative chromosome consisting of 16p and 1q. The same unbalanced whole-arm translocation was also found in the second tumor, as the only aberration in one of four abnormal clones. In the last two cases, which also were characterized by cytogenetically unrelated clones, an extra i(1q) was present in one clone in both tumors as the sole aberration. Our findings suggest that gain of 1q is a primary chromosomal abnormality in breast carcinomas, in the sense that it is an early event that precedes the acquisition of more complex changes.

Adenocarcinoma, Mucinous↗

Comparison of four different methods of evaluation on axially corrected tomograms of the condyle/fossa relationship.

One hundred temporomandibular joints of 50 dry skulls were used to determine whether there was a statistically significantly difference among four different techniques that were employed to assess the condyle/fossa relationship on axially corrected tomograms. A two-way analysis of variance was performed and the results indicated that: (1) a highly significant difference in the condyle/fossa relationship existed (p = 0.002) among the various skulls and (2) no significant difference existed between the four techniques employed to assess the condyle/fossa relationship (p = 1).

Analysis of Variance↗

Recurrent chromosome aberrations in abdominal smooth muscle tumors.

Short-term cultures of four abdominal smooth muscle tumors, three leiomyosarcomas and one leiomyoma, were analyzed cytogenetically. A low-grade malignant, epithelioid leiomyosarcoma had a normal karyotype. The other two leiomyosarcomas had abnormal karyotypes; one was near-diploid, and the other was near-triploid. Structural rearrangements of the short arm of chromosome 16 and monosomies of chromosomes 14, 15, and 22 were observed in both tumors. When our cases and previously published abdominal leiomyosarcomas are viewed in conjunction, loss of chromosomes 14, 15, and 22 are the most frequent abnormalities. The leiomyoma, the second cytogenetically abnormal nonuterine leiomyoma reported to date, had a hyperdiploid karyotype with a chromosome number of 56 and structural rearrangements of chromosomes 9, 14, and 19. The only aberrations similar to those observed in the previously reported esophageal leiomyoma were trisomies of chromosomes 7 and 8.

Abdominal Neoplasms↗