PubMed HealthSearch

Biomedical subjects

M J Siciliano

Publications and source records attributed to M J Siciliano.

6 recordsLinked to original sources

Polymorphism, genetic stability, and autosomal location of trimeric nucleoside phosphorylase in Peromyscus eremicus cell lines.

Nucleoside phosphorylase (NP: EC 2.4.2.1) has not been demonstrated to be an extensively polymorphic enzyme locus in mammals. We have studied NP electrophoretically in five independently derived cell lines established from Peromyscus eremicus as well as in various tissues of a sixth animal. Four different NP phenotypes involving three different alleles were resolved. The data suggest that (1) the enzyme is trimeric and its genetic locus is polymorphic in P. eremicus, (2) heterozygous enzyme phenotypes are stable during long-term culture, and (3) the enzyme locus is autosomal in Peromyscus.

Alleles

Detection and analysis of a glucose 6-phosphate dehydrogenase phenotype B cell line contamination.

Eight of approximately 100 cell lines derived at the Scott and White Clinic from human solid tumors were found to have the same phenotypes when analyzed for 15 polymorphic enzymes at the Sloan-Kettering Institute for Cancer Research. These data were confirmed at the M. D. Anderson Hospital and Tumor Institute. The similarity was supported by cytogenetic studies at both institutions. The chronology of the establishment of these cell lines and isoenzyme and cytogenetic studies indicated that six of these lines have cross cell contamination. These include SW-527 and SW-613 mammary carcinomas, SW-598 meningioma, SW-608 astrocytoma, SW-732 cervix carcinoma, and SW-733 bladder carcinoma. Our data supported the authenticity of SW-480 and SW-620, which were derived from a colon carcinoma and its metastasis, respectively, from the same patient.

Animals

A human breast adenocarcinoma with chromosome and isoenzyme markers similar to those of the HeLa line.

Pleural effusion was obtained from a 51-year-old black woman who had breast adenocarcinoma and had received chemotherapy and radiation therapy after a radical mastectomy. Cytogenetic and isoenzymic analyses of the cells were performed within a few hours of obtaining the sample. Similar analyses were also done with a cell line established from this effusion. The stemline chromosome number was 35, one of the lowest in human neoplasms. In addition to a marker chromosome involving 1q, which is common in human breast tumors, we found several other marker chromosomes whose G-banding patterns were similar to some of the typical HeLa markers. Genetic signature analysis of 15 isoenzyme loci revealed that 13 were identical to those of HeLa. Both HeLa and the cell line described here express glucose-6-phosphate dehydrogenase type a, yet they were derived from heterozygotic individuals (ab). Our data indicate the necessity to extensive cytogenetic and biochemical analysis before conclusions are made that cell lines are actually intercell-line contaminants.

Adenocarcinoma

Mutually exclusive genetic signatures of human breast tumor cell lines with a common chromosomal marker.

Seventeen recently established human breast carcinoma cell lines of metastatic origin (MDA series), HeLa cells, and MCF-7 (a well-established breast carcinoma cell line) were studied by starch gel electrophoresis for allozymic differences at 17 enzyme loci. Ten loci proved to be informative in establishing unique genetic signatures for all of the lines with the exception of MDA-134 and -309, which had the same genetic signatures. The probability of these latter two lines being of independent origin and finding their similar genetic signatures by chance is 0.07. These studies enable us to conclude that the chromosomal marker shown to be common to these breast carcinoma cell lines of metastatic origin is not present because of cross-contamination of the lines with other long-term lines or each other.

Breast Neoplasms

Expression of human adenosine deaminase after fusion of adenosine deaminase-deficient cells with mouse fibroblasts.

Two human choriocarcinoma cell lines were shown to be deficient in adenosine deaminase (ADA; adenosine aminohydrolase, EC 3.5.4.4) such that they did not produce bands on starch gels after electrophoresis and histochemical staining. Radiometric assay indicated that their ADA specific activity was approximately 2% that of HeLa (human) cell controls. Subclone analysis of one of the lines indicated that this deficiency was representative of individual cells of the line. After fusion of these cells with mouse fibroblasts having high ADA activity, most independently isolated hybrid clones expressed one of two, or both, additional (to the mouse) bands of ADA activity after electrophoresis. The expression of these extra bands in hybrids was dependent upon actual fusion. The phenomenon was observed in 30 of 45 independently derived hybrid clones from four different fusion experiments involving two different parental lines from each species. The pattern of appearance of the extra bands in independent hybrid clones and the tendency of a hybrid clone to lose one of the extra bands through subsequent passages suggests that the bands were the products of human genetic material. The extra bands electrophoretically comigrated with human ADA 1 and 2 from human ADA-1-2 heterozygotes and the faster-migrating of the two extra bands comigrated with human ADA 1 from HeLa cells. Therefore, we suggest that the bands appearing in hybrids are the products of the 1 and 2 alleles of the human ADA locus. The human cells used for fusion were deficient in ADA activity but contained the genetic information for ADA 1 and 2. Fusion with mouse cells having ADA activity resulted in the activation of both human gene products coded for on separate homologous chromosomes. We conclude that the human ADA locus is under manipulatable genetic regulation.

Adenosine Deaminase

Electrophoretic shift mutants in Chinese hamster ovary cells: evidence for genetic diploidy.

Electrophoretic shift mutants induced in Chinese hamster ovary (CHO) cells indicate that these cells not extensively functionally hemizygotic. Therefore, effective haploidy is unsatisfactory as a general theory to explain the frequency of recessive mutants in this cell line. CHO cells were screened for electrophoretic shift variants of enzymes coded by approximately 40 genetic loci. Clones isolated after exposure to ultraviolet radiation were examined by starch gel and Cellogel electrophoresis. Shift variants were recovered for enzymes representing 11 different loci. Variant clones were subcloned to demonstrate the heritability of the variations Mutants at nine loci produced multiple-banded patterns consistent with the patterns expected of genes at loci represented twice (diploid). Chromosome localization of these diploid loci in other mammalian species where they have been mapped, suggests that they represent a random sample of CHO genes. Chromosome analysis of mutant subclones indicated that the variation did not take place in tetraploid cells. The data indicate that the quasi-diploid CHO cells appear only as functionally hemizygous as would be expected of a slightly hypodiploid cell line derived from an organism in which the haploid number is 11.

Aneuploidy