Search PubMed⌕ Search

Biomedical subjects

C F Rochlitz

Publications and source records attributed to C F Rochlitz.

26 records · Page 2Linked to original sources

PCR-determined expression of the MDR1 gene in chronic lymphocytic leukemia.

To determine the role the multiple drug-resistance (MDR 1) gene plays in chronic lymphocytic leukemia (CLL), we measured the expression of the MDR 1 gene in 30 patients with this disease. A rapid, highly sensitive, and nonradioactive technique based on the polymerase chain reaction (PCR) was used for that purpose. In this technique, called differential PCR, the target (MDR 1) and a reference gene (beta 2-microglobulin) are co-amplified by PCR from random hexamer-primed cDNA in the same reaction vessel. The level of target gene expression is reflected in the ratio between the intensities of the two resulting PCR product bands, as measured by high-performance liquid chromatography (HPLC). MDR 1 gene expression was detectable in 29/30 (97%) patients with CLL, with a median expression level of 0.36 U (human placenta = 1 U). There was no correlation between expression of the MDR 1 gene and clinical stage, time from diagnosis, absolute lymphocyte count, several lymphocyte surface markers, or prior treatment in the patients analyzed. Immunocytochemical studies of the same material using the monoclonal antibody C219 showed a very low or undetectable expression of the P-glycoprotein in the lymphocytes of all patients studied, whereas granulocytes were significantly more immunoreactive. We conclude that the level of expression of the MDR 1 gene in CLL is generally low, that the removal of granulocytes is important in studies of expression of MDR 1 mRNA in CLL, and that differential PCR provides a rapid and reliable method for quantifying the amount of a specific mRNA, even in very small samples of total RNA.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Mutations in the ras protooncogenes are rare events in renal cell cancer.

Mutations in codon 12, 13 or 61 of one of the three ras genes, Ha-ras, Ki-ras, and N-ras, convert these genes into active oncogenes. To determine the role mutated ras genes play in the carcinogenesis of renal cell carcinoma, we analysed tumour DNA and unaffected renal tissue derived from 55 patients. The polymerase chain reaction technique was used to amplify DNA fragments containing Ki-, Ha-, and N-ras codons 12, 13, and 61. The amplified fragments were then probed on slot-blots with labeled mutation-specific oligomers. A single Ki-ras mutation (codon 12, gly- greater than val) was detected in a patient with a pT2N2M1 tumour. We concluded that ras oncogene mutations do not play an important role in the initiation of renal cell carcinoma.

Adult↗

Incidence of activating ras oncogene mutations associated with primary and metastatic human breast cancer.

To test the hypothesis that ras activation is involved in the final stages of breast cancer progression, we analyzed tumor DNA derived from 60 different patients and extracted from 40 invasive primary breast tumors, seven lymph node and skin metastases, nine metastatic effusions, and five established breast cancer cell lines. The polymerase chain reaction technique was used to amplify DNA fragments containing Kirsten-(Ki-), Harvey-(Ha-), and N-ras codons 12, 13, and 61 which were then probed on slot-blots with labeled synthetic oligomers to detect nonconservative single base mutations. Activating mutations were found in one of 40 primary tumors (Ki-ras codon 13), zero of seven lymph node and skin metastases, one of nine metastatic effusions (Ki-ras codon 12), and two of five cell lines (Ki-ras codons 12 and 13). These results indicate that activating ras mutations are rarely involved in either the initiation or metastatic progression of human breast cancer.

Breast Neoplasms↗

Cytotoxicity of ketoconazole in malignant cell lines.

The cytotoxic effects of ketoconazole, an antifungal agent known to have some activity against human prostate cancer, adrenal cancer, and male metastatic breast cancer, were evaluated using colony-growth and clonogenic assays in eight malignant cell lines. The cytotoxicity of ketoconazole showed a dose- and time-dependent pattern, with the following concentrations inhibiting 90% of the growing colonies (IC90): MCF 7 (human breast cancer) 7.25 micrograms/ml, T 47 D (human breast cancer) 9.0 micrograms/ml, MiaPaCa (human pancreatic carcinoma) 10.0 micrograms/ml, COLO 357 (human pancreatic carcinoma), 9.5 micrograms/ml, HCT 8 (human colonic adenocarcinoma) 27.1 micrograms/ml, DU 145 (human prostatic cancer) 40.0 micrograms/ml, AR 42 J (rat pancreatic carcinoma) 9.0 micrograms/ml, and L1210 (murine leukemia) 8.6 micrograms/ml. Since a concentration of 10 micrograms/ml can be achieved in humans, the use of ketoconazole in human malignancies might be worthy of clinical evaluation.

Animals↗

Use of the polymerase chain reaction technique to create base-specific ras oncogene mutations.

A modification of the polymerase chain reaction technique (PCR) technique, a primer-mediated enzymatic amplification of specific target sequences in genomic DNA, was used to introduce point mutations into copies of human ras oncogene sequences, and to amplify these mutated copies approximately 10(6)-fold. Of the two flanking oligomers used to amplify the DNA, one contained a single base mismatch with the targeted gene segment, either codon 12 or 61 from the Kirsten ras oncogene. Double-stranded fragments harboring any point mutation can be generated using the appropriate oligomer and constitute greater than 99.999% of the PCR-amplified fragments. The amplified DNA fragments are readily slot-blotted to nylon membranes to serve as positive hybridization controls in the search for gene mutations in human tissue specimens. The synthesis of single base mismatched DNA fragments was also used to demonstrate that oncogene mutations can be detected from mixed DNA populations as might be present in primary tumor specimens, even when the mutation of interest is present in only 5% of the amplified sample DNA.

Base Sequence↗

Overexpression and amplification of c-myc during progression of human colorectal cancer.

Overexpression and amplification of the c-myc oncogene occur in approximately 70 and 10% of human primary colorectal carcinomas, respectively, indicating the importance of this gene in colorectal tumorigenesis. Little, however, is known about the involvement of c-myc in the progression of colorectal cancer. We therefore determined c-myc gene expression and amplification in a group of primary tumors and metastases from patients with colorectal cancer using quantitative PCR-based tests. While the percentage of metastases overexpressing c-myc (13/26 = 50%) was in the same range as reported for primary tumors by others, gene amplification of c-myc was significantly (p = 0.001) more frequent in metastases (16/27 = 59%) compared to primary tumors (1/23 = 4%) in our series. Interestingly, in 23 metastases where both expression and amplification of c-myc could be determined, there was no correlation between gene copy number and expression level (p = 0.18; r = 0.19). We conclude that amplification but not overexpression of c-myc is related to metastatic progression of colorectal cancer and that overexpression of c-myc is driven by mechanisms other than the number of c-myc copies in the tumors studied.

Colorectal Neoplasms↗