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Biomedical subjects

A Fojo

Publications and source records attributed to A Fojo.

23 records · Page 2Linked to original sources

Localization of multidrug resistance-associated DNA sequences to human chromosome 7.

Multidrug resistance in several human cell lines correlates with amplification or increased expression of two related DNA sequences, designated mdr1 and mdr2. These DNA sequences were used as probes for hybridization with DNA with a panel of human-mouse somatic cell hybrids and from individual human chromosomes separated by fluorescence-activated chromosome sorting. By these assays, both mdr1 and mdr2 sequences were localized to chromosome 7.

Animals↗

Isolation of human mdr DNA sequences amplified in multidrug-resistant KB carcinoma cells.

The ability of tumor cells to develop simultaneous resistance to structurally different cytotoxic drugs constitutes a major problem in cancer chemotherapy. It was previously demonstrated that multidrug-resistant Chinese hamster cell lines contain an amplified, transcriptionally active DNA sequence designated mdr. This report presents evidence that multidrug-resistant sublines of human KB carcinoma cells, selected for resistance to either colchicine, vinblastine, or Adriamycin (doxorubicin), display amplification of two different DNA sequences homologous to the hamster mdr gene. Segments of the human mdr DNA sequences, designated mdr1 and mdr2, have been cloned. mdr1 sequences were amplified in all of the highly drug-resistant sublines and were expressed as a poly(A)+ RNA species of 4.5 kilobases that was detected in the resistant cells but not in the parental cell line. No expression of mdr2 sequences was detected. mdr2 sequences were coamplified with mdr1 in some of the multidrug-resistant sublines and, in two independently derived cell lines, underwent very similar rearrangements. The data suggest that the mdr1 gene is involved in multidrug resistance in human cells.

Carcinoma↗

Multidrug resistance of DNA-mediated transformants is linked to transfer of the human mdr1 gene.

Mouse NIH 3T3 cells were transformed to multidrug resistance with high-molecular-weight DNA from multidrug-resistant human KB carcinoma cells. The patterns of cross resistance to colchicine, vinblastine, and doxorubicin hydrochloride (Adriamycin; Adria Laboratories Inc.) of the human donor cell line and mouse recipients were similar. The multidrug-resistant human donor cell line contains amplified sequences of the mdr1 gene which are expressed at high levels. Both primary and secondary NIH 3T3 transformants contained and expressed these amplified human mdr1 sequences. Amplification and expression of the human mdr1 sequences and amplification of cotransferred human Alu sequences in the mouse cells correlated with the degree of multidrug resistance. These data suggest that the mdr1 gene is likely to be responsible for multidrug resistance in cultured cells.

Animals↗

Isolation and genetic characterization of human KB cell lines resistant to multiple drugs.

Human KB cell lines resistant to high levels of colchicine were isolated by several successive single-step selections. Most of these selection steps resulted in cross-resistance to vincristine, vinblastine, adriamycin, actinomycin D, and puromycin; however, at the highest levels of colchicine resistance, increased cross-resistance to other drugs was not observed. There was no major change in protein synthesis or alteration in protein phosphorylation or [14C]glucosamine labeling patterns accompanying the development of multiple drug resistance as measured by analysis of metabolically labeled proteins on SDS gels. Cell-cell hybridization experiments showed that the colchicine-resistant and multiple drug-resistant phenotypes were incompletely dominant. In addition, colchicine resistance was found to segregate independently from resistance to other drugs in one somatic cell hybrid, suggesting that complex genetic loci are involved in the development of the multiple drug-resistant phenotype. These mutants should be useful for the study of the clinically important problem of multiple drug resistance in human cancer.

Antineoplastic Agents↗

Reduced drug accumulation in multiply drug-resistant human KB carcinoma cell lines.

Human KB cells with increasing resistance to colchicine and other chemotherapeutic agents have been isolated in four sequential steps. This report describes the characterization of drug uptake in the parent and four mutant cell lines. Drug uptake in these cell lines occurred via a nonsaturable process. In general, drug accumulation decreased with increasing drug resistance; this relationship was seen best with colchicine, vincristine, vinblastine, and daunomycin and, to a lesser extent, with actinomycin D. The accumulation of dexamethasone, an agent to which all lines were equally sensitive, was similar for the parent and the four mutants. Drug efflux occurred rapidly, and differences among the various cell lines could be detected within the first minute. In the more resistant lines, a greater percentage of the drug was released more rapidly, although the absolute amount of drug released was less. Verapamil partially reversed the multiple drug-resistance phenotype by increasing the initial rate of uptake and accumulation of drugs in the resistant cell lines without an apparent effect on drug efflux. The results suggest that, in this human epithelial cell, the development of resistance to multiple drugs is complex, with changes in drug uptake, accumulation, and efflux.

Antineoplastic Agents↗