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Biomedical subjects

I Pastan

Publications and source records attributed to I Pastan.

At least 379 records · Page 21Linked to original sources

Multidrug resistant transgenic mice as a novel pharmacologic tool.

Multidrug resistance resulting from expression of an energy-dependent drug efflux pump encoded by the human MDR1 gene is a major impediment to effective cancer therapy. Pharmacologic intervention aimed at inhibiting this multidrug transporter should improve existing chemotherapy of human cancer, but drug development has been delayed by the difficulty and expense of developing valid animal models. Using recombinant DNA technology, a transgenic mouse has been engineered whose bone marrow is protected from the toxic effects of chemotherapy by expression of the MDR1 gene. This animal system allows the rapid screening of drugs which inhibit the multidrug transporter and heralds a new era of using transgenic animals for pharmacologic screening.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Biological activity of a transforming growth factor-alpha--Pseudomonas exotoxin fusion protein in vitro and in vivo.

Transforming growth factor-alpha (TGF alpha)-pseudomonas exotoxin-40 (PE40) is a chimeric protein consisting of an N-terminal TGF alpha domain fused to a C-terminal 40-kDa segment of the pseudomonas exotoxin A protein. TGF alpha-PE40 exhibits the receptor binding activity of TGF alpha and the cell killing activity of PE40. In the current study, we report that a modified TGF alpha-PE40 derivative significantly prolongs the survival of nude mice bearing tumors derived from cell lines which express the epidermal growth factor receptor (EGFR). In addition, the therapeutic benefit of this protein is mediated by specific binding to the EGF receptor. These results indicate that a therapeutic window exists in vivo for the use of some growth factor--toxin fusion proteins as anticancer agents.

ADP Ribose Transferases↗

Chimeric cytotoxin IL2-PE40 inhibits relapsing experimental allergic encephalomyelitis.

IL2-PE40 is a chimeric protein composed of human interleukin-2 (IL2) genetically fused to a modified form of Pseudomonas exotoxin lacking the cell recognition domain. IL2-PE40 is cytotoxic for IL2 receptor-bearing lymphocytes in culture and can inhibit activation of T cells in vivo. IL2-PE40 can significantly diminish antigen-stimulated proliferation of lymphocytes sensitized to myelin basic protein. Intraperitoneal administration of IL2-PE40 not only markedly inhibits the clinical manifestations of adoptively transferred relapsing experimental allergic encephalomyelitis but also dramatically reduces both inflammation and demyelination characteristic of the disease.

Animals↗

Administration of IL-2-PE40 via osmotic pumps prevents adjuvant induced arthritis in rats. Improved therapeutic index of IL-2-PE40 administered by continuous infusion.

IL-2-PE40 is a chimeric cytotoxin composed of interleukin 2 (IL-2) fused to a truncated form of Pseudomonas exotoxin (PE) that lacks its binding domain. IL-2-PE40 has been shown to exhibit therapeutic potency in several models in vivo when administered i.p. twice a day. Here we show that the continuous administration of IL-2-PE40 by an osmotic pump specifically prevents the development of adjuvant induced arthritis in rats with an improved therapeutic efficacy as compared to daily repeated i.p. injections. Stabilization of IL-2-PE40 at 37 degrees C for the continuous administration by pumps was achieved by adding NAD, the substrate for the enzyme portion of the chimeric toxin.

Animals↗

New potent verapamil derivatives that reverse multidrug resistance in human renal carcinoma cells and in transgenic mice expressing the human MDR1 gene.

Multidrug resistance in human renal cell carcinoma is mainly caused by expression of the MDR1 gene and is characterized by a broad spectrum cross resistance to many natural product chemotherapeutic agents. This resistance can be overcome by applying chemosensitizers which inhibit the function of the MDR1 gene product P-glycoprotein. The development of new reversing agents with fewer side effects and a higher potency in modifying resistance is a high priority of research on drug resistance. We have evaluated four new verapamil derivatives on 21 primary human renal cell carcinomas in vitro, and also tested them in an MDR-transgenic mice model. These mice express the human MDR1 gene in their bone marrow cells and measurement of their white blood counts provides a simple, rapid and reliable system to screen for the potency of MDR-reversing agents in vivo. We demonstrate here that all four drugs are effective in reversing multidrug resistance in primary cultures of human renal cell carcinomas when used in combination with vinblastine chemotherapy, and to a lesser extent with doxorubicin or daunomycin chemotherapy. Our in vivo data indicate that two of these reversing agents display low toxicity at high concentrations and are more effective at low, clinically achievable concentrations, than the other two drugs and R-verapamil. These results make the two new drugs attractive candidates to be taken into clinical trials.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Molecular manipulations of the multidrug transporter: a new role for transgenic mice.

Multidrug resistance in human cancer is associated with overexpression of the MDR1 gene which encodes a 170,000 molecular weight membrane glycoprotein that transports cytotoxic drugs out of cancer cells. The MDR1 gene is normally expressed in intestine, kidney, liver, and adrenal glands, and in tumors derived from these tissues, but it is not expressed in normal bone marrow. Transgenic mice that express the MDR1 gene in their bone marrow have been developed, and because of this expression these mice are resistant to the bone marrow-suppressive effects of daunomycin, doxorubicin, taxol, and several other anticancer drugs. These mice can be used in several different ways to develop new types of drugs to treat human cancer.--Pastan, I.; Willingham, M. C.; Gottesman, M. Molecular manipulations of the multidrug transporter: a new role for transgenic mice.

Animals↗

Cytotoxic activity of chimeric proteins composed of acidic fibroblast growth factor and Pseudomonas exotoxin on a variety of cell types.

Chimeric proteins composed of acidic fibroblast growth factor (acidic FGF) and several forms of Pseudomonas exotoxin (PE) that cannot bind to the PE receptor have been produced in Escherichia coli by expressing chimeric genes in which DNA encoding acidic FGF is fused to various mutant forms of PE. These acidic FGF-PE fusion proteins were found to be cytotoxic to a variety of tumor cell lines including hepatocellular (PLC/PRF/5 and HEPG2), prostatic (LNCaP), colon (HT29), and breast (MCF-7) carcinomas at concentrations of 1-70 ng/ml. The cytotoxic effects of acidic FGF-PE were FGF-receptor specific as demonstrated by competition with excess acidic FGF and by showing that acidic FGF-PE bound to the FGF receptor with the same affinity as acidic FGF. Furthermore, the cell-killing activity of acidic FGF-PE was toxin-mediated, as an acidic FGF-PE mutant, which does not possess ADP-ribosylation activity, failed to kill cells. These findings demonstrate that acidic FGF-PE is a potent cytotoxic molecule that can be targeted to FGF receptor-bearing cells. Because acidic FGF is a potent angiogenic molecule, cytotoxic acidic FGF-PE chimeras may have utility as anti-angiogenic agents. These molecules could be helpful in determining the functional role of FGF receptors in cellular processes.

ADP Ribose Transferases↗

Treatment of corneal allograft rejection with the cytotoxin IL-2-PE40.

IL-2-PE40 is a recombinant chimeric protein composed of IL-2, fused to a modified pseudomonas exotoxin. This molecule is extremely toxic to activated T cells expressing high-affinity IL-2R. We used this new molecule for selective immunosuppression to treat corneal allograft rejection in the rat, using Fisher and Lewis rats, a strain combination differing only in medial and minor histocompatibility antigens. The effect of IL-2-PE40 on the immunologic response was studied using both a heterotopic corneal graft model and orthotopic grafts. At the dose of 0.31 micrograms/g given intraperitoneally every 12 hr, IL-2-PE40 produced a significant reduction of both total lymph node cells and cytotoxic-T-cell (CTL) activity in draining lymph nodes (DLN) of heterotopically grafted animals. IL-2-PE40 treatment also significantly reduced the clinical rejection score and cumulative rejection rate (CRR) in orthotopic grafts and appears to be a very effective immunosuppressive agent.

Animals↗

Analysis of Pseudomonas exotoxin activation and conformational changes by using monoclonal antibodies as probes.

Pseudomonas exotoxin (PE) is a protein toxin composed of three structural domains. In its native form, the toxin is a 66,000-Mr proenzyme that must be activated to express full ADP-ribosylating activity. To study the process of activation and accompanying conformational changes, we have isolated 10 monoclonal antibodies to a 40,000-Mr fragment of the toxin (PE40) that exhibits full enzyme activity but lacks the toxin's cell-binding domain and contains amino acids 253 to 613 (comprising domains II, Ib, and III). By using mutant PE molecules in which all of domain I and portions of domains II, Ib, and III were deleted, the locations of the epitopes for each of the antibodies were determined. Eight of these monoclonal antibodies were further characterized. Of these eight, all reacted with soluble PE40 and an interleukin-2-PE40 conjugate, but only two reacted strongly with native soluble PE. However, all eight reacted with PE after it had been immobilized on nitrocellulose or after it had been activated to express full ADP-ribosylating activity. Antibodies were also assessed for their ability to neutralize the cytotoxic activity of either PE or interleukin-2-PE40. These antibodies should be useful as probes for monitoring the activation and processing of PE that occur during endocytosis and in determining the location of epitopes that are important for toxin activity.

ADP Ribose Transferases↗

Substitution of foreign protein sequences into a chimeric toxin composed of transforming growth factor alpha and Pseudomonas exotoxin.

TGF alpha-PE40 is a chimeric toxin made by replacing domain Ia of Pseudomonas exotoxin (PE) with transforming growth factor alpha (TGF alpha). We have now replaced a portion of domain Ib of PE with different polypeptides or an extra domain III of PE in transforming growth factor alpha-PE40 and maintained cell killing. Thus, TGF alpha-PE40 can be used to transport foreign protein sequences into the cytosol of cells.

ADP Ribose Transferases↗

Single-chain immunotoxins directed at the human transferrin receptor containing Pseudomonas exotoxin A or diphtheria toxin: anti-TFR(Fv)-PE40 and DT388-anti-TFR(Fv).

Two single-chain immunotoxins directed at the human transferrin receptor have been constructed by using polymerase chain reaction-based methods. Anti-TFR(Fv)-PE40 is encoded by a gene fusion between the DNA sequence encoding the antigen-binding portion (Fv) of a monoclonal antibody directed at the human transferrin receptor and that encoding a 40,000-molecular-weight fragment of Pseudomonas exotoxin (PE40). The other fusion protein, DT388-anti-TFR(Fv), is encoded by a gene fusion between the DNA encoding a truncated form of diphtheria toxin and that encoding the antigen-binding portion of antibody to human transferrin receptor. These gene fusions were expressed in Escherichia coli, and fusion proteins were purified by conventional chromatography techniques to near homogeneity. In anti-TFR(Fv)-PE40, the antigen-binding portion is placed at the amino terminus of the toxin, while in DT388-anti-TFR(Fv), it is at the carboxyl end of the toxin. Both these single-chain immunotoxins kill cells bearing the human transferrin receptors. However, anti-TFR(Fv)-PE40 was usually more active than DT388-anti-TFR(Fv), and in some cases it was several-hundred-fold more active. Anti-TFR(Fv)-PE40 was also more active on cell lines than a conjugate made by chemically coupling the native antibody to PE40, and in some cases it was more than 100-fold more active.

ADP Ribose Transferases↗

Multidrug resistance.

Laboratory investigations indicate that cancer cells can become simultaneously resistant to many different chemotherapeutic drugs that are natural products via the expression of an energy-dependent drug efflux pump. This multidrug transporter is a plasma membrane glycoprotein encoded in the human by the MDR1 gene. Recent clinical studies indicate that expression of the multidrug transporter plays a major role in the intrinsic and acquired resistance to chemotherapy of many human cancers. Strategies aimed at inactivating this drug efflux pump may have significant impact on the treatment of human cancer.

Animals↗

Cytotoxic effects of a recombinant chimeric toxin on rapidly proliferating vascular smooth muscle cells.

BACKGROUND: Restenosis after percutaneous transluminal coronary angioplasty is associated with activation of medial smooth muscle cells (SMCs); they proliferate, migrate to the subintima, and narrow the vessel lumen. Cancer cells often express more cell surface receptors than do normal cells. This has allowed tumor cells to be specifically targeted using cytotoxic agents. We have examined whether a similar concept can be applied to rapidly proliferating but nontransformed SMCs. Pseudomonas exotoxin (PE; MW, 66 kDa) is a potent toxin that kills cells by inhibiting protein synthesis; its toxicity is diminished when its cell recognition domain is deleted to produce a 40-kDa protein (PE40). METHODS AND RESULTS: A complementary DNA encoding transforming growth factor alpha (TGF alpha) was ligated to that encoding PE40 and the chimeric toxin TGF alpha-PE40, which is cytotoxic to cancer cells displaying epidermal growth factor (EGF) receptors, was expressed in Escherichia coli. The ability of this toxin to kill proliferating SMCs was tested. When cells were seeded at low density (2,500 cells/cm2) and grown in medium supplemented with 10% fetal bovine serum, they were found to be rapidly proliferating; these cells were very sensitive to the cytotoxic effects of TGF alpha-PE40 (ID50, 4.0 +/- 0.17 ng/ml). In contrast, cytotoxicity was 30-fold less (ID50, 125 +/- 23 ng/ml; p less than 0.0004) when cells were in a quiescent state (grown in medium supplemented with 0.5% fetal bovine serum). CONCLUSIONS: Competition studies using excess EGF indicated that the cytotoxic effects of TGF alpha-PE40 are specifically mediated by the EGF receptor. EGF receptor binding analysis demonstrated that rapidly proliferating SMCs display 10-fold more EGF receptors than do quiescent SMCs in vitro. Thus, a chimeric toxin targeted toward the EGF receptor can selectively kill rapidly proliferating SMCs. Whether this toxin or other chimeric toxins directed against other cell surface receptors will effectively inhibit SMCs proliferating in vivo or be useful in preventing restenosis remains to be determined.

ADP Ribose Transferases↗

Human hepatocellular carcinoma cell lines exhibit multidrug resistance unrelated to MRD1 gene expression.

Multidrug resistance of human cancer cells may result from expression of P-glycoprotein, the product of the MRD1 gene, acting as an energy-dependent drug efflux pump. However, direct evidence that expression of the MDR1 gene contributes to the multidrug resistance of human liver carcinomas has not been established. In this study, we tested five cell lines derived from human hepatocellular carcinomas for sensitivity to a variety of drugs used widely as anticancer agents; these included vinblastine, doxorubicin, actinomycin D, mitomycin C, 5-fluorouracil, 6-mercaptopurine, melphalan, methotrexate, cis-platinum and etoposide (VP-16). All five hepatoma cell lines were resistant at different levels to these chemicals compared to human KB cells. Although it has been demonstrated that resistance to vinblastine, colchicine, doxorubicin and actinomycin D in human multidrug-resistant cells is associated with overexpression of P-glycoprotein, very little expression of P-glycoprotein was found in these human hepatoma cells. Neither verapamil nor quinidine, inhibitors of the drug efflux pump, were able to overcome multidrug resistance in hepatoma cells. These results indicate that the multidrug resistance phenotype in human hepatocellular carcinoma cells cannot be attributed to expression of the MDR1 gene, but that novel mechanisms may account for the resistance of these cancer cells.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Pseudomonas exotoxin fusion proteins are potent immunogens for raising antibodies against P-glycoprotein.

Antibodies to specific regions of human P-glycoprotein have been difficult to obtain. We developed a method to express in E. coli fusions between Pseudomonas exotoxin and specific regions of human P-glycoprotein. We used the polymerase chain reaction to amplify the desired regions of MDR1 cDNA and to introduce appropriate restriction sites. These fragments were cloned into the 3' end of the Pseudomonas exotoxin gene. With this system we produced large amounts of fusion proteins for immunizations, and we obtained positive rabbit antiserum against P-glycoprotein with most of these antigens. We now have a comprehensive panel of polyclonal antibodies against P-glycoprotein. This system should be generally useful to raise antibodies against other eukaryotic proteins that are difficult to prepare in large quantities.

ADP Ribose Transferases↗

Fluorescent verapamil derivative for monitoring activity of the multidrug transporter.

Multidrug resistance to amphipathic natural product chemotherapeutic drugs is conferred on cancer cells by expression of the MDR1 gene, which encodes the 170-kDa multidrug transporter known as P glycoprotein. The P glycoprotein-mediated efflux of toxic chemotherapeutic drugs can be reversed by agents such as verapamil, which is a substrate for the multidrug transporter and appears to be a competitive inhibitor of the efflux pump. In this study, Bodipy-verapamil, a fluorescent derivative of verapamil, has been shown to be a substrate for the efflux pump activity of P glycoprotein. Single-cell fluorescence analysis reveals that Bodipy-verapamil accumulates in lysosomes of drug-sensitive NIH3T3 and KB cells but is rapidly effluxed from multidrug-resistant derivatives of these cell lines. Although Bodipy-verapamil is a substrate for the multidrug transporter, it is not an efficient inhibitor of the pump and does not reverse resistance to vinblastine and colchicine as effectively as does verapamil. This new derivative may be a useful tool for imaging of lysosomes in drug-sensitive cells and for rapid screening for the multidrug-resistant phenotype in other cell types.

3T3 Cells↗