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F K Jansen

Publications and source records attributed to F K Jansen.

At least 37 records · Page 2Linked to original sources

Cytotoxic effect of anti-Mr 67,000 protein immunotoxins on human tumors in a nude mouse model.

We have studied the potential use of immunotoxins (ITs) for therapeutic treatment of human tumors in an experimental model of human neoplasia. We tested intact ricin IT for its antitumor activity against established tumors. CEM, a human T-cell leukemia line expressing an Mr 67,000 cell surface antigen, and Daudi, a human B-cell lymphoma line which does not express the antigen, were found to be consistently tumorigenic in nude mice. ITs were synthesized using T101, a high-affinity monoclonal antibody reacting with the Mr 67,000 protein determinant and intact ricin. We have shown for the first time that established CEM solid tumors in nude mice will regress following intratumoral injection of T101-ricin IT, while Daudi tumors will not. Selective activity of T101-ricin is dependent on systemic i.v. administration of lactose and local intratumoral injection of the T101-ricin IT with lactose. Intact ricin ITs require the presence of lactose to block native ricin binding and render them antigen specific when linked to monoclonal antibody. Killing of target was cell specific since (a) nonspecific (irrelevant) ITs did not cause the regression of CEM tumors, and (b) injection of large amounts of free T101 antibody prior to T101-ricin IT blocked antitumor activity. Selectivity was not absolute, since regression occurred in one of six animals given irrelevant IT, and blocking was observed in two of four mice. Intratumoral IT treatment with 1 or 2 micrograms of T101-ricin IT plus lactose was not harmful to mice in contrast to intratumoral ricin treatment, which killed all treated tumor-bearing mice at a dose of 0.3 micrograms. Without i.v. injection of lactose, intratumoral injection of T101-ricin IT was also effective in eliminating established tumors. However, this treatment did not result in the selective elimination of tumor, since Daudi tumors also regressed following T101-ricin IT treatment. IT, made with ricin A chain only (T101-A chain IT), was also tested against established CEM tumors. We found that high dosages of T101-A chain IT did not destroy CEM tumors when injected intratumorally, even in the presence of activating agents such as NH4Cl or the carboxylic ionophore X-537 A. In contrast, in vitro experiments demonstrated that T101-A chain IT plus activating agents had potent and selective cytotoxic effect against CEM cells. We conclude that ITs are specifically toxic to established tumors. Although selectivity is not absolute, ITs exhibit potential as a new class of antitumor reagents.

Animals↗

Kinetics of cytotoxicity induced by immunotoxins. Enhancement by lysosomotropic amines and carboxylic ionophores.

The kinetics of cytotoxicity induced by ricin and a series of immunotoxins consisting of ricin A-chain coupled to antibodies against cell-surface antigens has been studied. The inhibition of protein synthesis in cells treated with immunotoxins or ricin occurs after a lag period. The rate of protein synthesis decreases according to a mono-exponential function, indicating a first-order process. With increasing concentration of immunotoxin, a maximal rate of inhibition is reached. The inactivation rate induced by immunotoxins was much slower than that achieved with ricin, even when products were compared on a basis of an identical number of molecules bound per cell, demonstrating the real higher efficacy of ricin. The time required to reduce protein synthesis by 90%, denoted T10, was 1.4-1.6 h with ricin, 60 h with anti-T65 immunotoxin on CEM human T leukemia cells (T65 positive), 65 h with anti-p97 immunotoxin on SK-MEL 28 human melanoma cells (p97 positive), and 20 h with an IgM anti-Thy 1.2 immunotoxin on WEHI-7 mouse T leukemia cells (Thy 1.2 positive). In this latter case, when the IgM antibody was replaced by an IgG anti-Thy 1.2, a 5-fold increase in the inactivation rate was obtained, demonstrating the importance of the binding moiety for the immunotoxins. Lysosomotropic amines such as ammonium chloride, chloroquine, and methylamine and carboxylic ionophores such as monensin, which are known to interfere with the uptake of certain macromolecules, strongly increased the rate of protein synthesis inhibition by all immunotoxins tested and increased 4-50,000-fold the sensitivity of cells to the immunotoxin. Enhancement in the inactivation rate was as much as 7-10-fold when either of these compounds was added, generating T10 values comparable to those of ricin.

Amines↗

Present potential of immunotoxins.

Immuno-a-toxins (I-a-T) are hybrid molecules designed for a more selective therapy of cancer, which combine an antibody preferentially directed against tumour cells and the A-chain of the toxin ricin. Although a majority of them are highly and selectively cytotoxic to their target cells in vitro, only some of them gave rise to a therapeutic effect in animal models. In vitro kinetics studies suggested the importance of a rapid mode of action for in vivo efficacy, which is not the property of all I-a-T. Ways of accelerating and potentiating such conjugates are proposed, such as the use of lysosomotropic amines like ammonium chloride. Whereas the in vivo use of these activators is still under research, their in vitro use gives rise to a 99.99% cytoreduction of leukemic cells and thus is directly applicable to clinical situations such as bone marrow transplantations.

Animals↗

[Immunotoxins].

Immunotoxins are conjugates between antibodies especially directed against cancer cells and a subunit of a powerful toxin. We used the A-chain of ricin. These conjugates are specifically cytotoxic when used at very low concentrations in vitro and can destroy more than 99.99% of clonogenic cells. The efficacy of immunotoxins was also demonstrated in vivo but is inferior to its in vitro potency. For this reason the first use of immunotoxins in man can be the cleaning up of bone marrow from leukemic cells in the near future.

Animals↗

Human melanoma cells can be killed in vitro by an immunotoxin specific for melanoma-associated antigen p97.

Conjugates (immunotoxins) comprising ricin A-chain and monoclonal antibody 96.5, which is specific for human melanoma-associated antigen p97, inhibited protein synthesis and colony formation of cultured human melanoma cells that expressed more than 80,000 molecules of p97 per cell. Cells expressing fewer than 5,000 molecules of p97 were not killed. The presence of 10 mM ammonium chloride significantly increased the efficiency of the immunotoxin, tumor cells expressing high levels of p97 being killed at immunotoxin concentrations as low as 10(-10) M.

Antibodies, Neoplasm↗

[Immunotoxins (author's transl)].

Immunotoxins are hybrid molecules made up of an antibody and of the toxic subunit of a polypeptidic toxin. They act on the principle that the antibody binds the molecule to a cellular antigen which it specifically recognizes, so that the cytotoxic component only kills those cells that bear the antigen. Cell hybridizations obtained by fusion now produce monoclonal antibodies specific enough to bind the antigens present on certain malignant cells. In vitro experiments have demonstrated the high specific activity of immunotoxins against malignant cells, and this seems to be confirmed by in vivo experiments in mice. Such experimental results suggest that immunotoxins may eventually be used in the treatment of cancer as well as for other pharmacological purposes.

Animals↗

Immunotoxins: hybrid molecules of monoclonal antibodies and a toxin subunit specifically kill tumour cells.

Several attempts to attack tumours in experimental systems have been made using conjugates of chemotherapeutic agents or potent toxins with antibodies (immunotoxins). In vitro studies have been highly successful, showing target specificity of a high order in some cases. However, so far, such conjugates have been inadequate in vivo, probably for two main reasons. First, conventional heteroclonal antibodies are perhaps inappropriate, because purification by biochemical methods leaves a large amount of non-antibody gamma-globulins. The use of monoclonal antibodies may overcome this problem. Second, when whole toxins have been conjugated to antibodies there has been a strong residual nonspecific cytotoxicity due to the binding capacity of a subunit, the B-piece of the toxin. (Diphtheria toxin or ricin consist of two polypeptide subunits. The A-piece is responsible for inhibition of protein synthesis on ribosomes, and the B-piece binds to galactose residues on the cell membrane and facilitates the transmembrane passage of the A-piece.) In the present work the problem of nonspecific binding by the B-piece has been circumvented by using the A-piece only as the toxin component of immunotoxins; these immunotoxins are active both in vitro and in vivo.

Animals↗

Virus induced diabetes and the immune system. II -- Evidence for an immune pathogenesis of the acute phase of diabetes.

The infection of normal DBA2 and BALB/C nu/ + mice with 2 X 10(2,6) TCID50 of the M variant of the EMC virus induced pathological mean glucose values of 426 +/- 99 mg/100 ml in DBA2 mice and 292 +/- 130 mg/100 ml in BALB/C nu/ + mice on day five following infection. As diabetic animals died afterwards, mean glucose values decreased in the surviving animals on day seven and fourteen. The infected immunodeficient BALB/C nu/nu mice with thymus aplasia did not show abnormal mean glucose values or higher standard deviation of the means (114 +/- 37 mg/100 ml) when compared to uninfected controls (117 +/- 23 mg/100 ml). This demonstrates that a complete thymus-dependent immune system seems to be necessary for the development of the acute stage of virus-induced diabetes in the mouse.

Animals↗

Virus induced diabetes and the immune system. I. Suggestion that appearance of diabetes depends on immune reactions.

The participation of immune reactions in the EMC virus induced diabetes of the mouse was studied by immunosuppression with 500 R sublethal X-irradiation or 120 mg/kg Asta 5122, a cyclophosphamide derivative. Average glucose levels after X-irradiation and infection remained normal, while virus, infected, otherwise untreated mice, had significantly higher mean glucose levels, indicating that immune reactions are necessary for the development of virus induced diabetes. Immune suppression by the cyclophosphamide derivative led, in contrast, to a significantly increased mean glucose level and increased insulitis in comparison with the controls only infected. This indicates an important role of the cellular immune reaction, insulitis in the destruction of the islets.

Animals↗

HLA antigens and immunoresponsiveness to insulin in insulin-dependent diabetes mellitus.

HLA-A and B antigens were determined in 112 patients with insulin-dependent juvenile onset diabetes mellitus, who could be subdivided into "non" and "high responder" to insulin. The data revealed a trend of an association of these diabetes subgroups with only one of the diabetes-associated antigens HLA-B8 and HLA-BW15 and indicated the existence of at least two different genetic constellations for susceptibility to juvenile diabetes mellitus. One form with a strong immune-response to insulin seemed to be associated with HLA-BW 15 and the other form without humoral immunoreactivity to insulin seemed to be associated with the presence of HLA-B8 and the absence of HLA-B7.

Diabetes Mellitus↗