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Biomedical subjects

F K Jansen

Publications and source records attributed to F K Jansen.

At least 19 recordsLinked to original sources

Golgi vacuolization and immunotoxin enhancement by monensin and perhexiline depend on a serum protein. Implications for intracellular trafficking.

Vacuole formation around the Golgi and immunotoxin enhancement induced by low doses of the ionophore monensin were inhibited by 50% human plasma (final concentration), whereas the lysosomal pH increase remained unaffected. Immunotoxin enhancement by the Ca2+ antagonist perhexiline was also inhibited by plasma. The inhibiting factor was present in different species and highly concentration-dependent. After purification on DEAE- and CM-Sepharose it showed a heterogeneous distribution between 45 and 50 kDa, in sodium dodecyl sulfate-polyacrylamide gel electrophoresis, an extreme isoelectric point near 3.5, and binding to wheat germ agglutinin-Sepharose. Maximum inhibition was found in the lower molecular mass fraction of 45 kDa. The 50-kDa fraction, although showing immunological identity reactions, remained almost inactive. The simultaneous inhibition of morphological alterations and the enhancement of immunotoxin activity by the highly enriched protein provides a first direct link between both events. Apart from a role of this serum glycoprotein on in vivo inhibition of immunotoxin enhancement, its ability to maintain normal intracellular trafficking in the presence of blocking agents, such as monensin and perhexiline, suggests a more fundamental role in the regulation of these mechanisms.

Biological Transport↗

Biologically active A-chain of the plant toxin ricin expressed from a synthetic gene in Escherichia coli.

To assess the biological activity and pharmacokinetic properties of nonglycosylated ricin A-chain (RA), we have obtained the polypeptide following expression of a synthetic 842-bp RA gene in Escherichia coli. Expression of the gene was carried out using the phage T5 PN25 promoter fused to the E. coli lac operator. The RA polypeptide was synthesized in a completely soluble form and was purified in one step by immunoabsorption. It was shown to be as cytotoxic for a human cell line as both native RA and chemically deglycosylated native RA. Reconstituted whole ricin and an immunotoxin containing the recombinant RA were also biologically active. Immunotoxins made with recombinant and deglycosylated RA had similar clearance rates in vivo showing, after a short period of rapid elimination, stabilities far higher than that of an immunotoxin made with native RA. Our results show that the complete elimination of sugar side chains from the RA is not sufficient to entirely eradicate the rapid initial in vivo clearance of RA-based biologicals.

Amino Acid Sequence↗

T-lymphocyte killing by T101-ricin A-chain immunotoxin: pH-dependent potentiation with lysosomotropic amines.

To maximize T-lymphocyte killing with anti-pan-T-lymphocyte immunotoxin (IT), prepared by linking ricin A-chain to monoclonal antibody (MoAb) T101 (T101-RTA IT), we have established the nature and the extent of parameters that influence the sensitivity of T lymphocytes to the IT. We showed that peripheral blood T lymphocytes, which are much less susceptible than malignant T cells to the T101-RTA IT, could become highly sensitive to the IT when used in conjunction with NH4Cl. However, enhancement of the IT by NH4Cl only occurred when the pH rose above neutrality. This pH-sensitive process of IT activation by NH4Cl, which led to an all-or-nothing effect within an extremely narrow pH window of 0.7 pH unit width, is due to the fact that NH3 is the effective enhancing component of NH4Cl. We also showed that F(ab')2 or Fab containing IT were much more effective than those produced using the whole IgG counterpart. From these data, we defined a procedure for an optimal and specific elimination of T lymphocytes in vitro by treating them with (Fab)T101-RTA at 10(-8) mol/L at pH 7.8 in the presence of NH4Cl for two hours. This peripheral blood cell processing elicited an abrogation of three logs of functional T-cell response. Under the same conditions, there was no reduction in the number of marrow hematopoietic precursor granulocyte-macrophage colony-forming units (CFU-GM).

Ammonium Chloride↗

A phase I study of T101-ricin A chain immunotoxin in refractory chronic lymphocytic leukemia.

Four patients with chronic lymphocytic leukemia refractory to alkylating agents were treated with T101-ricin A chain immunotoxin (T101-RTA) as part of a phase I study. Over a 4-week period, each patient received eight intravenous infusions of 3 mg/m2 T101-RTA over 1 h. All infusions were well tolerated. Patients had mild fevers but no other systemic toxicities. In vivo binding of T101-RTA was detected by FACS analysis using anti-mouse Ig-FITC or anti-A chain-FITC antibody conjugates. Saturation of circulating leukemic cell-associated target antigen was achieved in three of the patients. Available CD5 sites per cell dropped precipitously at the completion of infusions in all four patients, returning to within 30% of baseline by 24 h. Pharmacokinetic studies revealed rapid clearance of T101-RTA, with wide interpatient variability in peak serum levels (the highest levels in those patients who saturated their circulating CD5 antigen with immunotoxin). Although no patient developed detectable levels of antimurine antibodies, one patient did have a rising titer of anti-ricin A chain antibody associated with declining peak serum levels of immunotoxin. All patients had a rapid fall in WBC count of less than 24-h duration after each T101-RTA infusion, most likely secondary to the antibody portion of immunotoxin. No sustained benefit could be demonstrated in any patient, possibly because in the absence of an enhancing agent the leukemic cells of all four patients were resistent to T101-RTA at concentrations up to 2,000 ng/ml in vitro.

Aged↗

Study of the plasma clearance of antibody--ricin-A-chain immunotoxins. Evidence for specific recognition sites on the A chain that mediate rapid clearance of the immunotoxin.

In recent years, antibody--ricin-A-chain immunotoxins have been investigated as anti-neoplastic agents. To achieve in vivo therapy it is necessary that the immunotoxin remains in circulation at a sufficiently high level for a sufficiently long time to allow binding to tumor cells to occur. Therefore, examination of the pharmacology of immunotoxins may elucidate the reasons for the poor in vivo tumoricidal effect of immunotoxin described before. In this study the plasma clearance of antibody--ricin-A-chain immunotoxins, after intravenous injection in animals of different species, has been examined. Sensitive and reproducible techniques were developed to monitor the level of immunotoxin and its constituents in the blood. It is shown that immunotoxins are rapidly eliminated from the bloodstream. Neither the properties of the antibody moiety nor the nature of the linkage binding ricin A-chain to antibody account for the disappearance of immunotoxin from the plasma. On the other hand, we found that the rapid clearance of immunotoxin is due to the mannose residues on the ricin A-chain moiety which are specifically recognized by liver cells. When immunotoxin is administrated together with yeast mannan, which enhances the level of active immunotoxin in circulation by inhibition of liver uptake, the anti-cancer efficacy of immunotoxin in vivo is drastically improved.

Animals↗

Effects of therapy with T101 ricin A-chain immunotoxin in two leukemia patients.

Two leukemia patients, refractory to chemotherapy, were treated with T101-ricin A-chain immunotoxin (T101 IT). Patient 1 (T-ALL) received a single 13.5 mg dose of T101 IT IV (12-hour infusion). Patient 2 (B-CLL) was treated with a daily 25 mg dose of T101 IT IV (two-hour infusion) over three consecutive days. Patient 2 also received 300 mg of chloroquine IM on days two and three as enhancer. In vivo binding of T101 IT was demonstrated by FACS analysis using either an antimouse Ig-FITC or anti-A-chain-FITC antibodies. Following IT therapy, the expression of T65 antigen on target cells dropped to 50% and 20% of pretreatment levels, respectively. In patient 1, circulating blast cells remained unsaturated during therapy while in patient 2, cells were fully saturated for four to six hours following each infusion. Pharmacokinetic studies showed a rapid clearance of T101 IT after IV administration. Antimouse and anti-A-chain antibodies could not be detected. There were no treatment-related adverse effects. In patient 1 a rapid but transient decrease of target cells was observed, possibly related to the administration of the antibody part of T101 IT. In contrast, patient 2 showed a 40% reduction of the lymphocyte count, which remained stable over a period of 2 weeks. Such a clinical benefit following IT therapy in patient 2 could be ascribed to the absence of circulating free antigen and the complete saturation of target cells.

Adult↗

Determination of sensitivity of fresh leukemia cells to immunotoxins.

In clinical practice, sensitivity of malignant cells to a given immunotoxin remains hypothetical, since standard test systems such as the protein synthesis inhibition assay or the cloning assay are not appropriate. This study evaluated the feasibility of a semi-routine procedure based on dye exclusion assay enumerating the percentage of living cells after fluorescein diacetate-propidium iodide staining. The validity of the method was evaluated using five different subclones derived from the CEM cell line, which expressed a wide range of sensitivity to T101 A-chain immunotoxin. The comparison between dye exclusion assay and standard test systems suggested that this method might allow an easy and reproducible semi-quantitative evaluation of the sensitivity of leukemia cells. In a series of 21 patients suffering from various blood diseases in which the malignant cells expressed the T65 antigen, dye exclusion assay could detect clear T101 immunotoxin cell sensitivity in about 50% of the cases. The mean density of T65 antigen on malignant cells was found to influence dramatically the sensitivity of target cells to T101 immunotoxin.

Antibodies, Monoclonal↗

Studies on components of immunotoxins: purification of ricin and its subunits and influence of unreacted antibodies.

Two ricins were purified from the seeds of Ricinus communis by a simple method based on affinity chromatography allowing large-scale preparations. Separation of these 2 ricins was achieved by ion-exchange chromatography and studies of purified subunits demonstrated that the 2 forms of ricin differed only in their B-chains which showed widely differing isoelectric points. The A-chains isolated from both ricins showed similar biological properties and contained 2 variants, A1 and A2, differing in their molecular weights and carbohydrate contents. These variants could be separated by affinity chromatography on Con-A-Sepharose which bound the A2 variant more tightly than A1. This property allowed us to obtain immunotoxin preparations devoid of free antibodies and to study the in vitro influence of free antibody on immunotoxin activity.

Animals↗

[Autograft of bone marrow treated by immunotoxin T 101 for the treatment of T-cell leukemia and lymphoma. Initial clinical cases].

In order to consolidate a complete or partial remission, 4 patients with T-cell malignancy received cyclophosphamide 120 mg/kg plus total body irradiation, followed by reinfusion of cryopreserved autologous bone marrow purged in vitro by the immunotoxin T 101 (SR 41322) composed of the murine monoclonal T 101 antibody coupled with the A chain of ricin. The immunotoxin was applied in doses of 10(-9) and 10(-8) M for periods of 4 and 20 hours at 37 degrees C. The recovery of CFUc and BFUe progenitors was total following incubation with IT 101, but reduced after cryopreservation (1-15 to 80% for CFUc,-33 to 47% for BFUe), haematopoietic recovery occurred within normal delays, demonstrating that autologous bone marrow pretreated with the immunotoxin can be successfully transplanted. However, the slow increase in lymphocytes and the occurrence of lethal infection in 2 cases indicate that an in-depth study of immunological reconstitution after in vitro treatment of bone marrow with ITT 101 is necessary.

Adolescent↗

Biochemical aspects of immunotoxin preparation.

The preparation of immunotoxins, hybrid proteins formed by disulfide bonding an antibody and the A-chain of ricin, has been studied in detail. Optimal conditions, both for the modification of the antibody and the coupling reaction between the modified antibodies and the toxin subunit, have been determined. Conditions of time, temperature and stoichiometry studied suggested 2 protocols for each of the 2 steps of this preparation. Purification and analysis of the physicochemical and biochemical properties of the products yielded well-characterized agents, likely to be of value in clinical studies.

Animals↗

Endocytosis of an antibody ricin A-chain conjugate (immuno-A-toxin) adsorbed on colloidal gold. Effects of ammonium chloride and monensin.

An immunotoxin (IT) formed by a specific antibody coupled to the ricin A chain was adsorbed on colloidal gold particles (IT-Au). Binding and internalization of IT-Au in human lymphoblastic CEM cells were studied using electron microscopy. IT-Au showed specific cytotoxic activity toward the target cells. After 1 h at 4 degrees C, IT-Au were linked diffusely to the plasma membrane with 45% of the particles regrouped in clusters. Upon transfer to 37 degrees C, the particles carrying the ligand were regrouped more frequently and internalized into the cell by endocytosis through smooth microinvaginations or coated pits of the plasma membrane. After 15 min, IT-Au was observed in endocytic vacuoles, or receptosomes, in tubular structure near the Golgi apparatus and in lysosomes. Entry of IT-Au into lysosomes was rapid (around 50% of intracellular IT-Au particles after 30 min). NH4Cl or monensin, well-known potentiators of immunotoxin activity, when present in incubation medium, altered neither the processes nor the rate of IT-Au endocytosis. In the presence of either of these substances, IT-Au accumulated in the normal or often enlarged endocytic vacuoles, and entry into the lysosomes was slowed down (50% of particles after 2 h 15 min). We conclude that this intense slowing-down in the speed of IT-Au transportation into lysosomes and the functional modifications of these organelles help to explain the increased efficacy of immunotoxins in the presence of potentiators.

Adsorption↗

Optimal elimination of leukemic T cells from human bone marrow with T101-ricin A-chain immunotoxin.

In view of bone marrow purging before autologous transplantation in T cell malignancies, an anti-human T cell immunotoxin (IT) has been prepared by coupling ricin A-chain to the monoclonal antibody T101 that binds the T1 differentiation antigen expressed by T lymphocytes as well as by T cell-derived hematologic malignancies. Using a sensitive and reliable clonogenic assay, optimal conditions were defined for the elimination of clonogenic human T leukemic cells among bone marrow cells. Maximal cytoreduction was obtained with IT at a dose of 2 micrograms/mL in the presence of 10 mmol/L NH4Cl. This treatment led to the reduction of more than six orders of magnitude of T101-positive clonogenic leukemic cells, with no harm to T101-negative cells. Moreover, we observed no toxicity of IT to human hematopoietic stem cells (CFU-GEMMT) derived from bone marrow of healthy volunteers. Thus, pretreatment of bone marrow samples with IT plus NH4Cl offers a safe, simple, reliable, and highly efficient means to eliminate undesirable leukemic T cells from the graft.

Ammonium Chloride↗

Evidence for absence of toxicity of T101 immunotoxin on human hematopoietic progenitor cells prior to bone marrow transplantation.

T101-ricin A-chain immunotoxin is a hybrid molecule made up of the T101 monoclonal antibody bound to the A-chain of ricin. It specifically destroys cells expressing the cell surface T65 antigen. We have designed a preclinical study to evaluate its possible use for the in vitro treatment of T-cell hematological cancers prior to autologous bone marrow transplantation. The data presented here show that conditions previously defined to produce high tumor cell killing, i.e., a 20-hr incubation at 37 degrees in the presence of T101-ricin A-chain immunotoxin up to 10(-7) M in a 10 mM ammonium chloride solution, do not affect the in vitro proliferative capacity of human hematopoietic stem cells studied by means of semisolid medium cultures (granulocyte-macrophage progenitors, burst-forming units-erythrocyte) and continuous liquid cultures (pre-granulocyte-macrophage progenitors). Therefore, autologous bone marrow transplantation with T101-ricin A-chain immunotoxin-treated graft should be feasible.

Antibodies, Monoclonal↗