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V Ghetie

Publications and source records attributed to V Ghetie.

At least 55 records · Page 3Linked to original sources

Catabolism of the murine IgG1 molecule: evidence that both CH2-CH3 domain interfaces are required for persistence of IgG1 in the circulation of mice.

Site-directed mutagenesis of a recombinant Fc-hinge fragment has previously been used to identify a region of the murine IgG1 molecule that controls catabolism, and this site encompasses amino acid residues at the interface of the CH2 and CH3 domains. In the current study the nature of this 'catabolic site' has been further analysed using recombinant techniques. Fc-hinge, CH2-hinge, CH2 and CH3 fragments have been expressed in Escherichia coli, purified and analysed in pharmacokinetic studies in mice. The CH2-hinge has been analysed as both a monomer and dimer, and the dimer has a longer beta phase half-life (61.6 h) than the monomer (29.1 h). This suggests that two catabolic sites per Fc fragment are required for serum persistence. The need for two functional sites per molecule has been confirmed by the analysis of a hybrid Fc-hinge fragment comprising a heterodimer of one Fc-hinge with the wild type (WT) IgG1 sequence and a mutant Fc-hinge with a defective catabolic site (mutated at His310, Gln311, His433 and Asn434). This hybrid is cleared with a beta phase half-life of 37.9 h and this is significantly shorter than that of the WT Fc-hinge fragment (82.9 h). In contrast to the CH2-hinge dimer, the CH3 domain is cleared rapidly (beta phase half-life of 21.3 h) indicating that the region of this domain (His433 and Asn434) previously identified as being involved in the control of catabolism is not sufficient in the absence of the CH2 domain for the serum persistence of an IgG fragment. The data extend our earlier observations concerning a region of the murine IgG1 molecule that is involved in the control of catabolism and have implications for the design of engineered antibodies for therapy.

Animals↗

Purification and properties of immunotoxins containing one vs. two deglycosylated ricin A chains.

A method for the preparation of immunotoxins (ITs) containing one and two molecules of deglycosylated ricin A chain (dgA) bound to each molecule of anti-human CD22 mouse IgG1 monoclonal antibody is described. The cross-linking of antibody and dgA molecules was accomplished with N-succinimidyl-oxycarbonyl-alpha-methyl-(2-pyridyldithio) toluene. The two ITs were purified by successive chromatographies on Blue-Sepharose, Sephacryl S-200, Blue-Sepharose with NaCl gradient and Sephacryl S-300. The IT with two dgAs was seven-fold more cytotoxic to CD22+ Daudi cells than that containing one molecule of dgA.

Animals↗

A phase I study of an anti-CD22-deglycosylated ricin A chain immunotoxin in the treatment of B-cell lymphomas resistant to conventional therapy.

Twenty-six patients, whose B-cell lymphoma had relapsed after conventional therapies, were treated in a phase I dose escalation study with an immunotoxin consisting of a mouse CD22 monoclonal antibody (RFB4:IgG1K) coupled to chemically deglycosylated ricin A chain (dgA). Two to 12 doses of the immunotoxin were infused intravenously at 48-hour intervals. The peak serum concentration and half-life (T1/2) did not correlate directly with the dose and averaged 3.8 micrograms/mL and 7.8 hours, respectively. The main dose-limiting toxicity was caused by the vascular leak syndrome (VLS) consisting of weight gain, edema, serum albumin decrease, and critically by pulmonary edema. Myalgia occurred frequently and was only dose limiting in one patient who developed rhabdomyolysis. The presence of lymphoma cells in the blood (> or = 10(10)/L) and clinically detectable splenomegaly were associated with reduced toxicity and a shorter T1/2. Nine of 24 evaluable patients (37.5%) made antibody to either mouse Ig or dgA. There were five partial responses (PR) and one complete response (CR) lasting 30 to 78 days. High peak concentrations of immunotoxin in the serum, a long T1/2, and large areas under the curve (AUC) correlated with both clinical response and toxicity. None of three patients with CD5+ lymphomas (including two CLL patients) had more than mild toxicity or responded to the immunotoxin.

Adult↗

A CD4-derived peptide carrier blocks acute HIV-1 infection in vitro and binds to gp120 in the presence of Walter-Reed stage 1-6 HIV+ sera.

A peptide containing amino acid residues 41-84 of the CD4 molecule was synthesized and coupled through a thioether bond to human serum albumin. This conjugate bound to gp120 with an affinity that was half that of CD4 and blocked the HIV infection in vitro with an efficacy tenfold lower than that of CD4. More importantly, the CD4 peptide-human serum albumin conjugate could bind to gp120 in the presence of HIV+ sera from 18 Walter Reed stage 1-6 patients.

Acquired Immunodeficiency Syndrome↗

The GLP large scale preparation of immunotoxins containing deglycosylated ricin A chain and a hindered disulfide bond.

The large scale preparation of two second generation immunotoxins containing murine monoclonal antibodies and deglycosylated ricin A chain is described. The procedure for the preparation of immunotoxins consists of the derivatization of antibody with SMPT and reduction of dgA with DTT followed by their reaction to establish a hindered interchain disulfide bond. The purification of the immunotoxin includes affinity chromatography on Blue-Sepharose to remove the free antibody and gel filtration on Sephacryl S-200HR to remove any high molecular weight material and free dgA. The two immunotoxins were prepared by GLP procedures and tested for yield, composition, purity, sterility and biological activity.

Antibodies, Monoclonal↗

CD4 peptide-protein conjugates, but not recombinant human CD4, bind to recombinant gp120 from the human immunodeficiency virus in the presence of serum from AIDS patients.

Sera from human immunodeficiency virus-positive (HIV+; Walter Reed stage 6) individuals inhibit the interaction between recombinant human CD4 and recombinant gp120 from HIV (rCD4 and rgp120, respectively), thereby interfering with the ability of soluble rCD4 to block infection with HIV or rCD4-toxin conjugates to kill HIV-infected cells. In this report we demonstrate that the inhibitory activity of such sera is caused primarily by anti-gp120 antibodies that do not recognize the CD4 interaction site on gp120. To circumvent the problem of inhibition, we have generated a construct containing a peptide of CD4 (residues 41-84) conjugated to ovalbumin (three to five peptides per molecule). This multivalent conjugate binds to rgp120 and binding is not inhibited by antibodies in HIV+ sera.

Acquired Immunodeficiency Syndrome↗

Large scale preparation of an immunoconjugate constructed with human recombinant CD4 and deglycosylated ricin A chain.

A method for the preparation and purification of large amounts (grams) of a conjugate containing recombinant CD4 antigen (rCD4) and chemically deglycosylated ricin A chain (dgA) is described. The cross-linking of rCD4 and dgA molecules was accomplished with N-succinimidyl-oxycarbonyl-alpha-methyl-(2-pyridyldithio)toluene (SMPT). The rCD4-dgA conjugate was purified by an automatic liquid chromatography system consisting of Blue-Sepharose CL-4B and Sephacryl S-200HR Pharmacia Bioprocess columns. The purified, endotoxin-free rCD4-dgA conjugate had a stable (hindered) disfulfide bond between rCD4 and dgA and was able to efficiently kill a human T cell line infected with HIV-1.

CD4 Antigens↗

Immunoconjugates containing ricin A chain and either human anti-gp41 or CD4 kill H9 cells infected with different isolates of HIV, but do not inhibit normal T or B cell function.

We have previously reported that immunoconjugates composed of deglycosylated ricin A chain coupled to either recombinant (r) CD4 or two different monoclonal human anti-gp41 antibodies (rCD4-dgA and anti-gp41-dgA, respectively) are specifically toxic to HIV-infected lines of human T cells (H9) and monocytes (U937). In order to further evaluate these immunoconjugates as potential therapeutic reagents for killing HIV-infected cells, H9 cells infected with five different isolates of HIV were used as target cells in vitro. All three HIV-specific immunoconjugates were toxic to H9 cells infected with each HIV isolate, but were virtually nontoxic to uninfected cells. Chloroquine markedly potentiated the specific toxicity of all three conjugates, particularly the anti-gp41-dgAs. None of the conjugates affected the ability of normal peripheral blood B cells to respond to mitogen or the ability of normal T cells to respond to alloantigens.

Antibodies, Monoclonal↗

The epitope specificity and tissue reactivity of four murine monoclonal anti-CD22 antibodies.

The CD22 antigen is expressed on the surface of normal human B cells and some neoplastic B cell lines and tumors. Previous cross-blocking studies using a panel of monoclonal anti-CD22 antibodies have defined four epitope groups, termed A-D. In the present studies, we have further dissected the epitopes recognized by four monoclonal anti-CD22 antibodies using immunoprecipitation and cross-blocking techniques, immunofluorescence analyses with a variety of cell lines, and immunoperoxidase analyses of 36 normal human tissues. Two of the antibodies, HD6 and RFB4, have been described previously, and two, UV22-1 and UV22-2, are described in this report. Our studies indicate that the four monoclonal antibodies show unexpected complexities in their reactivity with CD22+ and CD22- cells and their reactivity with solubilized CD22 molecules. The four antibodies, which recognize epitopes defined previously as CD22-A and CD22-B, further subdivide these epitope clusters into four determinants, A1, A2, B1, and B2. Furthermore, only two of the antibodies, RFB4 and UV22-2, are B cell-specific. In summary, our data indicate that RFB4 and UV22-2 would be the antibodies of choice for constructing immunotoxins to treat B cell tumors.

Animals↗

HIV-infected cells are killed by rCD4-ricin A chain.

The gp120 envelope glycoprotein of the human immunodeficiency virus (HIV), which is expressed on the surface of many HIV-infected cells, binds to the cell surface molecule CD4. Soluble derivatives of recombinant CD4 (rCD4) that bind gp120 with high affinity are attractive vehicles for targeting a cytotoxic reagent to HIV-infected cells. Soluble rCD4 was conjugated to the active subunit of the toxin ricin. This conjugate killed HIV-infected H9 cells but was 1/1000 as toxic to uninfected H9 cells (which do not express gp120) and was not toxic to Daudi cells (which express major histocompatibility class II antigens, the putative natural ligand for cell surface CD4). Specific killing of infected cells can be blocked by rgp120, rCD4, or a monoclonal antibody to the gp120 binding site on CD4.

Antigens, Differentiation, T-Lymphocyte↗

Evaluation of four CD22 antibodies as ricin A chain-containing immunotoxins for the in vivo therapy of human B-cell leukemias and lymphomas.

Ricin A chain-containing immunotoxins (IT-As) specific for the human B-cell antigen, CD22, were prepared from 4 monoclonal antibodies (MAbs) or their Fab' fragments: RFB4, HD6, UV22-I and UV22-2. The ITs were tested for their ability to kill cells from the Burkitt lymphoma line, Daudi, the pre-B-cell leukemia line, NALM-6, and the myeloma cell line, ARH-77. Daudi expresses high levels of CD22, whereas NALM-6 and ARH-77 express low levels of CD22. The IgG-RFB4-A was highly toxic to all 3 cell lines; it killed 50% of the Daudi cells at a concentration of 1.2 x 10(-12) M and 50% of NALM-6 and ARH-77 cells at concentrations of 1.5 to 2.1 x 10(-11) M. IgG-RFB4-A was 10-30 times more toxic to Daudi cells than were the IgG-As constructed from the other 3 CD22 MAbs and 10 times more toxic than ricin itself. IT-As constructed from the Fab' fragments of the 4 CD22 antibodies were 2 to 5 times less toxic to Daudi cells than their IgG-A counterparts. Fab'-RFB4-A was twice as toxic to Daudi cells as ricin, whereas the other Fab'-As were about 7 times less toxic than ricin. Scatchard analyses of the binding of the radio-iodinated antibodies to Daudi cells showed that the intact RFB4 antibody bound 3-10 times more strongly than the other antibodies, whereas the Fab'-RFB4 bound 1.2 to 3.5 times more strongly than the Fab' fragments prepared from the other antibodies. Thus, the potent cytotoxic activity of the RFB4-As appears to derive, in part, from their superior binding affinity. Prior studies have shown that UV22-I and HD6 cross-react with certain normal human tissues lacking cells of B-cell lineage, whereas UV22-2 and RFB4 are B-cell-specific. This fact, together with its superior potency as an IT-A, suggests that RFB4 is the antibody of choice for preparing Fab'-As or IgG-As for in vivo therapy of human B-cell leukemias and lymphomas.

Animals↗

Large scale preparation of immunotoxins constructed with the Fab' fragment of IgG1 murine monoclonal antibodies and chemically deglycosylated ricin A chain.

In this report, we describe a method for the preparation of large amounts (grams) of immunotoxins (ITs) consisting of Fab' fragments of murine IgG1 monoclonal antibodies conjugated to chemically deglycosylated ricin A chain (dgA). The preparation of Fab' and dgA chain and the purification of the Fab'-dgA IT were accomplished by gel filtrations and affinity chromatography utilizing six Pharmacia Bioprocess columns (Sephadex G-25M, Sephacryl S-200HR and Blue Sepharose CL-4B) integrated into a semi-automatic chromatography system controlled by a Pharmacia C3-process controller. The final Fab'-dgA ITs were highly purified, potent, sterile and low in endotoxin concentration.

Antibodies, Monoclonal↗

Evaluation of ricin A chain-containing immunotoxins directed against CD19 and CD22 antigens on normal and malignant human B-cells as potential reagents for in vivo therapy.

Ricin A chain-containing immunotoxins (IT-As) specific for the human B-cell antigens, CD22 and CD19, were constructed using the monoclonal antibodies, HD6 and HD37, respectively. IT-As were prepared by coupling intact antibodies, F(ab')2, or Fab' fragments to native or chemically deglycosylated ricin A chain. The IT-As were then evaluated for cytotoxicity to normal and neoplastic human B-cells in vitro with the major objective of appraising their suitability for in vivo therapy of human B-cell tumors. The IT-As prepared with both the HD6 and HD37 antibodies were specifically toxic to normal B-cells and to most of the neoplastic B-cell lines tested. However, the IT-As prepared from HD6 were generally more potent than those prepared from HD37. On Daudi cells, to which the two antibodies bound in similar numbers and with similar affinities, IT-As prepared with intact HD6 antibody or its Fab' fragment were 10-fold and 1.5- to 4-fold more potent, respectively, than the corresponding HD37 IT-As. The IT-As constructed from intact HD6 antibody and native or deglycosylated A chain reduced protein synthesis in Daudi cells by 50% at a concentration of 1.2 X 10(-11) M indicating that they were only 5-fold less toxic to the cells than ricin itself. Intact HD37 IT-As produced equivalent inhibition of protein synthesis at 1.5 X 10(-10) M. With both antibodies, IT-As constructed from the Fab' fragments were 10- to 20-fold less potent than their intact antibody counterparts. Different neoplastic B-cell lines varied in sensitivity to the IT-As. In most cases, their sensitivity correlated with the levels of CD19 and CD22 antigens expressed. Neither HD6 nor HD37 IT-As affected the ability of normal human bone marrow cells to form granulocyte-macrophage colony-forming units in soft agar, suggesting that both antigens are absent from these progenitor cells. Examination of sections of frozen human tissues using immunoperoxidase staining procedures indicated that the antibodies did not bind to a panel of normal tissues lacking B-lymphocytes. These results suggest that HD6 and HD37 IT-As are candidates for in vivo therapy in humans with certain B-cell tumors. However, HD6 IT-As are more potent, reduce protein synthesis more completely, and hence appear to be the ITs of choice for treating tumors expressing the CD22 antigen.

Antigens, CD↗

Use of glutaraldehyde-treated erythrocytes as indicator cells for the identification of the Clq component on the macrophage membrane by a rosette assay.

Glutaraldehyde-treated sheep red blood cells (EGA) form rosettes with macrophages of various origin. The binding of EGA to cell surface is mediated by the membrane associated Clq as demonstrated by the inhibition of EGA rosette formation either after treatment of macrophages with anti-Clq serum or after treatment of EGA with Clq. The results clearly demonstrate that the EGA-binding receptor of macrophage is the Clq component.

Aldehydes↗

Protein A vectorized toxins--II. Preparation and "in vitro" cytotoxic effect of protein A-ricin A chain conjugate on antibody coated human tumour cells.

Protein A of Staphylococcus aureus was covalently bound to reduced ricin A chain toxin by N-succinimidyl 3-(2-pyridyldithio)propionate. The conjugate consisting mainly of one molecule of protein A bound to two molecules of A chains (Mr 107,000) was purified by tandem affinity chromatography on ConA-Sepharose 4B and IgG-Sepharose 4B. The purified protein A-A chain conjugate was able to bind and kill human lymphoma cells coated either with monoclonal mouse IgG2a anti-kappa antibody or with polyclonal rabbit anti-kappa antibody. The cytotoxic activity of protein A-A chain conjugate in conjunction with either mouse or rabbit anti-kappa antibodies was 10 times higher than that of rabbit IgG anti-mouse IgG coupled with A chain on Daudi cells coated with mouse anti-kappa antibody and 100 times higher than that of rabbit anti-kappa antibody coupled with A chain on non-coated Daudi cells. The cytotoxic effect of protein A-A chain conjugate on antibody-coated Daudi cells (9 x 10(-12) M) was comparable with that of ricin toxin on non-coated Daudi cells (2 x 10(-12) M). The results recommend the use of protein A-ricin A chain toxin conjugate as a unique specific toxin for the "in vitro" killing of antibody-coated target cells.

Burkitt Lymphoma↗

Possible errors in the calculation of cell-binding parameters exemplified by the analysis of the IgG-Fc receptor system.

The binding parameters of monomeric and polymeric (immune complex with a molecular weight of 500,000 daltons) rabbit IgG to homologous Fc receptor-bearing alveolar macrophages were estimated, using corrected values for IgG and cell concentrations. Considering the maximum percentage of monomeric IgG binding to cells (2.7%) and the maximum percentage of cells binding monomeric IgG (32%) instead of the IgG and cell concentrations in the initial reaction mixture, a 36-fold increase of the equilibrium constant (K) (from 0.6 x 10(6) L/M to 21.3 x 10(6) L/M) and a 3-fold increase of the maximum number of IgG molecules able to bind to a single cell (n) (from 7.8 x 10(5) to 23.7 x 10(5] were registered. Since more than 60% of the polymeric IgG is bound to 46% of the macrophage population, the values of K (from 10.8 x 10(6) L/M to 15.6 x 10(6) L/M) and n (from 4.3 x 10(5) to 9.4 x 10(5] are only doubled by using the corrected values for IgG and cell concentrations. It results that the cytophilic fraction of the monomeric IgG, representing only 2.7% of total IgG, has a slightly higher affinity for the Fc receptors than the polymeric IgG. By considering the actual number of macrophages which bind IgG it is evident that the number of Fc receptors per cell is higher than that determined by the usual procedure which does not take into account cellular heterogeneity.

Animals↗

Binding and cytotoxic effect of ricin toxin on multivalent hybrid antibody-coated target cells.

Multivalent hybrid antibodies with dual specificity were prepared by cross-linking with protein A two antibodies of different specificity, one against ricin toxin and the other against the H-2 antigens of murine leukemia EL4 cells. This bifunctional antibody specifically attached to EL4 cells was able to capture ricin toxin (RcA2) molecules with an affinity 20 times higher than that of the galactose-containing glycoproteins of the cell surface (nonspecific binding). The hybrid-bound RcA2 gained access into the target cell cytoplasm by endocytosis and blocked [3H]thymidine incorporation as efficiently as free RcA2 does on nontreated EL4 cells (3.3 X 10(-11) M). These results indicate that multivalent hybrid antibody, easy to prepare in purified form and endowed with high affinity for both target cell and ricin toxin, may be utilized efficiently for the specific delivery of toxins to target cells.

Animals↗