Guinea pig line 10 hepatocarcinoma model for monoclonal antibody serotherapy: in vivo localization of a monoclonal antibody in normal and malignant tissues.
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Publications and source records attributed to K A Foon.
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Monoclonal antibodies were raised against the guinea pig line 10 (L10) hepatocarcinoma, and an IgG1-producing hybridoma (D3) was selected for further study. D3 is a true monoclonal antibody as demonstrated by two-dimensional gel electrophoresis. Radioimmunoassays on live cells revealed no cross-reactivity with normal tissues or with the line 1 hepatocarcinoma which was used as a control. Membrane immunofluorescence assays demonstrated similar specificity. Immunoperoxidase staining of cryostat sections of tumor and normal tissues of both adult animals and fetuses showed that the D3 monoclonal antibody reacted primarily with the L10 tumor, but some cross-reactivity with smooth muscle, placenta, fetal skeletal muscle, and fetal liver was also demonstrated. Radioimmunoprecipitation of detergent extracts of iodinated L10 cells showed that the antigen is present on the cell surface as a dimer of Mr 290,000 (unit size, Mr 148,000). Therapy studies with unconjugated D3 antibody demonstrated a minor dose-dependent effect on tumor growth. D3 antibody conjugated to the A chain of diphtheria toxin (10(-7) M) was cytotoxic to 100% of L10 cells in vitro. Animals treated with a single 1-mg i.v. injection of this immunoconjugate on Day 7 following the intradermal injection of 10(5) tumor cells demonstrated a highly significant inhibition of tumor growth compared to control animals and those treated with unconjugated antibody.
Six human cell lines were compared with each other and with murine myeloma NS-1 as to their sensitivity to HAT medium and their ability to form hybrids with human lymphocytes, secret monoclonal immunoglobulin, clone, and maintain detectable levels of monoclonal immunoglobulin secretion for a period of time after fusion. Fusion efficiencies varied from 0 to 50%, and the incidence of immunoglobulin secretion ranged between 1 and 78% of the hybrids. Immunoglobulin secretion of cloned hybrids varied from 0.8 to 1.6 micrograms/ml/10(6) cells among the human-human hybrids and was 2.4 micrograms/ml/10(6) cells by the human-mouse hybrid. Among the lines tested, UC729-6 and HF2 appeared optimal for pursuing further studies with human-human hybridomas. In addition, although only a small percentage of hybrids were produced with HMy2, a very high percentage secreted immunoglobulin, so that this line also warrants further investigation to improve the efficiency of hybrid formation. Implications for specific monoclonal antibody production and for therapy of leukemias and lymphomas by anti-idiotype antibodies are discussed.
The use of immunotherapy for acute myelogenous leukemia (AML) is controversial. Twenty-four trials have been reported in which 1,491 patients with AML received various forms of immunotherapy, including BCG, methanol extract residue (MER) of BCG, or Corynebacterium parvum. Some patients were immunized with allogeneic or autologous leukemia blast cells. In only four of the 24 trials was a significant prolongation of remission reported. Pooled data from all 24 studies were analyzed further. No statistically significant difference in duration of remission between patients who received maintenance chemotherapy alone and those who received maintenance chemotherapy plus immunotherapy was found. A significant survival advantage for those patients who received BCG and chemotherapy for maintenance therapy was detected. A beneficial biologic effect for the patients treated with BCG is suggested but this was not a disease-free survival advantage, and had no impact on cure of patients with AML. Immunotherapy, as currently conceived, seems to have no substantial benefit for patients with AML receiving optimal chemotherapy.
A murine monoclonal antibody (D3) with demonstrated specificity for the guinea pig line 10 hepatocarcinoma (L10) was radiolabeled with either 125I or 111In and used to image dermal tumors in vivo. In one set of experiments, L10 tumors were established middorsally in one group of animals, and the similarly derived, antigenically distinct line 1 tumor was established in another group of animals. In spite of background imaging of liver, kidney, and spleen, L10 tumors were visualized clearly. Incorporation of radiolabel was demonstrated to predominate in the L10 tumor. In a separate set of experiments, L10 and line 1 tumors were established in contralateral thighs in the same animals. L10 tumors were visualized clearly, and tissue uptake of radiolabel was demonstrated to reside predominantly in the L10 tumor.
Eighty-one patients with a variety of refractory disseminated malignant neoplasms have been treated in the first multiple fixed-dose phase I trial of recombinant leukocyte A interferon (IFL-rA). Each patient received IFL-rA by intramuscular injection, three times weekly for 28 days. Dosages were escalated in different patients from 1 to 136 x 10(6) units per injection. The toxic reactions seen with IFL-rA resembled those of nonrecombinant leukocyte interferon and included fever, chills, fatigue, anorexia, myalgia, headache, occasional nausea and vomiting, and dose-dependent reversible leukopenia and hepatic transaminase elevations. The pharmacokinetics of IFL-rA were also comparable with nonrecombinant leukocyte interferon. Objective evidence of antitumor activity was seen in non-Hodgkin's lymphoma, chronic lymphocytic leukemia, Hodgkin's disease, breast cancer, and melanoma, indicating that IFL-rA, the first genetically engineered biological response modifier available for testing in cancer patients, is biologically active in vivo.
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In the past 10 years, there has been substantial progress in the treatment of patients with acute myelogenous leukemia. Intensive induction chemotherapy and consolidation chemotherapy have increased complete remission rates from 25 percent to more than 70 percent and have extended median survival from six months to more than two years. Attempts to prolong remission with maintenance chemotherapy, immunotherapy, and central nervous system prophylaxis have been less successful. Recent data suggest that the use of intensification chemotherapy or bone marrow transplantation in patients in remission may further reduce or eliminate residual leukemia. As a result of one or more of these advances an increasing proportion of patients, up to 25 percent in some series, are alive and free of disease three to five years following diagnosis. Most data indicate that some of these patients may be cured. In this article, we review the therapeutic interventions responsible for this substantial increase in survival in what was previously a uniformly fatal disease. Recent advances are discussed as are controversies in management and future directions.
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We describe a rapid, accurate, and reproducible cytotoxic antibody test for the immunological classification of leukaemia. Well characterized heteroantisera and monoclonal antibodies were distributed in a microcytotoxicity tray referred to as a leukaemia screening tray (LST). Leukaemia cells were tested for the presence of Ia-like, 'blast', thymocyte, common acute lymphoblastic leukaemia (cALL), and acute myeloblastic leukaemia (AML) antigens. Utilizing this technique, T ALL could be distinguished from non-T ALL, ALL and AML could be differentiated, the myeloid blast crisis of chronic myelogenous leukaemia (CML) could be distinguished from the lymphoid blast crisis, and the T lymphocyte and B lymphocyte lymphoid leukaemias were readily identified. It has been shown that subclassification of leukaemia according to surface markers, as described here, offers considerable improvement in the diagnosis and treatment of leukaemia over the classical morphological methodologies. Because the test can be completed in 2 hr and unlimited amounts of monoclonal antibodies are available, the LST or similar tests should become universally available in the future to supplement morphological data and replace other lengthy enzyme and rosetting tests.
Heterogeneity of leukemic cells was defined in a case of lymphoma. Four phenotypically distinct subpopulations of leukemic cells were identified. One subpopulation was observed to simultaneously express B- and T-cell characteristics. B-cell characteristics included monoclonal IgM (lambda) surface immunoglobulin, HLA-DR antigens, and expression of the B-cell antigen identified by the BA-1 monoclonal antibody. T-cell characteristics included E-rosette formation, expression of the pan-T-associated antigens recognized by the Leu-1 and OKT-11 monoclonal antibodies, and expression of the suppressor cytotoxic T-cell-associated antigen recognized by the Leu-2 and OKT-8 monoclonal antibodies. In addition to this subpopulation, three other phenotypically distinct subpopulations were identified, two of which expressed monoclonal IgM (lambda) surface immunoglobulin. The results of this investigation indicates that three phenotypically distinct lymphoid subpopulations bearing B-cell characteristics, and probably a fourth T-cell subgroup, were derived from a common lineage. These findings suggest that the malignancy involved a lymphoid progenitor cell that may possess diverse maturational capacity.
A panel of monoclonal antibodies reactive with normal lymphocyte subsets was used to classify cases of lymphocytic leukemia on the basis of cell surface antigen expression. The antibodies employed were commercially available and included a common framework HLA-DR antibody, two pan-T antibodies (Leu-1 and OKT-3), and antibodies defining cytotoxic/suppressor (Leu-2 and OKT-8) and helper/inducer (Leu-3 and OKT-4) subpopulations of normal T lymphocytes. Cases of ALL could be subgrouped into non-T non-B, pre-T and T-ALL on the basis of reactivity with HLA-DR, Leu-1, and OKT-3 antibodies. Leukemic cells from patients with T-cell CLL could be divided into Leu-2/OKT-8 reactive and Leu-3/OKT-4 reactive subpopulations, as well as a subgroup in which the majority of cells were unreactive with either of these antibodies. With the exception of one individual, all Sézary cell leukemias expressed a phenotypic pattern similar to that of the Leu-3 subgroup of T-CLL. Malignancies of B-cell lineage (B-CLL, prolymphocytic leukemia, and lymphosarcoma) that were examined were reactive with both the HLA-DR and Leu-1 antibodies. On the contrary, normal B lymphocytes and lymphoid cell lines of B-cell origin did not express surface antigens recognized by the Leu-1 antibody.
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Immunologic approaches to the classification of acute lymphocytic leukemia (ALL) have led to a new awareness of the heterogeneity of this disease. Surface membrane markers including surface membrane immunoglobulin, complement receptors, and sheep erythrocyte (E) receptors have demonstrated at least three subtypes of ALL, which include non-B, non-T, ALL, T-ALL, and B-ALL. In addition, hetero-antisera to Ia-like antigens and ALL-associated antigens have been used to positively identify non-B, non-T ALL, which was previously a diagnosis of exclusion. This paper reports 17 cases of childhood ALL whose lymphoblasts were studied for surface membrane immunoglobulin, sheep erythrocyte receptors, and the presence of four antigens detected by well-characterized heteroantisera. Every non-B, non-T lymphoblast was positively identified by the Ia-like antiserum and/or the ALL antiserum. One T lymphoblast was identified by E receptors and the T antiserum, whereas two did not have E receptors but did react to the T antiserum. None of these three T lymphoblasts reacted with the Ia-like antiserum.
We describe an antigen(s) characterized by a heteroantiserum raised in rabbits against mature human granulocytes. This antigen was found on neutrophils, monocytes, platelets, acute and chronic myelocytic leukemia cells and on granulocyte-macrophage progenitor cells grown in agar. It was not found on lymphocytes, eosinophils, erythrocytes, or erythroid progenitor cells. On the basis of tissue distribution and absorption studies, the antigen (tentatively designated the "myelo-monocytic" antigen) is distinct from antigens previously identified on human neutrophils. Restriction of the "myelo-monocytic" antigen to normal and malignant cells of the myelo-monocytic series suggests that it may represent a normal differentiation antigen of the myelo-monocytic lineage.