Hepatic metastases: basic principles and implications for radiologists.
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Biomedical subjects
Publications and source records attributed to R Pelley.
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The ability to target malignant cells for cytotoxicity while sparing normal host tissues has proven to be limited. These limitations have resulted in unacceptable toxicity or insufficiently effective therapy. Continuing investigation of new, potentially useful cytotoxic agents must continue. An alternative approach, also worthy of study, is the selective protection of normal tissues. This approach, used in conjunction with available therapeutic agents, may open the therapeutic window and incrementally enhance the effectiveness of cytotoxic therapy. A variety of methods have been used to protect normal tissues selectively. Regional protection can be used for certain organ systems, such as the oral mucosa. Selective protection on a systemic level is more difficult but agents that seem to protect normal but not malignant tissues selectively are being developed. Among these is amifostine, which was originally selected by the U.S. defense department for study as a radioprotectant. Pre-clinical studies have suggested that amifostine is differentially concentrated in normal tissues but not in malignant tissues. Tissue-specific differences in the activity of alkaline phosphatase, which dephosphorylates amifostine to its active metabolite WR-1065, and in pH are thought to be involved in this relative specificity. Clinical studies indicate that amifostine can reduce the myelosuppression produced by cyclosphosphamide, the combination of cyclophosphamide and cisplatin, and, perhaps, carboplatin. The protective effects of amifostine on nonhematopoietic toxicities are being investigated. Future trials will investigate the integration of amifostine with cytokine-based supportive care in order to define the role of this potentially clinically useful cytoprotectant agent.
We describe an in vitro method which is useful for purging autologous bone marrow of neuroblastoma cells. The method utilizes a single murine monoclonal antibody 3G6 (an immunoglobulin MK) which we have previously developed against the ganglioside GD2; undiluted human complement; and unfractionated whole bone marrow at 1 X 10(7) nucleated cells/ml. Tumor cell clonogenic assays, Hoechst 33342 fluorescent nuclear stain, and trypan blue viability stain methods were used to assay cytotoxicity. This complement-mediated cytotoxicity technique killed 99.9-100% of neuroblastoma cell lines NMB-7, LAN-1, LAN-5, and IMR-6, while normal marrow precursor cells were not detectably damaged. The presence of normal bone marrow did not inhibit the human complement-mediated cytotoxicity. Applying the cytotoxicity method to whole unseparated bone marrow demonstrated killing of seeded neuroblastoma cells, with no gross hemolysis or cell clumping. The method did not require expensive special equipment, use of animal complement sera, or prior fractionation of the bone marrow. The average marrow nucleated cell recovery was 95%. These studies indicate that in vitro purging of autologous marrow infiltrated with neuroblastoma with monoclonal antibody 3G6 and human complement is both technically feasible and effective in eradicating residual tumor while preserving bone marrow stem cells.
Studies of the iodide ion quenching of the intrinsic fluorescence of Concanavalin A indicate that 50% of the tryptophyl fluorescence originates from exposed residues. This agrees with the X-ray crystallographic determination that two of the four tryptophan residues in a Concanavalin A monomer are on the surface. Previous studies have indicated that conformational changes induced by sugar binding alter the environment of aromatic residues. The present investigation finds that neither the specific binding of alpha-methyl-D-mannoside nor alteration of the Concanavalin A quaternary structure changes the number or accessibility of the solvent-exposed tryptophan residues. It therefore appears that the major conformational transitions in Concanavalin A do not affect steric access to the surface tryptophans and the effects previously observed may be ascribed to structurally internal tryptophan residues.
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