Selective suppression of blastogenesis induced by different mitogens: effect of noncyclic adenosine-containing compounds.
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Biomedical subjects
Publications and source records attributed to A Novogrodsky.
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Several phorbol esters, the potent tumour-promoting agents isolated from croton oil, induce proliferation of human lymphocytes and enhance the mitogenic effect of lectins on bovine lymphocytes. While studying the mitogenic properties of one of these agents, phorbol myristate acetate (PMA), we found that dimethyl sulphoxide (DMSO), frequently used as a solvent for PMA, markedly inhibits PMA-induced mitogenesis at DMSO concentrations that have little effect on phytohaemagglutinin (PHA)-induced responses. DMSO, as well as a variety of other organic compounds, induce erythroid differentiation in Friend leukaemia (FL) cells. Phorbol esters, on the other hand, are potent inhibitors of both spontaneous and induced cellular differentiation. We therefore investigated the relationship between the potency of compounds to induce erythroid differentiation in FL cells and their potency to inhibit lymphocyte proliferation induced by PMA and other mitogens. We report here that many of the compounds that induce erythroid differentiation in FL cells are similar to DMSO in selectively suppressing PMA-induced lymphocyte mitogenesis.
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Supernates of neuraminidase and galactose oxidase (NAGO)-treated lymphocytes induce blastogenesis in nonproliferating cells harvested 7--14 d after treatment with mitogen or alloantigen and in cells incubated with mitogen for 7--14 d but not in freshly isolated peripheral blood lymphocytes9 Virtually all the growth factor is produced by NAGO-treated cells during the first 24 h of incubation, and no increase in factor activity is detected upon further cell culture. Serum is not required for growth factor production. NAGO-primed medium induces generation of specific cytotoxic T cells from mixed lymphocyte culture (MLC) memory cells to approximately the same extent as that induced by allogeneic cells (stimulating cells in the primary MLC). NAGO-primed medium provides a useful reagent for isolation and characterization of lymphocyte growth factors and other lymphokines.
The mitogenic oxidizing agents, neuraminidase and galactose oxidase (NAGO), and sodium periodate (IO-4) were used to induce the differentiation of human alloimmune memory cells. NAGO or IO-4 treatment of peripheral blood mononuclear (PBM) cells obtained from 10 sensitized potential allograft recipients resulted in the induction and augmentation of cytolytic activity to a D locus-defined lymphoblastoid cell panel (B cell panel) and to a HLA-disparate peripheral blood lymphocyte cell panel (PBL cell panel). The acquisition of cytolytic activity was determined in a 4-hr 51Cr release assay. Treatment of in vitro-primed PBM cells (alloimmune memory cells generated in primary long-term mixed lymphocyte cultures) obtained from normal subjects with NAGO or IO-4 also resulted in the induction of specific secondary cytolytic activity. In contrast, NAGO or IO-4 treatment of unprimed PBM cells from normal subjects did not result in the induction of cytolytic activity despite the extensive proliferation induced by such treatment. The strikingly similar results observed with PBM cells from sensitized patients and with in vitro-primed PBM cells suggest that in vivo- and in vitro-generated alloimmune memory cells can be detected by chemical modification of the cell surface induced by NAGO or IO-4. Furthermore, our findings indicate that alloantigen-independent activation of memory cells can be accomplished by treating the memory cells with the mitogenic oxidizing agents.
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Addition of the polar organic compounds, dimethylsulfoxide, N,N-dimethylformamide, N,N-dimethylacetamide, and butyric acid, to human lymphocyte cultures stimulated with the tumor-promoting agent, phorbol myristate acetate, results in greater than 90% inhibition of lymphocyte proliferation. Inhibition is achieved at concentrations of the organic compounds reported to be optimal for induction of erythroid differentiation in Friend leukemia cells. Butyric acid is the most potent compound tested. Compounds that are structurally related to butyric acid, but that do not induce erythroid differentiation, do not inhibit lymphocyte mitogenesis. Lymphocyte responses to other mitogens are also suppressed by the polar organic compounds, although higher concentrations are required. These agents are much less inhibitory when added 24 hr after initiation of the cultures, indicating that they may affect an early phase of lymphocyte activation. Compounds that induce erythroid differentiation in Friend leukemia cells constitute a new class of inhibitors of lymphocyte mitogenesis.
An appreciable fraction of the sulphur present in the mammal occurs in the form of glutathione, whose concentration in various tissues ranges from about 0.8 to about 8 mM; the extracellular concentration of glutatione (largely present as the disulphide) is in the micromolecular range. The synthesis of glutathione and its utilization take place by the reactions of the gamma-glutamyl cycle, which include those catalysed by gamma-glutamylcysteine and glutathione synthetases, gamma-glutamyl transpeptidase, cysteinylglycinase, gamma-glutamyl cyclotransferease, and 5-oxoprolinase. gamma-Glutamyl transpeptidase catalyses transpeptidation (with amino acids and dipeptides) and hydrolysis reactions with both blutathione and its disulphide. The transpeptidase is membrane-boudn, apparently to the outer surface of the cell, and is found in certain epithelial cells in anatomical sites that are involved in transport and secretory activities (e.g., renal tubule, jejunal villi, choroid plexus, ciliary body). Evidence that the reactions of the gamma-glutamyl cycle take place in vivo has come from studies with labelled metabolites and selective enzyme inhibitors, and on inborn errors of metabolism associated with specific enzyme deficiencies. Inhibition in vivo of gamma-glutamyl cyclotransferase and 5-oxoprolinase leads, respectively, to decreased and increased renal levels of 5-oxoproline. Administration of a specific inhibitor of gamma-glutamylcysteine synthetase, such as buthionine sulphoximine, leads to a rapid decline in the glutamylcysteine synthetase, such as buthionine sulphoximine, leads to a rapid decline in the glutathione level of the kidney and other tissues, reflecting the appreciable rate of glutathione utilization. When gamma-glutamyl transpeptidase is inhibited in vivo by injection of L- or D-gamma-glutamyl-(o-carboxy)phenylhydrazide, there is extensive glutathionuria and the blood plasma level of glutathione increases. Studies in which inhibitors of glutathione synthesis and transpeptidation were given to mice showed that transport of intracellular glutathione to membrane-bound transpeptidase is a discrete step in the gamma-glutamyl cycle, and that the level of plasma glutatione reflects (a) synthesis of glutathione and its export by liver, muscle, and other tissues and (b) utilization of glutatione by kidney and other tissues. Studies on several lymphoid cell lines show that these cells also actively translocate glutathione out of the cell. A summary scheme is given for the metabolism of glutathione in which glutathione is translocated to the cell membrane where it may be utilized as such or oxidized to glutathione disulphide. Oxidation is inhibited, and transpeptidation is promoted by the presence of amino acids that are substrates of the transpeptidase. Glutathione exported from cells that have membrane-bound transpeptidase may be recovered by the cell transport of gamma-glutamyl amino acids and free amino acids...
Transport of L-glutamine and of the chloroketone glutamine analog L-2-amino-4-oxo-5-chloropentanoate into lymphoid cells is mediated by the same system. Arginine and a number of other amino acids (e.g., glutamate, aspartate, and lysine) are transported to a much lesser extent by this system. However, after uptake of the chloroketone into the cells, the transport of glutamine, arginine, and other amino acids is markedly inhibited, due evidently to reaction of the chloroketone with intracellular components that are involved in amino acid transport. The chloroketone acts more effectively on growing than on resting cells. Treatment of lymphoid cells with the chloroketone or with L-chloro-2,4-dinitrobenzene leads to rapid and complete depletion of intracellular glutathione without affecting cell viability. These reagents appear to be useful experimental tools for studies of glutathione function and metabolism.
Translocation of intracellular glutathione to the medium was studied in lymphoid cells (grown in tissue culture) that have very high, very low, or intermediate levels of membrane-bound gamma-glutamyl transpeptidase, in the absence and presence of various inhibitors of this enzyme. The data show that glutathione is translocated to the medium by all of the cell lines studied, but that glutathione does not accumulate in the medium unless the cellular transpeptidase activity is either very low or substantially inhibited. Translocation of glutathione does not seem to be directly related to the activity of gamma-glutamyl transpeptidase. The present and previous [Griffith, O.W. & Meister, A. (1979) Proc. Natl. Acad. Sci. USA 76, 268--272] findings suggest that translocation of intracellular glutathione is a general property of many mammalian cells. Glutathione exported from cells that have membrane-bound transpeptidase may be recovered by the cell in the form of transpeptidation or degradation products. Translocation of glutathione may also reflect operation of a rather general mechanism that protects and maintains the integrity of cell membranes.
Stringent alloantigen requirements, necessary for the differentiation of human memory cells into specific secondary cytolytic T cells (2 degrees CTL), can be bypassed by chemical modification of memory cells with the mitogenic oxidising agent, galactose oxidase. Treatment of memory cells generated in a long-term primary mixed lymphocyte culture with neuraminidase and galactose oxidase (NAGO) results in the differentiation of memory cells into 2 degrees CTL. In contrast, treatment of unprimed cells with NAGO does not result in CTL production despite the proliferation resulting from such treatment.
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Sera obtained before transplantation from 52 consecutive renal allograft recipients were tested for antibody-dependent cell-mediated cytotoxicity (ADCC) and for complement-dependent cytotoxic antibodies (CDC). A D locus antigen-defined lymphoblastoid cell panel (B lymphoblastoid cell panel) was used as targets for the ADCC, and a peripheral blood lymphocyte (PBL) panel from 40 donors was used as targets for the CDC. Of the 343 ADCC assays, 118 of 168 performed with pretransplant sera from 24 recipients with early graft loss were positive, whereas only 81 of 175 performed with pretransplant sera from 25 recipients with a successful graft outcome were positive (P less than 0.001). A significantly greater degree of presensitization to the B lymphoblastoid cell panel was found in the group that lost their grafts as compared to the group with successful grafts (69% versus 49%, P less than 0.001). Sera from all six recipients with hyperacute rejection were positive in the ADCC before and after absorption with pooled platelets. In contrast, pretransplant CDC results were not predictive of ultimate graft outcome. Utilizing any level of cytotoxicity against the PBL panel as an index of adverse presensitization, no significant correlation between pretransplant CDC results and graft outcome was observed. These results suggest a prognostic role for ADCC using a B lymphoblastoid cell panel as targets to screen and identify high-risk potential graft recipients.
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N4-Dinitrophenyl-L-2,4,-diaminobutyric acid hydrazide was coupled to aldehyde groups generated by periodate oxidation of sialyl residues on thymocytes. Anti-2,4-dinitrophenyl(Dnp)antibody was found to stimulate mature, hydrocortisone-resistant thymocytes, while it had no mitogenic effect on the immature thymocytes. In order to study the involvement of different regions of the antibody molecule in the triggering process of stimulation, the mitogenicity of various antibody fragments was also assessed. The divalent F(ab')2 was found to be a superior mitogen compared to the intact antibody when added to Dnp-conjugated thymocytes. The monovalent Fab' and Fab fragments have no mitogenic activity indicating that cross-linkage may be a prerequisite for stimulation.