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S Mihm

Publications and source records attributed to S Mihm.

40 records · Page 3Linked to original sources

Regulation of T-cell functions by L-lactate.

Lactate is a product of glycolytically active macrophages. After stimulation with concanavalin A accessory cell-depleted splenic T-cell populations were found to produce only minute amounts of T-cell growth factor (TCGF); but substantial amounts of TCGF were produced if the cultures were supplemented either with splenic adherent cells or with lactate but not with interleukin-1 (IL-1). IL-1 was capable, however, of supporting TCGF production by the thymoma subline EL4-6.1. TCGF production in cultures of accessory cell-depleted splenic T-cell populations was demonstrable with 10(-3) M L-lactate, and optimal responses (plateau level) were obtained with 4-6 X 10(-2) M L-lactate. Cultures of macrophages were found to accumulate up to 5 X 10(-2) M lactate. Our experiments indicate, therefore, that lactate serves as a regulatory signal by which macrophage-like accessory cells enhance helper-T-cell functions. Lactate is apparently not the only mediator of accessory cell function since plateau levels of TCGF production were markedly lower with lactate than with splenic accessory cells; but L-lactate was found also to determine the magnitude of T-cell-mediated immune responses in vivo and in cultures of unfractionated lymphocyte populations. The production of interferon in accessory cell-depleted and concanavalin A-treated T-cell cultures, however, was not significantly affected by lactate. Concanavalin A-stimulated splenic T-cell populations were found to consume glucose rapidly and to release lactate into the supernatant. This indicates that the cells contain more lactate and pyruvate than they can utilize by their respiratory metabolism. The administration of external lactate or pyruvate was found to inhibit the utilization of glucose by the mitogenically stimulated T cells.

Animals↗

Release of L-alanine by tumor cells.

Culture supernatants from the weakly immunogenic T cell lymphoma L5178Y ESb were found to contain substantial amounts of alanine and lactate at a ratio of about 1:10. Supernatants from cells of the highly immunogenic mutant line ESb-D also contained lactate but only minute amounts of alanine. Moreover, ESb cells converted 14C-labeled glucose or pyruvate into labeled alanine and lactate at a ratio of about 1:10, whereas ESb-D cells yielded only labeled lactate and no detectable alanine. The injection of L-alanine in combination with L-lactate into mice strongly suppressed the capacity of their spleen cells to generate cytotoxic responses. The injection of L-alanine also suppressed the immunogenicity of ESb-D cells, as demonstrated by the generation of cytotoxic activity in vivo and by the in vivo immunization (priming) for secondary cytotoxic responses against ESb-D cells in vitro. Taken together, these experiments suggest the possibility i) that the ESb cells prevent the induction of cytotoxic responses by releasing immunosuppressive alanine, and ii) that the immunogenic mutant ESb-D may have gained immunogenicity by losing this immunosuppressive property.

Alanine↗

Suppression of cytotoxic T-lymphocyte activation by pyruvate and L-alanine.

The activation of cytotoxic T lymphocytes (CTL) in allogeneic mixed-lymphocyte cultures was found to be strongly inhibited if 1-3 X 10(-2) M L-alanine or the structurally and biochemically related substance pyruvate was present in the period from 7 to 19 or from 19 to 120 hr. The cytotoxic response was not inhibited when L-alanine or pyruvate was present during the first 7 hr of the culture period. L-Alanine produced also little or no suppression, if added on Day 3 of the culture. L-Lactate or D-alanine at similar concentrations was not suppressive during the entire culture period. The suppression by pyruvate and L-alanine was strongly reduced by 1 X 10(-4) M adenosine. Adenosine in combination with an interleukin-2 (IL-2)-containing EL-4-cell supernatant was even more effective. Pyruvate and alanine (1-3 X 10(-2) M) also inhibited the DNA synthesis in mixed-lymphocyte cultures on Day 5 by about 50%, but both substances had practically no effect on DNA synthesis in cultures that had been supplemented with an IL-2-containing EL-4 supernatant. They had also no effect on the IL-2-dependent proliferation of several T-cell clones or of concanavalin A-activated thymocytes. These relatively selective regulatory effects of pyruvate and L-alanine may be useful for the analysis of the biochemical pathways during lymphocyte activation and/or for a selective manipulation of the immune response.

Alanine↗

Regulation of cytotoxic T-lymphocyte activation by L-lactate and pyruvate.

The activation of cytotoxic T lymphocytes (CTL) in vivo was found to be strongly augmented by two injections of 0.2 ml 1 X 10(-1) M pyruvate in spite of the relatively high concentration of glucose (approximately 10(-2) M) in the blood. The repeated injection of 1 X 10(-1) M L-lactate, in contrast, was found to suppress cytotoxic responses in vivo. The activation of CTL and DNA synthesis in mixed lymphocyte cultures, on the other hand, was found to be suppressed by pyruvate (1 X 10(-2) M), and was substantially augmented by 1 X 10(-2) M L-lactate. The glucose concentration in the culture medium was also approximately 10(-2) M. Taken together, these results suggest that the utilization of glucose is relatively ineffective and that the respiratory metabolism is a more effective source of energy during the early T cell activation. The results suggest also that the aerobic glycolysis of macrophages and their release of L-lactate may contribute to their function as accessory cells in immune responses. The differences between the in vivo and in vitro results are discussed.

Animals↗