Some combinations of anti-CD2 MAb induce apoptosis of activated CD8+/CD57+ T cells.
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Publications and source records attributed to A Senik.
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Peripheral blood CD8+/CD57+ T cells display poor proliferative responses when stimulated with CD3 or CD2 in vitro, but can be induced to proliferate in the presence of exogenous IL-2. Although GT2+T11(1), a mitogenic anti-CD2 mAb pair, could synergize with IL-2 to induce sustained cell divisions in this population (as did immobilized OKT3), D66+T11(1), another anti-CD2 mAb pair, could only induce a small abortive proliferative response. All these antibodies were in contrast strongly mitogenic for CD8+/CD57- T cells. Assuming that D66+T11(1) were exerting inhibitory effects on CD8+/CD57+ T cells, we indeed found that such antibodies profoundly suppressed the anti-CD3 and IL-2-induced proliferation of those cells, but not that of CD8+/CD57- cells. CD2-mediated growth arrest was correlated with rapid cell death occurring within 2 h, once the cells had been submitted to D66+T11(1), and cells susceptible to the death signal were large cells committed in the cell cycle. D66+T11(1)-treated cells had the well-known ultrastructural form of apoptosis, and the DNA extracted from these cells showed the typical ladder pattern of DNA fragmentation accompanying this process. For apoptosis to occur, two anti-CD2 mAb had to be applied to the cells, one of them being D66, suggesting that the corresponding anti-CD2 mAb pairs were imposing on the CD2 molecule a particular conformational change appropriate to transduce a death signal. Notably, CD8+/CD57- T cells were largely resistant to apoptosis in the conditions just described. When exposed to anti-CD3 and IL-2 in primary and secondary cultures, CD8+/CD57+ T cells retained high viability, whereas in contrast, when exposed to D66+T11(1), important cell loss occurred, concomitant with apoptosis, illustrating the specificity of the CD2-derived death signal. Our results suggest that the expansion of CD8+/CD57+ T cells is critically dependent on the CD2 pathway which, according to the conformational change of the CD2 molecule and the activation state of the cells, will direct them either towards proliferation or towards cell death.
Jurkat and HUT 78 T cell lines, as well as peripheral blood human T cells activated with PHA plus PMA were used to investigate the capacity of substance P (SP) neuropeptide to regulate IL-2 production. By using Northern blot analysis and dosage of the IL-2 release in cell supernatants, we show that SP can act as cosignal with PHA + PMA to enhance the expression of specific IL-2 mRNA and IL-2 secretion in T cells. By using the N-terminal SP(1-4) or the C-terminal SP(4-11) fragments of the entire molecule, we show that the cosignal activity is carried by the C-terminal portion of SP. The SP and SP(4-11) optimal effects were observed at 10(-12) M and 10(-10) M when a broad range of concentrations from 10(-6) M to 10(-13) M was tested. The increase of IL-2 mRNA obtained with 10(-12) M of SP in the activated Jurkat cells was reduced by adding 10(-10) or 10(-9) M of the SP antagonist (D-Pro2,-D-Phe7,-D-Trp9)SP to the culture, indicating the specificity of SP action. The up-regulation observed when 10(-12) M of SP was applied together with the mitogens on Jurkat cells, persisted after a 16-h culture period, time at which the IL-2 mRNA signal is normally back to a minimum level when the mitogens are used alone. Furthermore, an induction of IL-2 mRNA accumulation, in a 2-h pulse, was obtained with 10(-12) M of SP on Jurkat cells previously activated with mitogens for 16 h.
The choice of stimulator cells is crucial in determining the frequency of alloreactive cells by limiting dilution analysis (LDA). In humans, E- cells or EBV-lymphoblastoid cell lines (LCL) are available for this purpose. The E- cells have been mostly used until now, but they appear to stimulate much less than LCL in other models. Consequently, we undertook a systematic comparison of the efficiency of both types of cell for the LDA of alloreactive IL-2-secreting cells (IL-2-SC) and cytotoxic precursors (CTLp). We show that LCL are stronger stimulator cells both for IL-2 secretion and for cytotoxicity induction. However, high levels of non-allogeneic reactivity were also induced. Therefore, to measure the frequency of specific alloreactive IL-2-SC and CTLp, T cells were depleted of such irrelevant reactive cells by a suicide technique: culture with autologous LCL in the presence of BUDR and use of the remaining live cells as responding effectors in LDA. Using this methodology, no non-allogeneic reactive T cells remain in the responding cells: after restimulation by autologous LCL, no IL-2-SC could be seen and no cytotoxic activity could be observed against autologous, irrelevant or LAK sensitive targets. In contrast, the number of IL-2-SC and CTLp against allogeneic targets was preserved. Therefore with this methodology, the strong stimulator capacity of LCL could be used whereas non-specific activation could be avoided in order to assess the frequency of allo-specific IL-2-SC and CTLp.
CD8+/Leu-7+ T cells which circulate in increased proportions in the blood of long-term surviving BMT patients are for the most part high-density resting lymphocytes lacking IL2R-alpha (p55) expression. We show that they can be induced by IL2 to manifest cytolytic function after 24-48 hr stimulation by using rather high concentrations of IL2 (at least 50 U/ml). This function was much more readily induced in high-density CD8+/Leu-7+ T cells than in high-density CD8+/Leu-7+ T cells and occurred in the presence of minimal cell proliferation. Other cytokines involved in primary CTL differentiation (IFN-gamma, IL4 and IL6) were without effect suggesting that CD8+/Leu-7+ T cells are, in the BMT model, in vivo preactivated CTL ready to differentiate into cytolytic effectors under the sole IL2 stimulus. TU27 Mab directed at IL2R-beta (p75) subunit almost completely prevented IL2-induced cytolytic function of CD8+ T cells while 33B3.1 Mab directed at IL2R-alpha (p55) subunit was ineffective, suggesting that the signal for this function has its origin in IL2R-beta chains constitutively expressed by these cells.
The low reactivity to donor alloantigens reported in PBL from kidney transplant recipients might be related to clonal deletion and/or suppression of donor-specific alloreactive cells. To discriminate between these two hypotheses, we quantified the number of IL-2 secreting cells (IL-2-SC) and of cytotoxic precursors (CTLp) in the T cells from tolerant recipients when stimulated with either donor specific or nonrelated third-party LCL. To eliminate the irrelevant reactivity, we used as responding cells high-density T cells that had been depleted of such reactivity by 4 days preculture with autologous lymphoblastoid cell line in the presence of bromodeoxyuridine. Thus, frequencies of IL-2-SC and CTLp specifically directed at alloantigens could be measured. In 11 recipients, there was no strong decrease in the frequency of donor-reactive T cells when compared to the frequency of those directed at a third-party lymphoblastoid cell line, either for IL-2-SC (tested in 11 patients) or for CTLp (tested in 6 patients). In three cases of seven, a suppression was observed only when T cells were stimulated by donor cells. These data suggest that donor-reactive cells are still present in PBL of kidney-transplant recipients tested from 6 mo to 4 y posttransplantation. Moreover, suppression of donor-specific cells can be demonstrated in peripheral T cells of some recipients, which may account in part for the absence of rejection.
We have examined the role of isolated interleukin 2 receptor (IL2R) beta chains expressed by human resting T cells in the early period of primary T cell activation induced by soluble OKT3 monoclonal antibody (mAb) and exogenous IL2. In the initial 3-day-stimulation phase, high IL2 concentrations were required, in association with soluble OKT3 mAb, to induce the formation of IL2R alpha/beta heterodimers, while later, low IL2 concentrations were sufficient to promote cell growth. When added during the initial phase, TU27 mAb directed at the IL2 binding site of IL2R beta chain substantially inhibited the appearance of functional high-affinity IL2R. Lo-Tact-1 mAb directed at the IL2 binding site of the IL2R alpha chain had only a marginal effect. Strong induction of IL2R alpha mRNA occurred within 3 days upon OKT3 and IL2 stimulation even in the presence of Lo-Tact-1 mAb, but not in the presence of TU27 mAb. OKT3 alone failed to induce significant IL2R alpha gene transcription and that induced by IL2 alone was very weak. The constitutive expression of IL2R beta mRNA was visualized in resting T cells. It remained at a rather stable level, at least during the initial stimulation period which was examined herein. Given the fact that OKT3 alone was ineffective in up-regulating IL2R beta mRNA expression and that pre-incubation of the cells with OKT3 alone did not allow them to respond to high concentrations of IL2, it is highly probable that isolated IL2R beta chains constitutively expressed by CD8+ T cells (the main reactive cells in this system) are primarily responsible for the initial interaction of IL2 with these cells. Such an interaction will result in the formation of high-affinity IL2R and in the initiation of cell proliferation provided that a CD3-derived co-signal is simultaneously delivered to the cells.
The activity of lymphokine-activated killer cells, measured either by a clonal or polyclonal technique, was assessed in 30 kidney transplant recipients (TX), in 13 hemodialyzed patients (HD-CRI), and in 18 normal (N) controls. A highly significant decrease of the LAK activity in TX in comparison with HD-CRI or N (P = 0.0001) was observed. Moreover, the percentage of CD3-/NKH1+ cells was decreased in TX in comparison with N (P = 0.01). LAK activity was strongly correlated (r = 0.72; P = 0.0001) with the percentage of CD3-/NKH1+ cells and not with that of double-positive CD3+/NKH1+ cells. Multivariate analysis showed that the sole independent variable that determined the LAK activity was the percentage of CD3-/NKH1+ cells: the pathological status (TX, HD-CRI, and N) variable was statistically not significant. On the other hand, two T cell-specific functions (IL-2 secretion and specific cytotoxic activity) were, on the whole, preserved in TX. Altogether, these results suggest that TX are LAK deficient predominantly because they have a decreased number of CD3-/NKH1+ cells. The normality of T cell functions suggests that the high rate of malignancies seen in TX is related to this LAK deficiency. Moreover, our study indicates that, in vivo, CD3+ cells do not significantly contribute to the LAK precursors.
We analyzed the functional status of the small CD8+/Leu-7+ T-lymphocytes that circulate in increased proportions in the blood of many allogeneic bone marrow transplant (BMT) patients. Purified CD8+/Leu-7+ T cells were tested for their effect on T-cell proliferative responses. In contrast to CD8+/Leu-7-T-lymphocytes, such cells behaved as suppressor cells for lectin-induced mitogenic responses of the donor's peripheral blood lymphocytes. However, they did not interfere with the in vitro responsiveness to specific stimuli such as protein purified derivative (PPD) or alloantigens. We demonstrate that CD8+/Leu-7+ T cells are resting pre-cytotoxic T-lymphocytes (CTL) that can be induced by mitogenic lectins to express their cytolytic program in a non-specific, non-major histocompatibility complex-restricted manner against phytohemagglutinin-treated lymphoblasts or K562 target cells. The lectin-triggered cytotoxicity was achieved within a few days, together with limited cell division. Our results suggest that circulating CD8+/Leu-7+ T cells from BMT recipients are in vivo primed CTL awaiting cellular activation.
IL-2-binding sites expressed on purified circulating NK cells and high density T lymphocytes were enumerated in 125I-IL-2 binding assays and analyzed by autoradiography after chemical cross-linking of IL-2 to the cells. Quite similar profiles of IL-2R were exhibited by both types of cells consisting of the simultaneous expression of approximately 150 high affinity Tac+ receptors/cell (Kd congruent to 19 pM) and of approximately 540 intermediate affinity Tac- receptors/cell (Kd congruent to 800 pM) which appeared, in cross-linking experiments, to be the isolated 70-kDA protein (p70) subunit of the 55-kDa protein (p55)/p70 heterodimer. The high affinity receptors were distributed on less than 3% of the cells and could be eliminated by complement lysis with anti-p55 mAb. In these conditions, Scatchard analysis no longer revealed two classes of binding sites but only one class of binding sites with intermediate affinity. Although expressed in equal numbers on the surface of NK cells and resting T lymphocytes, the constitutive p70 chains seemed to transmit differently the proliferation signal after effective ligand interaction. Thus, NK cells proliferated strongly in the presence of only 260 pM IL-2, (40 U/ml), whereas resting T cells remained unresponsive to IL-2 concentrations able to saturate the existing p70 receptors (6.5 nM IL-2, 1000 U/ml IL-2) unless monocytes were present. The initiation of cell division seemed to involve the synthesis of p55 chains and the constitution of high affinity receptors as introducing anti-Tac antibody at the start of the cultures inhibited IL-2-induced proliferation. Tac mRNA transcripts accumulated rapidly in NK cells during a 18-h observation period whether anti-Tac antibody was present or not during IL-2 stimulation. In contrast a weak Tac mRNA induction was observed in resting T cells in the same conditions.
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Cells participating in the rIL 2-induced proliferation of resting PBMC were identified by using different methods of cell purification. NK cells recovered in the light density fraction of Percoll gradients responded, as already known, directly to rIL 2 by strong proliferation. In contrast, large T lymphocytes co-purifying with NK cells, and small T cells sedimenting in the high density area of the Percoll gradients, were virtually unresponsive when cultivated in the sole presence of rIL 2. However, the addition of either irradiated autologous monocytes or highly purified IL 1 allowed both kinds of T cells to undergo cell division. Stringent elimination of possibly contaminating NK cells (NKH-1+) and/or activated T cells (TNKTAR, Tac+, HLA-DR+) from the high density T cells by complement lysis did not impair rIL 2-induced cell proliferation, indicating entire responsiveness of these cells to the synergistic action of IL 1 plus IL 2. Both high density CD4+ and CD8+ participated in this phenomenon, with an apparent advantage for CD4+ cells. All Tac+ cells emerging in a 6-day culture of these cells expressed the WT31 antigen, which indicates that T cells involved in rIL 2-induced proliferation are conventional mature T cells. The relative precursor frequencies of NK cells, large T lymphocytes, and small T lymphocytes that proliferated in response to rIL 2 were analyzed by limiting dilution analysis. The frequencies of clonal growth of NK cells and low density T lymphocytes were approximately the same (1/103 vs 1/185), whereas that of high density T cells was four times lower (1/458). Thus, we clearly demonstrate that resting T cells, defined as such by morphological, density, and phenotypic criteria, are able to proliferate in response to IL 2 in the presence of IL 1 without antigenic or mitogenic triggering.
Fifteen patients and their respective bone marrow donors were entered in this study 1 to 5 yr after allogeneic bone marrow transplantation. Peripheral blood E rosetting (T) cells were analyzed for their phenotypic characteristics as well as for their ability to regulate Ig synthesis in the in vitro PWM system. A close relationship was found between a high proportion of T8+/HNK-1+ cells and/or T8+/HLA-DR+ cells and a strong (greater than or equal to 50%) inhibition of the antibody response. It was noteworthy that even the patients without suppressor activity had high proportions of such cells when compared with normal marrow donors. Moreover, the suppression occurred irrespective of the presence or absence of chronic GVHD. Through negative selection experiments (with MAb and complement) and through immunofluorescence cell sorting, it was shown that the suppressor cells expressed the T8+, HNK-1+, HLA-DR- phenotype. They did not carry the Leu-11, NKH1A, or NKH2 determinants, which are expressed on mature functional NK cells. When examined by electron microscopy, they exhibited a morphology of resting agranular lymphocytes. The significant increase of these suppressor cells among the BMT patients was not correlated with clinical syndromes such as chronic GVHD or opportunistic viral infections, which argues against the notion of in vivo profound immunodeficiency coexisting with these cells.
In our previous paper, we demonstrated that anti-D44 MAb can, in the presence of complement, eliminate all the allocytotoxicity generated during a mixed lymphocyte reaction without affecting the alloproliferative response. As approximately 70% of CD4+ cells and 30% of CD8+ will be stained with anti-D44 MAb, we researched the functional role of the D44+ and D44- cells in each of these T cell subsets in the PWM-induced antibody response. We found that most of the helper activity for immunoglobulin (Ig) synthesis was mediated by CD4+ D44+ lymphocytes and that virtually all the suppressive activity was mediated by CD8+ D44- lymphocytes. Surprisingly enough, we noticed that the low level of Ig synthesis induced in B cells by CD4+ D44- lymphocytes could be strongly amplified by the addition of radiosensitive CD8+ lymphocytes, suggesting coexisting opposite immunoregulatory functions within the CD8+ T cell subset. These results, together with previous data, indicate that anti-D44 MAb subdivides T cells into subpopulations with distinct functional repertoires: a CD4+ D44+ helper subpopulation, a CD8+ D44+ cytotoxic subpopulation, and a CD8+ D44- suppressor subpopulation.
Fc gamma receptor-bearing U937 cells, when incubated in serum-free buffer, were found to release spontaneously a suppressor material for pokeweed mitogen-drigen IgG synthesis which could be retained on Sepharose 4B-IgG immunosorbents. Immunosorbents coupled with IgM or F (ab')2 fragments of IgG were unable to retain the inhibitory activity of U937-derived material, suggesting a binding specificity for the Fc gamma fragment of IgG. This suppressor material corresponds therefore by definition to an IgG-binding factor (IgG-BF). The mechanism for in vitro suppression of the antibody response by U937-derived IgG-BF was investigated. It did not interfere with cell proliferation and displayed maximum effect when added at day 3 of the culture period. Tested for its effect on IgG, IgM and IgA synthesis, IgG-BF suppressed antibody production following a pattern specific for IgG. Finally gel filtration of the suppressor material gave rise to two peaks of inhibitory activity with an apparent molecular mass comprised between 30 to 40 kDa and 60 to 73 kDa, respectively.
The membrane phenotype of human T cell colony progenitors and that of their clonal progeny was studied for expression of the T4 and T8 determinants. Using clonal culture conditions, the colonies were grown in semi-solid agar medium from peripheral blood cells. Clonality was assessed using the glucose-6-phosphate-dehydrogenase isoenzyme marker. Combination of this marker with the culture of sorted cell fractions allowed us to ascribe the colony progenitors to a subset of OKT4+ lymphocytes. The progeny consisted of the mixture of single OKT4+, single OKT8+ and double OKT4+8+ cells, as determined by double staining. Double staining was performed on mass-harvested colony cells and on individual colonies expanded in liquid culture with fresh interleukin 2. Expression of the OKT8 positivity on colony cells deriving from OKT4+ progenitors required an interaction with radioresistant OKT8+ cells that were co-cultured with these progenitors. Furthermore, the functional capacities of the cell progeny were assayed on the pokeweed mitogen-driven immunoglobulin production by B cells. It was found that OKT4+ colony cells were helper whereas OKT8+ colony cells were suppressor cells. It is concluded that a subset of OKT4+ peripheral blood T lymphocytes can generate colonies containing both helper OKT4+ cells and suppressor OKT8+ cells.
Human peripheral blood lymphocytes (PBL), from anti-Epstein-Barr virus (EBV)-seropositive donors, were stimulated by EBV and were shown to be cytotoxic toward autologous, HLA-compatible, and fully allogeneic EBV-transformed target cells. The lysis was not due to natural killer (NK) cells since the target cells used were resistant to lysis by fresh PBL and by virus-stimulated PBL-depleted of AET-SRBC-rosetting T cells (the latter being still fully cytotoxic on K562 NK-susceptible target cells). Conversely only E-rosette-purified (T) lymphocytes killed EBV-transformed HLA-compatible and allogeneic target cells. Moreover, anti-MHC antibodies inhibited the cytotoxicity exerted by EBV-induced cytotoxic T lymphocytes (CTL) on both autologous and allogeneic target cells. Finally the lysis was EBV specific since PHA blasts were not killed and since only EBV-transformed cells could compete for lysis with the EBV-positive target cells. Efficient competition was achieved by EBV-transformed cells autologous or allogeneic to the targets, even when effector and target cells were fully allogeneic. All together, the data suggest that human anti-EBV CTL may recognize nonpolymorphic HLA determinants on the target cells in association with the virus-induced antigens.
Gamma interferon (gamma IFN) was produced in human lymphocyte cultures stimulated by PHA. Titers were in the range of 10,000-30,000 U/ml. Crude gamma IFN was adsorbed on silicic acid, from which the antiviral activity was eluted by a buffer containing a high salt concentration and ethylene glycol. This treatment allowed quantitative recovery of gamma IFN with a specific activity of 5 X 10(5)-1 X 10(6) U/mg of proteins. IL2 and B-cell helper activities were adsorbed and eluted from silicic acid together with the antiviral activity. This finding might be of practical interest for the purification of these lymphokines, particularly IL2. Gamma interferon was further purified on Blue Sepharose to a specific activity of 2 X 10(7) U/mg. The resulting preparations still contained IL2 and B cell helper activities. However, taking advantage of the differences in apparent hydrophobicity and in isoelectric point, we were able to dissociate antiviral activity from lymphokines. Such dissociation should facilitate the study of the biological properties of human natural gamma IFN.