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T Jandlová

Publications and source records attributed to T Jandlová.

At least 19 recordsLinked to original sources

Local IFN-gamma therapy of HPV16-associated tumours.

We have examined whether peritumoral administration of IFN-gamma can inhibit growth of HPV16-associated, MHC class I- tumour MK16/1/IIIABC (MK16) transplanted in syngeneic mice. It has been found that peritumoral administration of recombinant IFN-gamma performed on days 0-11 after tumour challenge inhibited growth of MK16 s.c. tumour transplants. If the therapy with IFN-gamma was started when the tumours had already reached a palpable size, the IFN-gamma administration was without any effect. To investigate the antitumour effects of IFN-gamma in a clinically more relevant setting, surgical minimal residual tumour disease was utilized. Subcutaneously growing MK16 carcinomas, 8-12 mm in diameter, were removed and the operated mice were injected with IFN-gamma on days 3-14 after the operation at the site of surgery. Treatment with IFN-gamma resulted in a moderate, reproducible, but statistically insignificant inhibition of tumour recurrences. In the next experiments we have addressed the question whether the tumour-inhibitory effect of IFN-gamma was due to the upregulation of MHC class I molecule expression on MK16 tumour cells. IFN-gamma-treated and control mice were sacrificed, their tumours were explanted, and the expression of MHC class I molecules on the MK16 tumour cells was examined. As presumed, the MHC class I expression on the cells of IFN-gamma-treated tumours, as well as on their lung metastases, was upregulated. However, an unexpected moderate upregulation of the MHC class I expression was also observed on MK16 tumours from the control, exogenous IFN-gamma-uninjected mice. Cytofluorometric analysis of the in vivo transplanted MK16 tumours from both groups has excluded that the increased percentage of the MHC class I molecules on the tumour cell populations could be due to the infiltration of the tumours with MHC class I+ leukocytes, since no expression of MHC class II, CD11b, CD80/CD86, and CD11c molecules in the MK16 cell population was observed.

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Prophylactic, therapeutic and anti-metastatic effects of BMDC and DC lines in mice carrying HPV 16-associated tumours.

Oncogenic, moderately immunogenic MK16/1/IIIABC (MK16) cells were previously established by co-transfection of HPV 16 E6/E7 and activated H-ras oncogene DNA into C57BL/6 kidney cells. Subcutaneous transplantation of the MK16 cells produced progressively growing neoplasms which metastasized spontaneously to lungs. In this communication we report that prophylactic administration of bone marrow-derived dendritic cells (BMDC) as well as dendritic cell (DC) lines DC2.4 and JAWS II at the site of subsequent MK16 tumour transplants inhibited tumour growth and reduced the number of lung metastases. Similarly, in therapeutic experiments, administration of BMDC and DC lines at the site of the growing MK16 tumours or at the site of MK16 tumour residua after surgery inhibited tumour growth. Both BMDC-based vaccines and vaccines based on DC lines had also an antimetastatic effect. These results indicate that the DC line-based vaccines, which represent a standard, well-characterized and more homogeneous material, technically easier to prepare than the fresh BMDC-based vaccines, can be utilized for therapy of surgical minimal residual disease in HPV 16-associated neoplasms and are prospective for relevant clinical trials.

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Tumour-inhibitory effects of dendritic cells administered at the site of HPV 16-induced neoplasms.

Experiments were designed to examine whether administration of APC at the site of HPV 16-associated tumours can inhibit tumour growth and whether the efficacy of established dendritic cell lines is comparable to that of fresh BMDC populations. Mice were inoculated s.c. with APC, either bone marrow-derived dendritic cells differentiated in medium supplemented with GM-CSF and IL-4 (BMDC), or with established dendritic cell lines DC2.4 or JAWS II. The pretreated mice, together with untreated controls, were challenged with syngeneic HPV 16-transformed cells MK16 at the site of APC administration. It has been found that both BMDC and dendritic cell lines can inhibit tumour growth and that the efficacy of the established dendritic cell lines DC2.4 and JAWS II was comparable to that of fresh BMDC populations. In vitro induction of proliferative spleen cell responses by co-cultivation with MK16 antigen-pulsed BMDC or MK16 antigen-pulsed dendritic cell lines revealed that both types of APC populations can prime immune reactions directed against syngeneic HPV 16-associated neoplasms. Taken together, the results suggest that local increase in the number of dendritic cells at the site of HPV 16-associated tumours can inhibit progression of the tumours and that the dendritic cell lines which are efficient in this respect can be considered and should be tested in both, preclinical and human systems for delivery of therapeutic vaccines against HPV 16-associated neoplasms.

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Local cytokine treatment of HPV16-associated tumours results in inhibition of their lung metastases.

Experiments were designed to examine whether local cytokine therapy of subcutaneous (s.c.) tumours results in inhibition of their lung metastases. Moderately immunogenic, major histocompatibility complex (MHC) class I and II negative. B7 negative, metastasizing murine carcinoma MK16 transplantable in syngeneic mice was obtained by co-transfection of human papilloma virus type 16 (HPV 16) E6/E7 and activated H-ras oncogene plasmid DNA into C57BL/6 kidney cells. After s.c. transplantation of the malignantly converted MK16 cells, the majority of the transplanted mice developed lung metastases; the number and size of the lung metastases increased with the increasing size of the s.c. tumour. Therapy of 5-day MK16 tumours by peritumoral administration of recombinant interleukin-2 (IL-2) and recombinant interleukin-12 (IL-12) inhibited growth of the s.c. MK16 tumour transplants and reduced the number of MK16 lung metastases. To investigate the antimetastatic effect of IL-2 and IL- 12 in a clinically more relevant setting, surgical minimal residual tumour disease was utilized. Subcutaneously growing MK16 carcinomas, 8-12 mm in diameter, were removed on day 30 and the operated mice were injected with IL-2 or IL- 12 on days 35-39 and 42-46 at the site of the operation. Treatment with IL-2 significantly reduced the percentage of MK16 tumour recurrences as well as the number of lung metastases, whereas the effect of IL- 12 was substantially weaker and statistically insignificant.

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Irradiation of genetically modified plasmacytoma vaccines results in upregulation of CD80 molecule expression, IL-2 production and higher therapeutic efficacy of the vaccines.

It has been found previously that irradiated, IL-2 gene-modified plasmacytoma (X63-m-IL-2) vaccines are more efficient in the therapy of the parental (X63-Ag8.653) plasmacytoma than live plasmacytoma vaccines. In this communication, we have demonstrated that irradiation of murine IL-2-producing plasmacytoma vaccines resulted in upregulation of CD80 molecule expression and IL-2 production. The expression of MHC class I antigens was not altered. The upregulation of the CD80 membrane molecule expression in X63-m-IL-2 cells was higher after irradiation with 150 Gy than after irradiation with 50 Gy. Comparable upregulation of the CD80 molecule expression has also been demonstrated after irradiation of the parental murine X63-Ag8.653 plasmacytoma cells. The results indicate that upregulation of the CD80 molecule expression and enhanced IL-2 production in irradiated X63-m-IL-2 cells was responsible for the higher therapeutic effectiveness of the irradiated plasmacytoma vaccine.

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Peritumoral administration of antigen-unstimulated bone marrow-derived dendritic cells inhibits tumour growth.

Murine BM cells from B6 mice were grown in vitro in medium supplemented with GM-CSF and IL-4 to differentiate DC from DC precursors. After 10 days of culture, approximately 20% of the cell population exhibited the characteristic morphology of BMDC. In cytofluorometric analysis the morphological changes of cells were accompanied by upregulation of the expression of the MHC class II, CD11c, CD80, and CD86 molecules. The BMDC were pulsed with a lysate of syngeneic MK16 carcinoma cells and used for in vitro activation of SC. Co-cultivation of the carcinoma lysate-pulsed BMDC with SC induced a proliferative response of the syngeneic SC. Priming of the proliferative responses was more efficient when the BMDC were grown in the presence of GM-CSF and IL-4 for 10 days than for 7 days. The in vivo effect of mature, tumour lysate-unstimulated BMDC was examined in mice carrying syngeneic MK16 carcinoma transplants. It has been found that local pretreatment with BMDC inhibits growth of a subsequent challenge inoculum of the MK16 cells. Similarly, treatment of mice carrying small MK16 tumours and of those with MK16 surgical minimal residual disease performed with BMDC significantly inhibited tumour growth. It can be concluded from these results that local concentration of mature BMDC at the tumour site can control the development and growth of the transplanted tumour inoculum.

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Intratumoral IL-12 gene transfer improves the therapeutic efficacy of IL-12 but not IL-19.

We have compared the therapeutic activity of IL-12 and IL-18 in mice carrying IL-2 gene-transduced syngeneic sarcoma Mc12. The IL-2 gene-transduced sarcoma has previously been utilized as an irradiated, genetically modified tumour vaccine. Murine recombinant IL-12 was capable of suppressing growth of the IL-2 gene-modified sarcoma Mc12 in syngeneic mice more efficiently than growth of the parental Mc12 sarcoma. In contrast, murine recombinant IL-18 could neither inhibit growth of the parental Mc12 sarcoma, nor suppress growth of its IL-2 gene-modified transfectant. These results suggest that although both of these cytokines are functionally related and participate in the induction of IFN gamma production as well as in cell-mediated immune cytotoxicity, in the murine sarcoma system only IL-12 is therapeutically active and exerts its therapeutic effect in concert with the IL-2 gene. Thus, intratumoral IL-2 gene transfer improves the therapeutic efficacy of IL-12; administration of recombinant IL-12 should therefore be considered as adjuvant in IL-2 gene therapy with irradiated, genetically modified tumour vaccines.

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Interleukin 2 gene therapy of residual disease in mice carrying tumours induced by HPV 16.

Experiments were designed to examine the efficacy of IL-2 gene therapy in a surgical minimal residual tumour disease, using moderately immunogenic MK16/1/IIIABC murine cells transformed by activated ras and HPV 16 E6/E7 oncogenes (MK16 cells). Previously we demonstrated that surgical minimal residual tumour disease (SMRTD) could be effectively cured when murine Mc12 sarcoma had been resected and the operated mice were treated with irradiated Mc12 sarcoma cells engineered to secrete IL-2. In this study we performed IL-2 gene therapy of MK16 carcinoma with two types of irradiated MK16-unrelated tumour cell vaccines. One type of vaccine was derived from MHC class I-matched Mc12 sarcoma cells engineered to secrete IL-2 and the other from MHC class I-discordant IL-2 producing plasmacytoma X63-m-IL-2. The vaccines did not share any tumour rejection antigen with the MK16 cells and served exclusively as a local source of IL-2 production. Both vaccines were capable of inhibiting MK16 tumours when administered peritumorally up to 15 days after MK16 tumour challenge. The irradiated MHC class I-matched and IL-2-producing Mc12 sarcoma vaccine was then selected for therapy of MK16 SMRTD. Whereas the recurrence rate in the operated MK16 carcinoma bearers was 80%, so that only 20% of mice were cured by surgery, approximately 65% of the MK16 carcinoma bearers were permanently protected when the surgery was followed by local administration of the IL-2-producing Mc12 sarcoma vaccine.

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Granulocyte-macrophage colony-stimulating factor-producing tumour vaccines.

Murine sarcoma MC12 cells were transfected with the gene coding for murine granulocyte-macrophage colony-stimulating factor (GM-CSF). Tumorigenicity of a variety of cell clones with different expression of the inserted gene was assessed. All of the genetically manipulated MC12 cell clones examined were found to be less tumorigenic than the parental MC12 cell population. No correlation was observed between the production of GM-CSF by the clones and their tumorigenicity. It has been found that irradiation of the GM-CSF-producing cells with the dose of 150 Gy did not significantly inhibit the GM-CSF production during the period of 5 days after irradiation. These findings provided us with the rationale for using the irradiated GM-CSF-producing MC12 sarcoma vaccine for therapy. It has further been found than immunosensitivity of the genetically manipulated, GM-CSF-producing tumour targets to the IL-2-activated killer (LAK) cell-mediated cytolysis was significantly increased, as compared to the parental target cell population. Irradiated, GM-CSF-producing tumour vaccines were used for therapy of 3-day-old MC12 sarcoma transplants in syngeneic mice and for therapy of surgically induced minimal residual tumour disease. Neither small tumour transplants, nor tumour residua after surgery were significantly sensitive to the therapy with GM-CSF-producing tumour vaccines.

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IL-2 gene-modified tumour vaccines: monitoring of IL-2 levels in serum and peritoneal cavity of vaccinated mice.

IL-2 kinetics was assessed in mice vaccinated with irradiated syngeneic tumour vaccines carrying an inserted IL-2 gene and producing constitutively IL-2. For comparison, the kinetics of i.v. administered recombinant IL-2 was also examined. During regular time intervals after the vaccination or administration of recombinant IL-2, samples of serum and peritoneal fluid were collected and examined, using CTLL bioassay or its MTT modification. After i.p. administration of irradiated IL-2-producing plasmacytoma (X63-m-IL-2) vaccine, the levels of IL-2 were substantially higher in the peritoneal fluid than in the serum. Both in the peritoneal fluid and in the serum, the IL-2 level was increasing up to 60 min after administration and then it gradually decreased. The last time point when IL-2 was still detectable both in the peritoneal fluid and in the serum was 30 h. Almost identical results were obtained when the IL-2 levels were detected by the conventional CTLL assay, in which DNA synthesis was monitored by 3H-thymidine labeling, and by the isotope-free MTT modification of the CTLL assay, in which the DNA synthesis was monitored by staining. The MTT modification has the advantage of an isotope-free method. Comparison of two different IL-2-producing vaccines, a murine plasmacytoma X63-m-IL-2, with high IL-2 production, and murine sarcoma MC12-IL-2, with low IL-2 production, revealed that whereas after i.p. administration of the high producers, the peak of IL-2 was reached both in the peritoneal fluid and in the serum after 1 h, the administration of low producers gave the peak level of IL-2 later, 5 h after i.p. administration. Comparison of IL-2 levels obtained after i.p. administration of live and irradiated X63-m-IL-2 vaccine revealed that the irradiated vaccine produced both in vitro and in vivo higher amounts of IL-2. As compared to i.p. administration, the kinetics after i.v. administration of the X63-m-IL-2 vaccine was different. The maximum level of recombinant IL-2 was reached 10 min after administration and IL-2 was undetectable after 5 h. When the injections of recombinant IL-2 were repeated, the elimination of IL-2 from the circulation was substantially faster.

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Interleukin 2 gene therapy of surgical minimal residual tumour disease: characterization of cytolytic effector cells from tumour progressors and regressors.

Experiments were designed to characterize cytolytic effector cells from mice with SMRTD treated with IL-2 gene therapy. Mice were inoculated with syngeneic murine MK16 carcinoma cells. When the tumours reached 8-12 mm in diameter, they were excised and the operated mice were randomized into two groups. The first group without any further treatment was designated as operated-only; the second group, vaccinated 3 days after the operation with IL-2-producing tumour vaccine, is referred to as operated-vaccinated. Tumour recurrence rate in the operated-only mice was 90 percent; in the operated-vaccinated group the recurrence rate was 38.5 percent (progressors). The remaining 61.5 percent of mice were permanently protected (regressors). On day 53, the tumour progressors, regressors and healthy controls were sacrificed, and their spleen cells were used for 51Cr microcytotoxicity assay. Splenocytes from any group of mice were not cytolytic when allowed to react with MK16, YAC-1 (NK sensitive) and C1498 (NK resistant) targets. However, when grown for 3 days in IL-2-containing medium, the splenocytes from all groups of mice could develop cytolytic activity. The cytolytic activity of splenocytes from tumour progressors and regressors was substantially lower then that of splenocytes from healthy controls. In addition, significantly lower cytolytic activity was observed with IL-2-activated splenocytes from tumour progressors as compared to that of tumour regressors. Depletion of NK1.1+ cells or CD4+ plus CD8+ cells prevented the induction of significant IL-2-stimulated cytotoxicity directed against MK16 and C1498 targets in spleen cell cultures from tumour progressors, regressors, and healthy control mice, indicating that both, NK1.1+ and CD4+ plus CD8+, cells participate in the antitumour effect of IL-2 gene therapy. This was further supported by the finding that after depletion of CD4+ plus CD8+ cells, a residual cytolytic activity directed exclusively against NK-sensitive YAC-1 cells was observed.

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Irradiated IL-2 gene-modified plasmacytoma vaccines are more efficient than live vaccines.

The effect of irradiation on the therapeutic efficacy of IL-2 gene-modified plasmacytoma cells used as a vaccine in the immunotherapy of parental murine plasmacytoma X63-Ag8.653 was examined. Local administration of the IL-2-secreting plasmacytoma irradiated with a dose of 50 Gy inhibited i.p. plasmacytoma growth more effectively than the administration of non-irradiated, live cell vaccines. Whereas the vaccination with the live cell vaccine could substantially prolong the survival of the tumour-bearing mice but did not significantly induce tumour regressions, the irradiated vaccines could substantially increase the number of tumour-free animals. The irradiated vaccines produce higher amounts of IL-2 than the live cell vaccines both in vitro and in vivo. Depletion of CD4+ and CD8+ effector cells with monoclonal antibodies has significantly decreased the effect of the vaccination. It can be concluded that both, CD4+ and CD8+ T lymphocytes are required for effective IL-2 gene therapy of the X63-Ag8.653 plasmacytoma and that the higher effect of the irradiated vaccines is probably due to their higher IL-2 production.

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Treatment of transplanted spontaneous rat T-cell leukaemia with local administration of recombinant murine interleukin-2.

Spontaneous rat CD4+CD8-T-cell leukaemia transplanted in syngeneic recipients served as an experimental model system for IL-2 therapy. As a source of IL-2, supernatants from in vitro cultured plasmacytoma cell line X63-m-IL2 secreting constitutively recombinant murine IL-2 were utilized. Administration of IL-2, s.c. to the vicinity of the tumour inoculum, suppressed tumour growth. The tumour-inhibitory IL-2 effects were time- and dose-dependent. When the treatment has started 10 days after the challenge with 10(4) leukaemia cells, IL-2 inhibitory effects on the lymphoma growth in situ were demonstrated by lower tumour weight combined with necrotic changes. No histological signs of lymphoma generalization were found in parenchymatous organs of IL-2-treated rats in contrast to the untreated controls. No histological or functional injuries to the kidneys due to IL-2 administration were found. The results of effector cell phenotyping demonstrated the kinetics of the CD4+/CD8+ ratio characterized by CD4+ T-cell depletion and resulting increase in the percentage of CD8+ PBL.

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Recombinant interleukin-2 acts as an adjuvant and helps to increase the efficacy of tumour vaccines.

To examine augmentation of the resistance-inducing effect of tumour vaccines with IL-2, we have used the cytokine produced by genetically modified somatic cells, and a conventional experimental model of TRA-expressing, MC-induced murine fibrosarcoma transplanted in histocompatible mice. We have found that the effect of s.c. immunization with irradiated tumour vaccines can be substantially enhanced by IL-2 injected repeatedly at the site of vaccination. To investigate the kinetics of local and systemic immunocyte populations during the course of immunization with vaccine plus IL-2, some of the vaccinated mice were sacrificed and their regional LNC and spleen cells were used for phenotypic analysis. It has been found that local (s.c.) administration of the irradiated tumour vaccine plus IL-2 was accompanied by an early depletion of CD4+ and CD8+ cells in regional lymph nodes followed by subsequent rebound lymphocytosis. The local reaction was followed by a systemic response in the spleen characterized with an increase in TCR alpha beta + CD4+ lymphocytes.

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Subcutaneous interleukin-2 in combination with vinblastine for metastatic renal cancer: cytolytic activity of peripheral blood lymphocytes.

Eight patients with progressive metastatic renal cell carcinoma were selected for one course of subcutaneous recombinant interleukin-2 (IL-2) plus vinblastine (VBL) treatment lasting for seven weeks. Seven of the eight patients were evaluable for response, eight for toxicity. Peripheral blood lymphocytes (PBL) from the evaluable patients were isolated and frozen prior to, during, and after the treatment courses; kinetics of their cytolytic activity was assessed and compared under standard conditions in 51Cr microcytotoxicity assay with natural killer (NK)-sensitive and NK-resistant human tumor targets. Among the evaluable patients treated, there was 1 partial responder (10+ months, regressions occurred in lung, retroperitoneal lymph nodes and adrenal metastases) and 3 patients achieved a stable disease (10+, 10+, 5+ months). Systemic toxicity was mild to moderate with treatment-limiting adverse effects in one patient (severe thrombocytopenia, grade IV). In the IL-2-treated patients, the cytolytic activity of PBL directed against NK-sensitive targets rapidly decreased during the first week of IL-2 treatment, approaching the negative values on day 10. Then the cytolytic activity was slowly increasing and reached its maximum within another two weeks. Afterwards, the cytolytic activity of PBL was again decreasing and the approximate values of the initial cytolysis were reached after 6-8 weeks. In contrast, with NK-resistant targets such characteristic kinetics of PBL cytolytic activity was not observed. The kinetics of PBL-mediated cytolysis was similar in IL-2-responders and non-responders, so that no correlation of in vivo and in vitro effects of subcutaneous IL-2 and VBL treatment could be established.

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Gene therapy of plasmacytoma: comparison of the therapeutic efficacy of tumour cells transduced with the interleukin-2, interleukin-4, or interleukin-6 genes.

The present study was designed to compare the tumour inhibitory effects of local therapy based on insertion of cloned IL-2, IL-4, or IL-6 genes into the genome of murine plasmacytoma X63-Ag8.653, followed by injection of the genetically modified cells to the vicinity of the parental plasmacytoma growing in syngeneic mice. It was also designed to investigate the effects of combined gene therapy with IL-2- and IL-6-producing plasmacytoma cells. It has been found that insertion of the IL-2 gene into the genome of X63-Ag8.653 cells can abrogate tumorigenicity of the transduced cells more effectively than insertion of the IL-4 or IL-6 gene. Peritumoral administration of the genetically modified plasmacytoma cells producing IL-6 (X63-h-IL-6) resulted in a therapeutic effect comparable with that of the IL-2-producing cells (X63-m-IL-2), whereas no substantial therapeutic effect of IL-4-producing cells (X63-m-IL4) was observed. The combined gene therapy with IL-2- and IL-6-producing cells did not give any additive or potentiated therapeutic effect.

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Therapeutic efficacy of repeated cycles of local IL-2 injections in mice carrying slowly growing tumour grafts.

Local IL-2 administration prior to transplantation of murine sarcoma virus (MSV Harvey)-induced tumour MSVT2 provided a model of slowly growing tumours suitable for long-term investigation of the therapeutic efficacy of repeated IL-2 injection cycles. Challenge of mice with the dose of sarcoma cells, which was lethal for 20/20 untreated control recipients, revealed that 8/20 IL-2-pretreated mice were protected by the local IL-2 treatment and survival indefinitely. Nine out of twenty IL-2-pretreated mice died during the same time period as the control mice, i.e., during 36 days, and 3/20 IL-2 pretreated mice were tumour-negative until day 60, when incipient tumours arose. The three late tumours were used as a model to investigate the therapeutic efficacy of the new cycles of repeated local IL-2 administration. It was found that no resistance to IL-2 immunotherapy was induced by pretreatment of the late tumours and that the tumours were repeatedly susceptible to local IL-2 treatment. Spleen cells of the tumour-bearing mice, which were not cytotoxic for MSVT2 tumour cells in vitro, could be made cytotoxic by addition of exogenous IL-2.

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