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Cellular and molecular studies in the treatment of murine renal cancer
R H Wiltrout1, T A Gregorio, R G Fenton
1Laboratory of Experimental Immunology, Program Resources Inc/DynCorp, Frederick, MD.
Abstract:
Antigen-nonspecific approaches to the use of BRMs for cancer treatment have resulted in only limited success to date. In particular, the use of large numbers of adoptively transferred, broadly cytotoxic LAK cells in combination with IL-2 has been effective for only small subsets of cancer patients. Recent demonstrations of T-lymphocyte-mediated antigen-specific responses against some human tumors, and the more potent effects of these cells in preclinical models, have refocused much of the dialogue for biological therapy to potentiation of T-lymphocyte-mediated antitumor effects. Our studies are using the well-characterized Renca murine renal cancer model to study the induction of antitumor T-lymphocyte-mediated responses, the mechanisms by which positive effects are achieved, and the reasons why T lymphocytes in tumor-bearing mice may not respond as predicted. One possible reason why T-lymphocyte responses may not be triggered easily by tumors could be an impairment of critical nuclear transcription factors. We also are studying two approaches for stimulating T-cells in tumor-conditioned hosts. (1) We have shown that IL-7 has potent costimulatory effects on T cells as well as some antitumor effects. (2) We are developing a comprehensive vaccine-type gene therapy approach whereby T cells and antigen-presenting dendritic cells are recruited through the use of antigen, chemokines and GM-CSF. Studies are in progress to determine whether the activity of these recruited cells can then be potentiated by Renca or fibroblast transfectants that express T-cell costimulatory cytokines (IL-2, IL-4, IL-7, or IL-12). This approach should optimize both MHC class I- and class II-dependent pathways for induction of T-lymphocyte-mediated responses to cancer, and perhaps overcome tumor-induced impairments in the T lymphocyte function.
Insights
This study explores enhancing T-lymphocyte responses against cancer using biological response modifiers (BRMs). Researchers are investigating methods to overcome tumor-induced T-cell impairments for more effective cancer immunotherapy.
Area of Science:
- Immunology
- Cancer Biology
- Biotherapy
Background:
- Antigen-nonspecific biological response modifiers (BRMs) have shown limited success in cancer treatment.
- T-lymphocyte-mediated antigen-specific responses show promise for more potent antitumor effects.
- Tumor-induced impairments in T-lymphocyte function may hinder effective cancer immunotherapy.
Purpose of the Study:
- To investigate the induction of antitumor T-lymphocyte responses in the Renca murine renal cancer model.
- To elucidate mechanisms of T-lymphocyte-mediated antitumor effects and reasons for impaired responses.
- To explore strategies for stimulating T-cells in tumor-conditioned hosts.
Main Methods:
- Utilizing the Renca murine renal cancer model for preclinical studies.
- Investigating the role of nuclear transcription factors in T-lymphocyte activation.
- Evaluating the costimulatory and antitumor effects of Interleukin-7 (IL-7).
- Developing a vaccine-type gene therapy approach involving antigen, chemokines, and granulocyte-macrophage colony-stimulating factor (GM-CSF).
Main Results:
- Interleukin-7 (IL-7) demonstrates potent costimulatory effects on T cells and exhibits antitumor activity.
- A comprehensive gene therapy approach is being developed to recruit T cells and antigen-presenting dendritic cells.
- Ongoing studies aim to potentiate recruited cell activity using cytokine-expressing transfectants.
Conclusions:
- Targeting T-lymphocyte-mediated responses offers a promising avenue for cancer biological therapy.
- IL-7 shows potential as a biological response modifier for enhancing antitumor immunity.
- The developed gene therapy approach aims to optimize both MHC class I- and class II-dependent pathways for cancer immunotherapy, potentially overcoming tumor-induced T-cell dysfunction.