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Generation of a Novel Dendritic-cell Vaccine Using Melanoma and Squamous Cancer Stem Cells
Published on: January 6, 2014
Cell-based vaccines for renal cell carcinoma: genetically-engineered tumor cells and monocyte-derived dendritic cells
Bernhard Frankenberger1, Sybille Regn, Christiane Geiger
1Institute of Molecular Immunology, GSF-National Research Center for Environment and Health, Marchioninistrasse 25, 81377 Munich, Germany, b.frankenberger@gsf.de
Abstract:
Initial vaccine developments for renal cell carcinoma (RCC) have concentrated on cell-based approaches in which tumor cells themselves provide mixtures of unknown tumor-associated antigens as immunizing agents. Antigens derived from autologous tumors can direct responses to molecular composites characteristic of individual tumors, whereas antigens derived from allogeneic tumor cells must be commonly shared by RCC. Three types of cell-based vaccine for RCC have been investigated: isolated tumor cell suspensions, gene modified tumor cells and dendritic cells (DCs) expressing RCC-associated antigens. Approaches using genetic modification of autologous RCC have included ex vivo modification of tumor cells or modification of tumors in vivo. We have used gene-modification of allogeneic tumor cell lines to create generic RCC vaccines. More recently, emphasis has shifted to the use of DCs as cell-based vaccines for RCC. DCs have moved to a position of central interest because of their excellent stimulatory capacity, combined with their ability to process and present antigens to both naive CD4 and CD8 cells. The long impasse in identifying molecular targets for specific immunotherapy of RCC is now rapidly being overcome through the use of tools and information emerging from human genome research. Identification of candidate molecules expressed by RCC using cDNA arrays, combined with protein arrays and identification of peptides presented by MHC molecules, allow specific vaccines to be tailored to the antigenic profile of individual tumors, providing the basis for development of patient-specific vaccines.
Insights
Renal cell carcinoma (RCC) vaccines are evolving from unknown tumor antigens to patient-specific immunotherapies. Advances in genomics are enabling the development of tailored vaccines targeting individual RCC tumors.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Early renal cell carcinoma (RCC) vaccines utilized tumor cells for unknown antigens.
- Approaches included autologous (patient-specific) and allogeneic (donor-derived) tumor cells.
- Investigated cell-based vaccines: isolated tumor cells, gene-modified tumor cells, and dendritic cells (DCs).
Purpose of the Study:
- To review the evolution of cell-based vaccine strategies for renal cell carcinoma (RCC).
- To highlight the shift towards dendritic cell (DC) based vaccines.
- To discuss the impact of human genome research on developing patient-specific RCC vaccines.
Main Methods:
- Review of existing literature on RCC vaccine development.
- Analysis of cell-based vaccine strategies: isolated tumor cells, gene-modified tumor cells, and DCs.
- Examination of genomic and proteomic approaches for identifying RCC-associated antigens.
Main Results:
- Dendritic cells (DCs) are emerging as a central focus for RCC vaccines due to their antigen-presenting capabilities.
- Genetic modification of tumor cells (autologous and allogeneic) has been explored.
- Human genome research is rapidly identifying molecular targets for targeted RCC immunotherapy.
Conclusions:
- The development of RCC vaccines is moving towards personalized approaches.
- Genomic and proteomic tools enable tailoring vaccines to individual tumor antigen profiles.
- Patient-specific vaccines hold promise for improved RCC immunotherapy.
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