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Updated: May 1, 2026

Preparation of Tumor Antigen-loaded Mature Dendritic Cells for Immunotherapy
Published on: August 1, 2013
Induction of dendritic cell maturation in the skin microenvironment by soluble factors derived from colon carcinoma
Jelle J Lindenberg1, Rieneke van de Ven1, Dinja Oosterhoff1
1Department of Medical Oncology; VU University medical center; De Boelelaan, Amsterdam, The Netherlands.
Abstract:
Autologous tumor cell-based vaccines provide a wide range of tumor antigens and personalized neo-epitopes based on individual tumors' unique antigenic mutanome signatures. However, tumor-derived factors may hamper in situ maturation of dendritic cells (DC) and thus interfere with the generation of effective anti-tumor immunity. As the skin is a preferred site for tumor vaccine delivery, we investigated the influence of primary colon carcinoma-derived soluble factors on the maturation state of migrating DC in a human skin explant model. Primary tumor-derived supernatants (TDSN) enhanced the phenotypic maturation state of skin-emigrated DC, resulting in an increased T-cell stimulatory ability in an allogeneic mixed leukocyte response. In case of monocyte-derived DC a similar TDSN-induced maturation induction was found to entirely depend on cyclooxygenase (COX)-regulated prostaglandins. In contrast, the increase in skin-emigrated DC maturation was completely prostaglandin-independent, as evidenced by the inability of the COX inhibitor indomethacin to abrogate this TDSN-induced effect. Although TDSN conditioning affected a drop in IL-12p70 release by the skin-emigrated DC and induced a predominant Th17/Th22 transcriptional profile in subsequently stimulated T-cells, Th cell subset differentiation, as assessed by intracellular cytokine expression upon polyclonal priming and re-stimulation, was not affected. Comparative analysis of phenotypic and transcriptional profiles suggests that the observed maturational effects in skin-derived DC may have been induced by tumor-derived GM-CSF. In conclusion, soluble factors derived from whole-cell colon tumor vaccines will not negatively impact DC migration and maturation in human skin, but rather induce DC maturation that will facilitate the priming of a poly-functional Th cell response.
Insights
Colon tumor factors enhance dendritic cell (DC) maturation in skin, improving T-cell responses. This study shows tumor-derived supernatants promote DC maturation, crucial for effective anti-tumor immunity, without negative impacts on migration.
Area of Science:
- Immunology
- Oncology
- Dermatology
Background:
- Autologous tumor cell vaccines offer personalized neo-epitopes but tumor factors can impair dendritic cell (DC) maturation.
- Skin is a key site for vaccine delivery, necessitating understanding of DC behavior in this environment.
Purpose of the Study:
- To investigate how primary colon carcinoma-derived soluble factors influence DC maturation in human skin explants.
- To assess the impact of these factors on DC migration, maturation, and subsequent T-cell stimulatory capacity.
Main Methods:
- Utilized a human skin explant model with primary colon carcinoma-derived supernatants (TDSN).
- Analyzed phenotypic maturation of skin-emigrated DCs and their T-cell stimulatory ability via mixed leukocyte response.
- Investigated the role of prostaglandins and cyclooxygenase (COX) inhibition (indomethacin).
- Assessed cytokine release (IL-12p70) and T-cell transcriptional profiles (Th17/Th22).
Main Results:
- TDSN enhanced phenotypic maturation of skin-emigrated DCs, increasing T-cell stimulatory capacity.
- Unlike monocyte-derived DCs, TDSN-induced maturation in skin DCs was prostaglandin-independent.
- TDSN induced a drop in IL-12p70 release and a Th17/Th22 profile in T-cells, but did not alter overall Th cell differentiation.
- Tumor-derived GM-CSF was suggested as a potential inducer of these maturational effects.
Conclusions:
- Soluble factors from colon tumor vaccines do not impede DC migration or maturation in human skin.
- These factors actively promote DC maturation, facilitating a poly-functional T-helper cell response.
- Findings support the use of skin as a delivery site for tumor cell-based vaccines.

