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In Vitro and In Vivo Assessment of T, B and Myeloid Cells Suppressive Activity and Humoral Responses from Transplant Recipients
Published on: August 12, 2017
Podoplanin Positive Myeloid Cells Promote Glioma Development by Immune Suppression
Tanja Eisemann1,2, Barbara Costa1, Heike Peterziel1,3,4
1Division of Signal Transduction and Growth Control, DKFZ/ZMBH Alliance, Heidelberg, Germany.
Abstract:
The dynamic and interactive tumor microenvironment is conceived as a considerable parameter in tumor development and therapy response. Implementing this knowledge in the development of future cancer treatments could provide novel options in the combat of highly aggressive and difficult-to-treat tumors such as gliomas. One compartment of the tumor microenvironment that has gained growing interest is the immune system. As endogenous defense machinery the immune system has the capacity to fight against cancer cells. This, however, is frequently circumvented by tumor cells engaging immune-regulatory mechanisms that disable tumor-directed immune responses. Thus, in order to unlock the immune system against cancer cells, it is crucial to characterize in great detail individual tumor-associated immune cell subpopulations and dissect whether and how they influence immune evasion. In this study we investigated the function of a tumor-associated myeloid cell subpopulation characterized by podoplanin expression on the development of high-grade glioma tumors. Here, we show that the deletion of podoplanin in myeloid cells results in increased (CD8+) T-cell infiltrates and significantly prolonged survival in an orthotopic transplantation model. In vitro co-cultivation experiments indicate a podoplanin-dependent transcriptional regulation of arginase-1, a well-known player in myeloid cell-mediated immune suppression. These findings identify podoplanin positive myeloid cells as one novel mediator of the glioma-induced immune suppression. Thus, the targeted ablation of podoplanin positive myeloid cells could be included in combinatorial cancer therapies to enhance immune-mediated tumor elimination.
Insights
Targeting podoplanin-expressing myeloid cells can enhance anti-tumor immunity. Blocking these cells in gliomas increases T-cell responses and prolongs survival, offering a new therapeutic strategy.
Area of Science:
- Immunology
- Oncology
- Cancer Biology
Background:
- The tumor microenvironment significantly impacts cancer progression and treatment efficacy.
- Immune cells within the tumor microenvironment can be manipulated by cancer cells to evade immune surveillance.
- Understanding specific immune cell subpopulations is crucial for developing effective cancer immunotherapies.
Purpose of the Study:
- To investigate the role of podoplanin-expressing myeloid cells in high-grade glioma development.
- To determine if targeting these cells can modulate the anti-tumor immune response.
- To explore potential therapeutic strategies for glioma by targeting myeloid cell-mediated immune suppression.
Main Methods:
- Investigated the function of myeloid cells expressing podoplanin in glioma development.
- Utilized an orthotopic transplantation model to assess the impact of myeloid cell podoplanin deletion on tumor growth and survival.
- Conducted in vitro co-cultivation experiments to analyze transcriptional regulation of immune suppressive factors like arginase-1.
Main Results:
- Deletion of podoplanin in myeloid cells led to increased infiltration of CD8+ T-cells.
- Significantly prolonged survival was observed in mice with myeloid cell-specific podoplanin deletion.
- Podoplanin expression on myeloid cells was linked to the transcriptional regulation of arginase-1, a key immune suppressive enzyme.
Conclusions:
- Podoplanin-positive myeloid cells are identified as novel mediators of immune suppression in gliomas.
- Targeting and ablating these specific myeloid cells can enhance anti-glioma immune responses.
- The targeted ablation of podoplanin-expressing myeloid cells presents a potential combinatorial approach for glioma therapy.
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