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CD200 in CNS tumor-induced immunosuppression: the role for CD200 pathway blockade in targeted immunotherapy
Christopher L Moertel1, Junzhe Xia2, Rebecca LaRue1
1Department of Pediatrics, hematology/oncology, University of Minnesota, Minneapolis, MN 55455 USA.
Background:
Immunological quiescence in the central nervous system (CNS) is a potential barrier to immune mediated anti-tumor response. One suppressive mechanism results from the interaction of parenchyma-derived CD200 and its receptor on myeloid cells. We suggest that CD200/CD200R interactions on myeloid cells expand the myeloid-derived suppressor cell (MDSC) population and that blocking tumor-derived CD200 will enhance the efficacy of immunotherapy.
Methods:
CD200 mRNA expression levels in human brain tumor tissue samples were measured by microarray. The amount of circulating CD200 protein in the sera of patients with brain tumors was determined by ELISA and, when corresponding peripheral blood samples were available, was correlated quantitatively with MDSCs. CD200-derived peptides were used as competitive inhibitors in a mouse model of glioblastoma immunotherapy.
Results:
CD200 mRNA levels were measured in human brain tumors, with different expression levels being noted among the sub groups of glioblastoma, medulloblastoma and ependymoma. Serum CD200 concentrations were highest in patients with glioblastoma and correlated significantly with MDSC expansion. Similarly, in vitro studies determined that GL261 cells significantly expanded a MDSC population. Interestingly, a CD200R antagonist inhibited the expansion of murine MDSCs in vitro and in vivo. Moreover, inclusion of CD200R antagonist peptide in glioma tumor lysate-derived vaccines slowed tumor growth and significantly enhanced survival.
Conclusion:
These data suggest that CNS-derived tumors can evade immune surveillance by engaging CD200. Because of the homology between mouse and human CD200, our data also suggest that blockade of CD200 binding to its receptor will enhance the efficacy of immune mediated anti-tumor strategies for brain tumors.
Insights
Blocking CD200 interactions with its receptor can overcome central nervous system immune suppression. This approach enhances myeloid-derived suppressor cell (MDSC) reduction and boosts immunotherapy effectiveness against brain tumors.
Area of Science:
- Neuro-oncology
- Immunology
- Molecular Biology
Background:
- Central nervous system (CNS) immunological quiescence impedes anti-tumor immune responses.
- CD200/CD200R interactions on myeloid cells promote immune suppression by expanding myeloid-derived suppressor cells (MDSCs).
Purpose of the Study:
- To investigate the role of CD200/CD200R pathway in brain tumor immune evasion.
- To evaluate the therapeutic potential of blocking CD200 signaling in enhancing immunotherapy for brain tumors.
Main Methods:
- Quantified CD200 mRNA in human brain tumors via microarray.
- Measured serum CD200 protein levels and correlated with MDSCs in brain tumor patients.
- Utilized CD200-derived peptides as inhibitors in a mouse glioblastoma model.
Main Results:
- CD200 mRNA expression varied across glioblastoma, medulloblastoma, and ependymoma.
- Elevated serum CD200 correlated with increased MDSCs in glioblastoma patients.
- CD200R antagonist inhibited MDSC expansion in vitro and in vivo, slowing tumor growth and improving survival in mice.
Conclusions:
- CNS tumors utilize CD200 signaling for immune evasion.
- Blocking CD200/CD200R interaction is a promising strategy to enhance anti-brain tumor immunotherapy.
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