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A mathematical model of tumor-immune interactions.

Abstract:
A mathematical model of the interactions between a growing tumor and the immune system is presented. The equations and parameters of the model are based on experimental and clinical results from published studies. The model includes the primary cell populations involved in effector T-cell mediated tumor killing: regulatory T cells, helper T cells, and dendritic cells. A key feature is the inclusion of multiple mechanisms of immunosuppression through the main cytokines and growth factors mediating the interactions between the cell populations. Decreased access of effector cells to the tumor interior with increasing tumor size is accounted for. The model is applied to tumors with different growth rates and antigenicities to gauge the relative importance of various immunosuppressive mechanisms. The most important factors leading to tumor escape are TGF-β-induced immunosuppression, conversion of helper T cells into regulatory T cells, and the limitation of immune cell access to the full tumor at large tumor sizes. The results suggest that for a given tumor growth rate, there is an optimal antigenicity maximizing the response of the immune system. Further increases in antigenicity result in increased immunosuppression, and therefore a decrease in tumor killing rate. This result may have implications for immunotherapies which modulate the effective antigenicity. Simulation of dendritic cell therapy with the model suggests that for some tumors, there is an optimal dose of transfused dendritic cells.
Publication status:
Published

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Publisher copy:
10.1016/j.jtbi.2011.10.027

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author


Journal:
Journal of theoretical biology More from this journal
Volume:
294
Pages:
56-73
Publication date:
2012-02-01
DOI:
EISSN:
1095-8541
ISSN:
0022-5193


Language:
English
Keywords:
Pubs id:
pubs:198774
UUID:
uuid:9cead89c-19ad-43fd-83bc-4621f6690d36
Local pid:
pubs:198774
Source identifiers:
198774
Deposit date:
2012-12-19
ARK identifier:

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