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Updated: Jun 23, 2025

Testing Cancer Immunotherapeutics in a Humanized Mouse Model Bearing Human Tumors
Published on: December 16, 2022
Immune Checkpoint Blockade Delays Cancer and Extends Survival in Murine DNA Polymerase Mutator Syndromes
Abstract:
Mutations in polymerases Pold1 and Pole exonuclease domains in humans are associated with increased cancer incidence, elevated tumor mutation burden (TMB) and response to immune checkpoint blockade (ICB). Although ICB is approved for treatment of several cancers, not all tumors with elevated TMB respond. Here we generated Pold1 and Pole proofreading mutator mice and show that ICB treatment of mice with high TMB tumors did not improve survival as only a subset of tumors responded. Similarly, introducing the mutator alleles into mice with Kras/p53 lung cancer did not improve survival, however, passaging mutator tumor cells in vitro without immune editing caused rejection in immune-competent hosts, demonstrating the efficiency by which cells with antigenic mutations are eliminated. Finally, ICB treatment of mutator mice earlier, before observable tumors delayed cancer onset, improved survival, and selected for tumors without aneuploidy, suggesting the use of ICB in individuals at high risk for cancer prevention.
Highlights:
Germline somatic and conditional Pold1 and Pole exonuclease domain mutations in mice produce a mutator phenotype. Spontaneous cancers arise in mutator mice that have genomic features comparable to human tumors with these mutations.ICB treatment of mutator mice with tumors did not improve survival as only a subset of tumors respond. Introduction of the mutator alleles into an autochthonous mouse lung cancer model also did not produce immunogenic tumors, whereas passaging mutator tumor cells in vitro caused immune rejection indicating efficient selection against antigenic mutations in vivo . Prophylactic ICB treatment delayed cancer onset, improved survival, and selected for tumors with no aneuploidy.
Insights
Mutations in polymerases Pold1 and Pole can increase cancer risk. While immune checkpoint blockade (ICB) shows promise, early prophylactic ICB treatment in mutator mice delayed cancer and improved survival.
Area of Science:
- Cancer biology
- Immunology
- Genetics
Background:
- Mutations in polymerase epsilon (Pole) and delta 1 (Pold1) exonuclease domains are linked to increased cancer incidence and tumor mutation burden (TMB).
- Immune checkpoint blockade (ICB) is an approved cancer therapy, but not all TMB-high tumors respond.
Purpose of the Study:
- To investigate the impact of Pold1 and Pole mutations on cancer development and response to ICB in a mouse model.
- To explore the potential of early ICB intervention for cancer prevention.
Main Methods:
- Generated Pold1 and Pole proofreading mutator mice.
- Introduced mutator alleles into a Kras/p53 lung cancer model.
- Administered ICB treatment to mice with established and early-stage tumors.
- Cultured mutator tumor cells in vitro for immune-competent host studies.
Main Results:
- ICB treatment did not improve survival in mutator mice with established high TMB tumors, as only a subset responded.
- Introducing mutator alleles into a lung cancer model did not improve survival.
- In vitro passaging of mutator tumor cells led to immune rejection in vivo, indicating selection against antigenic mutations.
- Prophylactic ICB treatment in mutator mice delayed cancer onset, improved survival, and selected for tumors lacking aneuploidy.
Conclusions:
- Tumors with Pold1/Pole mutations exhibit variable responses to ICB, suggesting immune editing eliminates highly antigenic cells.
- Early, prophylactic ICB treatment holds potential for cancer prevention by delaying onset and selecting for less aneuploid tumors.
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