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Updated: Sep 20, 2025

Testing Cancer Immunotherapeutics in a Humanized Mouse Model Bearing Human Tumors
Published on: December 16, 2022
In Vivo Syngeneic Tumor Models with Acquired Resistance to Anti-PD-1/PD-L1 Therapies
Morgane Denis1,2, Chloé Grasselly1,2, Pierre-Antoine Choffour2
1Univ Lyon, Université Claude Bernard Lyon 1, INSERM 1052, CNRS 5286, Centre Léon Bérard, Centre de Recherche en Cancérologie de Lyon, Lyon, France.
Abstract:
Antibodies targeting PD-1 and PD-L1 have produced durable responses in a subset of patients with cancer. However, a majority of these patients will ultimately relapse due to acquired resistance. To explore the underlying mechanisms of this secondary resistance, we developed five syngeneic murine tumor variants with acquired resistance to anti-PD-1 and/or PD-L1 antibodies in vivo. Resistant in vivo models were obtained by serial treatment/reimplantation cycles of the MC38 colorectal, MB49 and MBT2 bladder, and RENCA kidney and TyrNras melanoma models. Tumor immune infiltrates were characterized for wild type and resistant tumors using spectral cytometry and their molecular alterations analyzed using RNA sequencing analyses. Alterations in the tumor immune microenvironment were strongly heterogeneous among resistant models, involving select lymphoid and/or myeloid subpopulations. Molecular alterations in resistant models included previously identified pathways as well as novel candidate genes found to be deregulated in several resistant models. Among these, Serpinf1, coding for pigment epithelial-derived factor (PEDF) was further explored in the MC38 and the MBT2 models. Overexpression of Serpinf1 induced resistance to anti-PD-1 antibodies in the MC38 model, whereas knockdown of Serpinf1 sensitized this model as well as the primarily resistant MBT2 model. Serpinf1 overexpression was associated with increased production of free fatty acids and reduced activation of CD8+ cells, while orlistat, a compound that reduces the production of free fatty acids, reversed resistance to anti-PD-1 therapy. Our results suggest that a panel of syngeneic resistant models constitutes a useful tool to model the heterogeneity of resistance mechanisms encountered in the clinic.
Insights
Researchers developed resistant cancer models to study why immunotherapies like anti-PD-1 fail. They found Serpinf1 and fatty acid metabolism drive resistance, offering new targets for overcoming treatment failure in cancer patients.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Immune checkpoint inhibitors targeting PD-1/PD-L1 offer durable responses in some cancers.
- Acquired resistance limits the long-term efficacy of these therapies for most patients.
Purpose of the Study:
- To investigate the mechanisms of acquired resistance to anti-PD-1/PD-L1 therapies.
- To develop and characterize syngeneic murine tumor models exhibiting resistance.
Main Methods:
- Generated five resistant syngeneic murine tumor variants (MC38, MB49, MBT2, RENCA, TyrNras).
- Analyzed tumor immune infiltrates using spectral cytometry.
- Performed RNA sequencing to identify molecular alterations.
Main Results:
- Tumor immune microenvironment alterations were heterogeneous across resistant models.
- Identified Serpinf1 (encoding PEDF) as a key gene involved in resistance.
- Serpinf1 overexpression increased fatty acid production, reduced CD8+ T cell activation, and induced resistance.
- Orlistat reversed anti-PD-1 resistance by reducing fatty acids.
Conclusions:
- Syngeneic resistant models are valuable tools for studying diverse resistance mechanisms.
- Serpinf1 and altered fatty acid metabolism are critical drivers of acquired resistance to PD-1 blockade.
- Targeting these pathways may overcome resistance and improve immunotherapy efficacy.
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