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Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Targeting PARP-1 with metronomic therapy modulates MDSC suppressive function and enhances anti-PD-1 immunotherapy in
Mohamed A Ghonim1, Salome V Ibba1, Abdelmetalab F Tarhuni1
1Stanley Scott Cancer Center, Louisiana State University Health Sciences Center, New Orleans, Louisiana, USA.
Background:
Poly(ADP-ribose) polymerase (PARP) inhibitors (eg, olaparib) are effective against BRCA-mutated cancers at/near maximum tolerated doses by trapping PARP-1 on damaged chromatin, benefitting only small patient proportions. The benefits of targeting non-DNA repair aspects of PARP with metronomic doses remain unexplored.
Methods:
Colon epithelial cells or mouse or human bone marrow (BM)-derived-myeloid-derived suppressor cells (MDSCs) were stimulated to assess the effect of partial PARP-1 inhibition on inflammatory gene expression or immune suppression. Mice treated with azoxymethane/four dextran-sulfate-sodium cycles or APC mice bred into PARP-1+/- or treated with olaparib were used to examine the role of PARP-1 in colitis-induced or spontaneous colon cancer, respectively. Syngeneic MC-38 cell-based (microsatellite instability, MSIhigh) or CT-26 cell-based (microsatellite stable, MSS) tumor models were used to assess the effects of PARP inhibition on host responses and synergy with anti-Programmed cell Death protein (PD)-1 immunotherapy.
Results:
Partial PARP-1 inhibition, via gene heterozygosity or a moderate dose of olaparib, protected against colitis-mediated/APC -mediated intestinal tumorigenesis and APC -associated cachexia, while extensive inhibition, via gene knockout or a high dose of olaparib, was ineffective or aggravating. A sub-IC50-olaparib dose or PARP-1 heterozygosity was sufficient to block tumorigenesis in a syngeneic colon cancer model by modulating the suppressive function, but not intratumoral migration or differentiation, of MDSCs, with concomitant increases in intratumoral T cell function and cytotoxicity, as assessed by granzyme-B/interferon-γ levels. Adoptive transfer of WT-BM-MDSCs abolished the protective effects of PARP-1 heterozygosity. The mechanism of MDSC modulation involved a reduction in arginase-1/inducible nitric oxide synthase/cyclo-oxygenase-2, but independent of PARP-1 trapping on chromatin. Although a high-concentration olaparib or the high-trapping PARP inhibitor, talazoparib, activated stimulator of interferon gene (STING) in BRCA-proficient cells and induced DNA damage, sub-IC50 concentrations of either drug failed to induce activation of the dsDNA break sensor. STING expression appeared dispensable for MDSC suppressive function and was not strictly required for olaparib-mediated effects. Ironically, STING activation blocked human and mouse MDSC function with no additive effects with olaparib. A metronomic dose of olaparib was highly synergistic with anti-PD-1-based immunotherapy, leading to eradication of MSIhigh or reduction of MSS tumors in mice.
Conclusions:
These results support a paradigm-shifting concept that expands the utility of PARP inhibitor and encourage testing metronomic dosing of PARP inhibitor to enhance the efficacy of checkpoint inhibitor-based immunotherapies in cancer.
Insights
Metronomic dosing of Poly(ADP-ribose) polymerase (PARP) inhibitors, unlike high doses, can reduce colon cancer by modulating myeloid-derived suppressor cells and enhance anti-PD-1 immunotherapy efficacy. This suggests a new strategy for cancer treatment.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Poly(ADP-ribose) polymerase (PARP) inhibitors, such as olaparib, are effective in BRCA-mutated cancers at maximum tolerated doses by trapping PARP-1 on chromatin.
- However, this approach benefits only a small proportion of patients, and the effects of targeting non-DNA repair aspects of PARP with metronomic doses remain unexplored.
Purpose of the Study:
- To investigate the effects of partial PARP-1 inhibition on inflammatory gene expression and immune suppression.
- To examine the role of PARP-1 in colitis-induced and spontaneous colon cancer.
- To assess the synergy of PARP inhibition with anti-Programmed cell Death protein (PD)-1 immunotherapy in colon cancer models.
Main Methods:
- Stimulation of colon epithelial cells and myeloid-derived suppressor cells (MDSCs) to assess partial PARP-1 inhibition effects.
- Utilizing mouse models of colitis-induced and spontaneous colon cancer, including PARP-1 heterozygous mice and olaparib treatment.
- Employing syngeneic colon cancer models (MSIhigh and MSS) to evaluate PARP inhibition's impact on host responses and immunotherapy synergy.
Main Results:
- Partial PARP-1 inhibition protected against intestinal tumorigenesis and cachexia, while extensive inhibition was ineffective or aggravating.
- Sub-therapeutic olaparib doses modulated MDSC suppressive function, increasing T cell activity, independent of PARP-1 chromatin trapping.
- Metronomic olaparib showed high synergy with anti-PD-1 immunotherapy, leading to tumor eradication or reduction in mouse models.
Conclusions:
- Partial PARP-1 inhibition offers a protective effect against colon cancer development and progression.
- Metronomic PARP inhibitor dosing can enhance the efficacy of checkpoint inhibitor-based immunotherapies.
- These findings support a paradigm shift in utilizing PARP inhibitors, encouraging clinical trials with metronomic dosing strategies.
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