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Tumor-derived IFN triggers chronic pathway agonism and sensitivity to ADAR loss
Huayang Liu1, Javad Golji1, Lauren K Brodeur1
1Novartis Institutes for Biomedical Research, Oncology Disease Area, Cambridge, MA, USA.
Abstract:
Interferons (IFNs) are cytokines that play a critical role in limiting infectious and malignant diseases 1-4 . Emerging data suggest that the strength and duration of IFN signaling can differentially impact cancer therapies, including immune checkpoint blockade 5-7 . Here, we characterize the output of IFN signaling, specifically IFN-stimulated gene (ISG) signatures, in primary tumors from The Cancer Genome Atlas. While immune infiltration correlates with the ISG signature in some primary tumors, the existence of ISG signature-positive tumors without evident infiltration of IFN-producing immune cells suggests that cancer cells per se can be a source of IFN production. Consistent with this hypothesis, analysis of patient-derived tumor xenografts propagated in immune-deficient mice shows evidence of ISG-positive tumors that correlates with expression of human type I and III IFNs derived from the cancer cells. Mechanistic studies using cell line models from the Cancer Cell Line Encyclopedia that harbor ISG signatures demonstrate that this is a by-product of a STING-dependent pathway resulting in chronic tumor-derived IFN production. This imposes a transcriptional state on the tumor, poising it to respond to the aberrant accumulation of double-stranded RNA (dsRNA) due to increased sensor levels (MDA5, RIG-I and PKR). By interrogating our functional short-hairpin RNA screen dataset across 398 cancer cell lines, we show that this ISG transcriptional state creates a novel genetic vulnerability. ISG signature-positive cancer cells are sensitive to the loss of ADAR, a dsRNA-editing enzyme that is also an ISG. A genome-wide CRISPR genetic suppressor screen reveals that the entire type I IFN pathway and the dsRNA-activated kinase, PKR, are required for the lethality induced by ADAR depletion. Therefore, tumor-derived IFN resulting in chronic signaling creates a cellular state primed to respond to dsRNA accumulation, rendering ISG-positive tumors susceptible to ADAR loss.
Insights
Cancer cells can produce interferons (IFNs), creating an IFN-stimulated gene (ISG) signature. This signature makes ISG-positive tumors vulnerable to the loss of ADAR, an enzyme crucial for cancer cell survival.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Interferons (IFNs) are crucial cytokines for controlling infections and cancer.
- IFN signaling strength and duration impact cancer therapies like immune checkpoint blockade.
- IFN-stimulated gene (ISG) signatures are key indicators of IFN pathway activation.
Purpose of the Study:
- To investigate the source and consequences of IFN signaling in primary tumors.
- To identify novel genetic vulnerabilities associated with ISG signatures in cancer cells.
- To explore the role of tumor-derived IFNs in cancer cell states and therapeutic responses.
Main Methods:
- Analysis of The Cancer Genome Atlas and Cancer Cell Line Encyclopedia datasets.
- Studies using patient-derived tumor xenografts in immune-deficient mice.
- Functional short-hairpin RNA and CRISPR genetic screens across multiple cancer cell lines.
Main Results:
- ISG signatures can arise from cancer cells themselves, not just immune infiltration.
- A STING-dependent pathway leads to chronic tumor-derived IFN production, establishing an ISG transcriptional state.
- ISG-positive cancer cells exhibit a vulnerability to the loss of ADAR, a dsRNA-editing enzyme.
- The type I IFN pathway and PKR kinase are essential for ADAR depletion-induced lethality.
Conclusions:
- Tumor-derived IFNs create a cellular state primed for dsRNA accumulation response.
- This IFN-induced state renders ISG-positive tumors susceptible to ADAR loss.
- Targeting ADAR or related pathways could be a therapeutic strategy for ISG-positive cancers.
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