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Published on: June 9, 2017
Targeting DNA damage response components induces enhanced STING-dependent type-I IFN response in ATM deficient cancer
Marta Lopez-Pelaez1, Lucy Young1, Mercedes Vazquez-Chantada2
1Oncology R&D, AstraZeneca, UK.
Abstract:
The concept of exploiting tumor intrinsic deficiencies in DNA damage repair mechanisms by inhibiting compensatory DNA repair pathways is well established. For example, ATM-deficient cells show increased sensitivity to the ATR inhibitor ceralasertib. DNA damage response (DDR)-deficient cells are also more sensitive to DNA damaging agents like the DNA crosslinker pyrrolobenzodiazepine (PBD) SG-3199. However, additional antitumor benefits from targeting the DDR pathways, which could operate through the activation of the innate immune system are less well studied. DNA accumulation in the cytosol acts as an immunogenic danger signal, inducing the expression of type-I interferon (IFN) stimulated genes (ISGs) by the activation of the cGAS-STING pathway. Here, we demonstrate that ATM -/- FaDu tumor cells have higher basal expression of ISGs when compared to WT cells and respond to ceralasertib and PBD SG-3199 by inducing higher levels of ISGs in a cGAS-STING-dependent manner. We show that sensitive tumor cells treated with ceralasertib and PBD SG-3199 activate dendritic cells (DCs) via a type-I IFN-dependent mechanism. However, STING deficiency in tumor cells does not prevent DC activation, suggesting that transactivation of the STING pathway occurs within DCs. Furthermore, depletion of the cytosolic DNA exonuclease TREX1 in tumor cells increases DC activation in response to PBD SG-3199-treated tumor cells, indicating that an increase in tumor-derived cytosolic DNA may further enhance DC activation. In summary, in this study, we show that ceralasertib and PBD SG-3199 treatment not only intrinsically target tumor cells but also extrinsically increase tumor cell immunogenicity by inducing DC activation, which is enhanced in ATM-deficient cells.
Insights
Targeting DNA repair deficiencies with ceralasertib and PBD SG-3199 enhances anti-tumor immunity. ATM-deficient tumors show increased immune response via the cGAS-STING pathway, boosting dendritic cell activation.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Targeting tumor DNA repair deficiencies is a known strategy.
- DNA damage response (DDR) pathways are implicated in cancer therapy.
- The role of DDR targeting in innate immune system activation is less understood.
Purpose of the Study:
- To investigate the impact of inhibiting DNA repair pathways on innate immune activation.
- To explore the mechanism of immune stimulation by DDR inhibitors ceralasertib and PBD SG-3199.
- To determine if ATM deficiency influences the immune response to these DDR inhibitors.
Main Methods:
- Utilized ATM-deficient (ATM-/-) and wild-type (WT) FaDu tumor cells.
- Treated cells with ceralasertib (ATR inhibitor) and PBD SG-3199 (DNA crosslinker).
- Assessed expression of type-I interferon stimulated genes (ISGs) and activation of dendritic cells (DCs) via the cGAS-STING pathway. TREX1 depletion was also investigated.
Main Results:
- ATM-/- tumor cells exhibited higher basal ISG expression and responded more robustly to ceralasertib and PBD SG-3199 with increased ISGs via cGAS-STING.
- Dendritic cell activation was observed in response to treated tumor cells, dependent on type-I interferon.
- STING deficiency in tumor cells did not abolish DC activation, suggesting STING activation within DCs. TREX1 depletion enhanced DC activation.
Conclusions:
- Ceralasertib and PBD SG-3199 treatments intrinsically target tumor cells and extrinsically enhance immunogenicity.
- ATM-deficient tumors show a heightened immune response, characterized by increased DC activation.
- These findings highlight a dual mechanism of action for DDR inhibitors, impacting both tumor cells and the anti-tumor immune response.
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