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Published on: December 21, 2011
SHLD2 loss is a synthetic vulnerability to Polθ inhibition combined with radiotherapy
Gonzalo Rodriguez-Berriguete1, Purusotha Thambiayah1, Alessandro Cicconi2
1Department of Oncology, University of Oxford, Oxford, UK.
Abstract:
Inhibition of DNA polymerase theta (Polθ), an essential enzyme for repairing DNA double-strand breaks (DSBs) via microhomology-mediated end joining (MMEJ), has proven to be an exquisitely effective monotherapy in HR-deficient tumor models. In addition, Polθ inhibition (Polθi) can induce tumor-selective radiosensitization, but unlike its monotherapy use, no clinically actionable biomarkers have yet been identified to predict this effect. Here, we profiled 54 cancer cell lines and found that Polθi induces substantial radiosensitization in most models, although with marked variability not explained by indicators of Polθ activity. To pinpoint molecular determinants of radiosensitization by Polθi, we performed a CRISPR knockout screen which revealed loss of the TP53BP1/Shieldin pathway component SHLD2 (FAM35A) as a vulnerability to Polθi combined with RT. We found that SHLD2 is deleted in a subset of human prostate cancers, frequently alongside PTEN loss, an adverse prognostic factor. We demonstrated that SHLD2 loss not only increases sensitivity to RT alone, as reported previously, but also enhances the radiosensitizing effect of Polθi, independently of PTEN status and without requiring HR deficiency. Moreover, our findings support a model in which SHLD2 deficiency increases Polθ dependence following RT, with Polθ activity limiting DSB accumulation and chromosomal instability, via a compensatory mechanism independent of canonical MRE11/CtIP-mediated DNA end resection. In summary, we found that SHLD2 loss is a collateral vulnerability that can be exploited through combined treatment with Polθi and RT.
Insights
Loss of SHLD2 creates a vulnerability to combined DNA polymerase theta inhibition and radiation therapy. This finding identifies a new biomarker for predicting radiosensitization in cancer treatment.
Area of Science:
- Cancer Biology
- DNA Repair Mechanisms
- Radiation Oncology
Background:
- DNA polymerase theta (Polθ) is crucial for DNA double-strand break (DSB) repair via microhomology-mediated end joining (MMEJ).
- Polθ inhibition shows promise as a monotherapy in HR-deficient tumors and can sensitize tumors to radiation, but predictive biomarkers are lacking.
Purpose of the Study:
- To identify molecular determinants of radiosensitization induced by Polθ inhibition (Polθi).
- To investigate the role of SHLD2 loss in Polθi-mediated radiosensitization and its potential as a clinical biomarker.
Main Methods:
- Profiling of 54 cancer cell lines to assess radiosensitization variability.
- CRISPR knockout screening to identify genetic vulnerabilities to Polθi combined with radiation therapy (RT).
- Analysis of SHLD2 deletion in human prostate cancer datasets.
Main Results:
- Loss of SHLD2 (a TP53BP1/Shieldin pathway component) was identified as a vulnerability to combined Polθi and RT.
- SHLD2 deletion, found in a subset of prostate cancers often with PTEN loss, enhances radiosensitization by Polθi, independent of HR deficiency or PTEN status.
- SHLD2 deficiency increases Polθ dependence post-RT, with Polθ activity limiting DSB accumulation via a non-canonical mechanism.
Conclusions:
- SHLD2 loss represents a collateral vulnerability exploitable by combining Polθ inhibition and radiation therapy.
- This finding provides a potential biomarker for patient selection in clinical settings utilizing Polθ inhibitors and radiation.
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