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Systems analysis of dynamic transcription factor activity identifies targets for treatment in Olaparib resistant
Joseph T Decker1, Eric C Hobson1, Yining Zhang2
1Department of Biomedical Engineering, University of Michigan, 2200 Bonisteel, 1119 Gerstacker, Ann Arbor 48109, Michigan.
Abstract:
The development of resistance to targeted therapeutics is a challenging issue for the treatment of cancer. Cancers that have mutations in BRCA, a DNA repair protein, have been treated with poly(ADP-ribose) polymerase (PARP) inhibitors, which target a second DNA repair mechanism with the aim of inducing synthetic lethality. While these inhibitors have shown promise clinically, the development of resistance can limit their effectiveness as a therapy. This study investigated mechanisms of resistance in BRCA-mutated cancer cells (HCC1937) to Olaparib (AZD2281) using TRACER, a technique for measuring dynamics of transcription factor (TF) activity in living cells. TF activity was monitored in the parental HCC1937 cell line and two distinct resistant cell lines, one with restored wild-type BRCA1 and one with acquired resistance independent of BRCA1 for 48 h during treatment with Olaparib. Partial least squares discriminant analysis (PLSDA) was used to categorize the three cell types based on TF activity, and network analysis was used to investigate the mechanism of early response to Olaparib in the study cells. NOTCH signaling was identified as a common pathway linked to resistance in both Olaparib-resistant cell types. Western blotting confirmed upregulation of NOTCH protein, and sensitivity to Olaparib was restored through co-treatment with a gamma secretase inhibitor. The identification of NOTCH signaling as a common pathway contributing to PARP inhibitor resistance by TRACER indicates the efficacy of transcription factor dynamics in identifying targets for intervention in treatment-resistant cancer and provides a new method for determining effective strategies for directed chemotherapy. Biotechnol. Bioeng. 2017;114: 2085-2095. © 2017 Wiley Periodicals, Inc.
Insights
Resistance to cancer therapeutics like PARP inhibitors is a challenge. This study found NOTCH signaling drives resistance in BRCA-mutated cancer cells, offering new therapeutic targets for overcoming treatment failure.
Area of Science:
- Oncology
- Molecular Biology
- Biotechnology
Background:
- Targeted cancer therapies, including poly(ADP-ribose) polymerase (PARP) inhibitors for BRCA-mutated cancers, face challenges due to acquired resistance.
- Understanding resistance mechanisms is crucial for improving cancer treatment efficacy.
Purpose of the Study:
- To investigate mechanisms of resistance to the PARP inhibitor Olaparib in BRCA-mutated cancer cells.
- To identify novel therapeutic targets for overcoming PARP inhibitor resistance.
Main Methods:
- Utilized TRACER (Transcription Factor Activity Measurement in Living Cells) to monitor transcription factor dynamics in Olaparib-sensitive and resistant HCC1937 cells.
- Employed Partial Least Squares Discriminant Analysis (PLSDA) for cell type categorization and network analysis to explore early response mechanisms.
Main Results:
- NOTCH signaling was identified as a common pathway associated with Olaparib resistance in both BRCA1-restored and BRCA1-independent resistant cell lines.
- Western blotting confirmed NOTCH protein upregulation in resistant cells.
- Co-treatment with a gamma secretase inhibitor restored Olaparib sensitivity.
Conclusions:
- Transcription factor dynamics, as measured by TRACER, are effective in identifying therapeutic targets for treatment-resistant cancers.
- NOTCH signaling represents a viable target for overcoming PARP inhibitor resistance in BRCA-mutated cancers, paving the way for new combination therapies.
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