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Updated: Apr 12, 2026

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
Resistance to neoadjuvant talazoparib in triple-negative breast cancer by BRN2-induced ATR/STAT3 pathways or SHLD2
Noor M Abdulkareem1, Yan Jiang1, Yuan Qi1,2
1Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030.
Abstract:
Intrinsic and acquired resistance to poly(ADP-ribose) polymerase (PARP) inhibitors (PARPi) remains a major barrier in treating homologous recombination (HR) repair-deficient tumors, including those with germline or somatic BRCA1/2 mutations. Although PARPi are FDA approved for adjuvant treatment of locally advanced or metastatic breast cancer in patients with germline BRCA1/2 mutations, emerging data support their use as monotherapy in the neoadjuvant setting. Promising safety profiles of newer-generation PARPi further support this potential. However, resistance mechanisms specific to the neoadjuvant setting are poorly understood. To address this gap, we leveraged resources from a phase II neoadjuvant clinical trial (NCT03499353), analyzing tumors from patients with germline BRCA1/2 mutant breast tumors before and after six months of talazoparib monotherapy. Whole-transcriptome analyses were performed on these samples. Additionally, we established orthotopic patient-derived xenograft models from a subset of the patient tumors and conducted whole-exome and whole-transcriptome analysis. This integrative approach revealed both known and previously unknown PARPi resistance mechanisms. In one case, overexpression of BRN2, encoding a transcription factor that plays a critical role in neurogenesis, led to activation of ATR/RAD51 and STAT3 pathways, restoring HR repair. BRN2-driven resistance could be reversed with ATR and STAT3 inhibitors, resensitizing cells to talazoparib. In another, an HR repair proficient tumor subclone lacking Shieldin 2 expression expanded during treatment and accounted for intrinsic resistance. Our findings highlight the need to determine intrinsic and anticipate acquired resistance pathways in treatment-naïve tumors and support combining PARPi with targeted agents to improve outcomes in the neoadjuvant setting.
Insights
Resistance to poly(ADP-ribose) polymerase inhibitors (PARPi) in BRCA1/2-mutant breast cancer can be overcome. Novel mechanisms involving BRN2 and Shieldin 2 were identified, suggesting combination therapies for improved neoadjuvant treatment outcomes.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Poly(ADP-ribose) polymerase inhibitors (PARPi) are crucial for treating homologous recombination (HR) repair-deficient tumors, particularly those with BRCA1/2 mutations.
- While PARPi show promise in the neoadjuvant setting for breast cancer, understanding resistance mechanisms is critical for optimizing treatment.
Purpose of the Study:
- To investigate intrinsic and acquired resistance mechanisms to PARPi in the neoadjuvant setting for germline BRCA1/2-mutant breast cancer.
- To identify novel therapeutic targets for overcoming PARPi resistance.
Main Methods:
- Analysis of tumor samples from a phase II neoadjuvant clinical trial (NCT03499353) before and after talazoparib treatment.
- Whole-transcriptome and whole-exome analyses on patient tumors and patient-derived xenograft models.
Main Results:
- Identified BRN2 overexpression activating ATR/RAD51 and STAT3 pathways, leading to HR repair restoration and talazoparib resistance.
- Demonstrated that BRN2-driven resistance can be reversed by ATR and STAT3 inhibitors.
- Discovered expansion of an HR-proficient subclone lacking Shieldin 2 expression as a mechanism of intrinsic resistance.
Conclusions:
- Understanding PARPi resistance pathways, both intrinsic and acquired, is essential for treatment-naïve tumors.
- Combining PARPi with targeted agents like ATR and STAT3 inhibitors holds potential for improving neoadjuvant treatment outcomes in BRCA1/2-mutant breast cancer.
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