Resistance to neoadjuvant talazoparib in triple-negative breast cancer by BRN2-induced ATR/STAT3 pathways or SHLD2 subclone expansion
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.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (15)
Noor M. Abdulkareem
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Yan Jiang
Experimental Center for Advanced Materials, School of Materials Science and Engineering
Yuan Qi
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Xuan Liu
School of Energy and Power Engineering
Xiaomei Zhang
Shirong Cai
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Jiansu Shao
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Sabrina Jeter-Jones
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Amanda L. Rinkenbaugh
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Chun-Chun Cheng
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Faiza Hancock
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center
Jill Schwartz
Department of Breast Medical Oncology, The University of Texas MD Anderson Cancer Center
Jennifer K. Litton
Division of Medical Oncology The University of Texas MD Anderson Cancer Center Houston Texas USA
Jeffrey T. Chang
Helen Piwnica-Worms
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center