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Updated: Jan 21, 2026

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
Profiling molecular regulators of recurrence in chemorefractory triple-negative breast cancers
Bradley A Hancock1, Yu-Hsiang Chen2, Jeffrey P Solzak1
1Department of Surgery, Indiana University School of Medicine, 980 W. Walnut St. Room C312, Indianapolis, IN, 46202, USA.
Background:
Approximately two thirds of patients with localized triple-negative breast cancer (TNBC) harbor residual disease (RD) after neoadjuvant chemotherapy (NAC) and have a high risk-of-recurrence. Targeted therapeutic development for TNBC is of primary significance as no targeted therapies are clinically indicated for this aggressive subset. In view of this, we conducted a comprehensive molecular analysis and correlated molecular features of chemorefractory RD tumors with recurrence for the purpose of guiding downstream therapeutic development.
Methods:
We assembled DNA and RNA sequencing data from RD tumors as well as pre-operative biopsies, lymphocytic infiltrate, and survival data as part of a molecular correlative to a phase II post-neoadjuvant clinical trial. Matched somatic mutation, gene expression, and lymphocytic infiltrate were assessed before and after chemotherapy to understand how tumors evolve during chemotherapy. Kaplan-Meier survival analyses were conducted categorizing cancers with TP53 mutations by the degree of loss as well as by the copy number of a locus of 18q corresponding to the SMAD2, SMAD4, and SMAD7 genes.
Results:
Analysis of matched somatic genomes pre-/post-NAC revealed chaotic acquisition of copy gains and losses including amplification of prominent oncogenes. In contrast, significant gains in deleterious point mutations and insertion/deletions were not observed. No trends between clonal evolution and recurrence were identified. Gene expression data from paired biopsies revealed enrichment of actionable regulators of stem cell-like behavior and depletion of immune signaling, which was corroborated by total lymphocytic infiltrate, but was not associated with recurrence. Novel characterization of TP53 mutation revealed prognostically relevant subgroups, which were linked to MYC-driven transcriptional amplification. Finally, somatic gains in 18q were associated with poor prognosis, likely driven by putative upregulation of TGFß signaling through the signal transducer SMAD2.
Conclusions:
We conclude TNBCs are dynamic during chemotherapy, demonstrating complex plasticity in subclonal diversity, stem-like qualities, and immune depletion, but somatic alterations of TP53/MYC and TGFß signaling in RD samples are prominent drivers of recurrence, representing high-yield targets for additional interrogation.
Insights
Triple-negative breast cancer (TNBC) shows dynamic changes during chemotherapy, with TP53/MYC and TGFß signaling alterations in residual disease driving recurrence. These findings highlight key targets for future TNBC therapies.
Area of Science:
- Oncology
- Genomics
- Translational Medicine
Background:
- Localized triple-negative breast cancer (TNBC) frequently presents with residual disease (RD) post-neoadjuvant chemotherapy (NAC), conferring a high risk of recurrence.
- Targeted therapies for TNBC are critically needed due to its aggressive nature and lack of current targeted treatments.
- Understanding the molecular landscape of chemorefractory RD is crucial for developing effective therapeutic strategies.
Purpose of the Study:
- To conduct a comprehensive molecular analysis of residual disease (RD) tumors in triple-negative breast cancer (TNBC) patients.
- To correlate molecular features of chemorefractory RD with patient recurrence risk.
- To guide the development of targeted therapies for aggressive TNBC.
Main Methods:
- DNA and RNA sequencing of RD tumors and pre-operative biopsies.
- Assessment of matched somatic mutations, gene expression, and lymphocytic infiltrate before and after NAC.
- Kaplan-Meier survival analyses stratified by TP53 mutation status and 18q locus copy number (SMAD2, SMAD4, SMAD7).
Main Results:
- Chemotherapy induced chaotic genomic alterations in RD tumors, including oncogene amplification, but not significant point mutations.
- Gene expression analysis revealed enrichment of stem-cell regulators and depletion of immune signaling in RD, independent of recurrence.
- TP53 mutations defined prognostically relevant subgroups linked to MYC amplification, and 18q gains correlated with poor prognosis via TGFß/SMAD2 signaling.
Conclusions:
- TNBC exhibits dynamic molecular plasticity during chemotherapy, affecting subclonal diversity, stem-like properties, and immune evasion.
- Somatic alterations in TP53/MYC and TGFß signaling pathways within RD are identified as key drivers of recurrence in TNBC.
- These molecular alterations represent promising, high-yield targets for further investigation and therapeutic development in TNBC.
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