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.

Abstract

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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