Related Experiment Video
Updated: May 2, 2026

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
Nuclear epidermal growth factor receptor is a functional molecular target in triple-negative breast cancer
Toni M Brand1, Mari Iida, Emily F Dunn
1Authors' Affiliations: Departments of Human Oncology and Pathology and Laboratory Medicine, University of Wisconsin School of Medicine and Public Health, Department of Medicine, University of Wisconsin Carbone Cancer Center, Madison, Wisconsin; and Division of Hematology/Oncology, Department of Medicine, University of Chicago, Chicago, Illinois.
Abstract:
Triple-negative breast cancer (TNBC) is a subclass of breast cancers (i.e., estrogen receptor-negative, progesterone receptor-negative, and HER2-negative) that have poor prognosis and very few identified molecular targets. Strikingly, a high percentage of TNBCs overexpresses the EGF receptor (EGFR), yet EGFR inhibition has yielded little clinical benefit. Over the last decade, advances in EGFR biology have established that EGFR functions in two distinct signaling pathways: (i) classical membrane-bound signaling and (ii) nuclear signaling. Previous studies have demonstrated that nuclear EGFR (nEGFR) can enhance resistance to anti-EGFR therapies and is correlated with poor overall survival in breast cancer. On the basis of these findings, we hypothesized that nEGFR may promote intrinsic resistance to cetuximab in TNBC. To examine this question, a battery of TNBC cell lines and human tumors were screened and found to express nEGFR. Knockdown of EGFR expression demonstrated that TNBC cell lines retained dependency on EGFR for proliferation, yet all cell lines were resistant to cetuximab. Furthermore, Src Family Kinases (SFKs) influenced nEGFR translocation in TNBC cell lines and in vivo tumor models, where inhibition of SFK activity led to potent reductions in nEGFR expression. Inhibition of nEGFR translocation led to a subsequent accumulation of EGFR on the plasma membrane, which greatly enhanced sensitivity of TNBC cells to cetuximab. Collectively, these data suggest that targeting both the nEGFR signaling pathway, through the inhibition of its nuclear transport, and the classical EGFR signaling pathway with cetuximab may be a viable approach for the treatment of patients with TNBC.
Insights
Nuclear EGFR (nEGFR) drives resistance to cetuximab in triple-negative breast cancer (TNBC). Inhibiting nEGFR nuclear transport restores EGFR membrane signaling, enhancing cetuximab sensitivity for TNBC treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Triple-negative breast cancer (TNBC) lacks targeted therapies and has a poor prognosis.
- Epidermal Growth Factor Receptor (EGFR) is overexpressed in TNBC, but EGFR inhibition shows limited clinical benefit.
- EGFR signaling occurs via classical membrane pathways and nuclear translocation (nEGFR), with nEGFR linked to poor survival and therapy resistance.
Purpose of the Study:
- To investigate the role of nuclear EGFR (nEGFR) in promoting intrinsic resistance to cetuximab in TNBC.
- To explore the potential of targeting nEGFR signaling as a therapeutic strategy for TNBC.
Main Methods:
- Screening of TNBC cell lines and human tumors for nEGFR expression.
- EGFR knockdown experiments to assess proliferation dependency.
- Investigating the influence of Src Family Kinases (SFKs) on nEGFR translocation.
- Evaluating the effect of inhibiting nEGFR translocation on cetuximab sensitivity in vitro and in vivo.
Main Results:
- TNBC cell lines express nEGFR and are intrinsically resistant to cetuximab, despite EGFR dependency for proliferation.
- SFKs were found to influence nEGFR translocation in TNBC models.
- Inhibition of SFK activity reduced nEGFR expression.
- Blocking nEGFR nuclear transport increased EGFR at the plasma membrane, significantly enhancing TNBC cell sensitivity to cetuximab.
Conclusions:
- Nuclear EGFR signaling contributes to intrinsic resistance to cetuximab in TNBC.
- Targeting nEGFR nuclear transport, in combination with cetuximab, may represent a promising therapeutic strategy for TNBC patients.
- Dual targeting of nEGFR and classical EGFR pathways offers a potential avenue for improving TNBC treatment outcomes.
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