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Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
Next-Generation Therapeutic Targets in Triple-Negative Breast Cancer
Kalsoom Mohammed Saleem1, Mahira Firudin Amirova2, Javanshir Ali Rahimov3
1Department of Pharmaceutical Sciences, Riphah International University Faculty of Medicine, Islamabad, Pakistan.
Abstract:
Triple-negative breast cancer (TNBC) lacks estrogen and progesterone receptors, and estrogen receptor/progesterone receptor/human epidermal growth factor receptor 2 expression, and is associated with early relapse, visceral metastasis, and limited targeted options. High-throughput profiling supports TNBC as a collection of molecularly distinct diseases with exploitable vulnerabilities across DNA-damage response, cell-cycle control, receptor tyrosine kinase signaling, metabolism, and anti-tumor immunity. Clinically, immune checkpoint blockade has shifted standards of care in selected settings, and biomarker enrichment is increasingly central to trial design. In parallel, DNA repair-directed approaches, including poly(ADP-ribose) polymerase inhibitors in BRCA1/2-mutant and homologous recombination-deficient tumors, are being extended through rational combinations that intensify replication stress (e.g., ataxia telangiectasia and Rad3-related protein, WEE1, or checkpoint kinase 1 inhibition) to deepen responses and delay resistance. Additional candidate targets, including androgen receptor-driven disease biology, epidermal growth factor receptor, fibroblast growth factor receptor, vascular endothelial growth factor receptor signaling, and emerging antibody-drug conjugate antigens highlight the importance of matching therapy to subtype and tumor microenvironment context. Metabolic reprogramming (glycolysis, fatty-acid oxidation/synthesis, and amino-acid use) intersects with therapy resistance and may provide complementary combination opportunities. In this study, we synthesize recent advances in actionable TNBC pathways, summarize key preclinical and clinical evidence, and propose a pragmatic framework for biomarker-led combinations that integrate DNA repair, cell-cycle, metabolic, and immune vulnerabilities.
Insights
Triple-negative breast cancer (TNBC) is a complex disease with multiple vulnerabilities. This study outlines a framework for targeted combination therapies by integrating DNA repair, cell-cycle, metabolic, and immune strategies.
Area of Science:
- Oncology
- Genetics
- Immunology
Background:
- Triple-negative breast cancer (TNBC) presents challenges due to lack of targeted receptors, early relapse, and metastasis.
- TNBC is a heterogeneous disease with vulnerabilities in DNA repair, cell cycle, metabolism, and immunity.
Purpose of the Study:
- To synthesize recent advances in actionable TNBC pathways.
- To propose a framework for biomarker-led combination therapies.
Main Methods:
- Review of preclinical and clinical evidence on TNBC vulnerabilities.
- Analysis of emerging therapeutic targets and combination strategies.
Main Results:
- TNBC vulnerabilities exist across DNA-damage response, cell-cycle control, signaling pathways, metabolism, and anti-tumor immunity.
- Immune checkpoint blockade and DNA repair-directed therapies (e.g., PARP inhibitors) show clinical promise.
- Combinations intensifying replication stress and targeting specific receptors (AR, EGFR, FGFR, VEGFR) are under investigation.
Conclusions:
- Matching therapy to TNBC subtype and tumor microenvironment is crucial.
- Metabolic reprogramming offers opportunities for combination therapies.
- A biomarker-led framework integrating multiple vulnerabilities can guide future TNBC treatment strategies.
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