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Building Up a High-throughput Screening Platform to Assess the Heterogeneity of HER2 Gene Amplification in Breast Cancers
Published on: December 5, 2017
Treatment of advanced HER2-positive breast cancer: 2018 and beyond
Noam Pondé1, Mariana Brandão2, Georges El-Hachem3
1Academic Promoting Team, Institut Jules Bordet, Blvd de Waterloo 121, 7th Floor., 1000 Brussels, Belgium.
Abstract:
In the 1980s the importance of HER2 signalling to the aberrant behaviour of a subset of breast cancer cells was recognized for the first time and, consequently, a hitherto unknown subtype of breast cancer - HER2-positive (HER2+) breast cancer was identified. The development of the anti-HER2 class of drugs, first with trastuzumab, followed closely by lapatinib, pertuzumab, and T-DM1, has improved outcomes dramatically. Nevertheless, metastatic HER2+ breast cancer remains an incurable disease and new therapeutic options are needed. Additionally, the rapid changes in treatment standards 5 years ago have left unanswered numerous questions, including the "real-life" benefit of pertuzumab and T-DM1, since both the CLEOPATRA and EMILIA trials were conducted in populations that no longer exist in practice and, moreover, on the role of endocrine therapy in HER2+ disease. Furthermore, despite significant research efforts, including translational efforts and new imaging techniques, no predictive biomarkers have been clinically validated and therefore a more refined approach to treatment tailoring remains beyond our reach. Finally, a better understanding of resistance to currently existing anti-HER2 agents and of the role played by the microenvironment (e.g. immune system) and of interconnected signalling pathways (e.g. PI3K-mTOR-AKT) is at the core of clinical trials exploring new drugs and new regimens. These include the combination of anti-HER2 agents and anti-PD-1/PDL-1, PI3K inhibitors and CDK 4/6 inhibitors, as well as a host of new panHER inhibitors, drug antibody conjugates and anti-HER antibodies, which may, in coming years further push the boundaries of what we can do for our patients.
Insights
HER2-positive breast cancer treatment has advanced, but metastatic disease remains incurable. New therapies targeting resistance mechanisms and the tumor microenvironment are crucial for improving patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- HER2 (Human Epidermal growth factor Receptor 2) signaling is crucial in a subset of breast cancers, leading to the identification of HER2-positive (HER2+) breast cancer.
- Anti-HER2 therapies like trastuzumab, lapatinib, pertuzumab, and T-DM1 have significantly improved patient outcomes.
- Despite advances, metastatic HER2+ breast cancer remains incurable, necessitating novel therapeutic strategies.
Purpose of the Study:
- To address unanswered questions regarding the real-world efficacy of current HER2-targeted therapies.
- To explore the role of endocrine therapy in HER2+ breast cancer.
- To investigate resistance mechanisms, the tumor microenvironment's role, and interconnected signaling pathways for developing new treatments.
Main Methods:
- Review of clinical trial data and treatment standards.
- Analysis of translational research and imaging techniques.
- Exploration of emerging therapeutic combinations and novel drug classes.
Main Results:
- Current clinical trial populations for pertuzumab and T-DM1 may not reflect real-world patient demographics.
- Predictive biomarkers for treatment response in HER2+ breast cancer are still lacking.
- Understanding resistance and the tumor microenvironment is key to developing next-generation therapies.
Conclusions:
- Further research is needed to clarify the clinical benefit of existing anti-HER2 agents in contemporary patient populations.
- Development of predictive biomarkers is essential for personalized treatment tailoring in HER2+ breast cancer.
- Future therapeutic strategies will likely involve combinations targeting HER2, immune checkpoints, and key signaling pathways like PI3K-mTOR-AKT.
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Functional groups are groups of atoms with specific chemical properties that occur within organic molecules and are sometimes denoted as “R”. Functional groups can “functionalize” a compound by enabling it to adopt different physical and chemical properties.
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The table below summarizes some of the major functional groups in organic chemistry.

