Regulation of Apoptosis by HER2 in Breast Cancer
Richard L Carpenter1, Hui-Wen Lo2
1Division of Surgical Sciences, Department of Surgery, Duke University School of Medicine, Durham, North Carolina 27710, USA.
Abstract:
HER2 is a trans-membrane receptor tyrosine kinase that activates multiple growth-promoting signaling pathways including PI3K-AKT and Ras-MAPK. Dysregulation of HER2 is a frequent occurrence in breast cancer that is associated with poor patient outcomes. A primary function of HER2 is suppressing apoptosis to enhance cell survival giving rise to uncontrolled proliferation and tumor growth. There has been much investigation into the mechanisms by which apoptosis is suppressed by HER2 in hopes of finding clinical targets for HER2-positive breast cancers as these cancers often become resistant to therapies that directly target HER2. Several apoptotic mechanisms have been shown to be deregulated in HER2-overexpressing cells with examples in both the intrinsic and extrinsic apoptotic pathways. HER2-mediated activation of PI3K-AKT signaling is required for many of the mechanisms HER2 uses to suppress apoptosis. HER2 overexpression is correlated with increases in anti-apoptotic Bcl-2 proteins including Bcl-2, Bcl-xL, and Mcl-1. HER2 also suppresses p53-mediated apoptosis by upregulation of MDM2 by activation of AKT. In addition, survivin expression is often increased with HER2 overexpression leading to inhibition of caspase activation. There is also recent evidence to suggest HER2 can directly influence apoptosis by translocation to the mitochondria to inhibit cytochrome c release. HER2 can also suppress cellular reaction to death ligands, especially TRAIL-induced apoptosis. Elucidation of the mechanisms of apoptotic suppression by HER2 suggest that clinical treatment will likely need to target multiple components of these pathways as there is redundancy in HER2-mediated cell survival. Several therapies have attempted to target Bcl-2 proteins that have promising pre-clinical results. Next-generation HER2 targeting therapies include irreversible pan-ERBB inhibitors and antibody-drug conjugates, such as T-DM1 that has very promising clinical results thus far. Further investigation should include elucidating mechanisms of resistance to HER2-targeted therapies and targeting of multiple components of HER2-mediated cell survival.
Insights
HER2 receptor tyrosine kinase dysregulation in breast cancer promotes tumor growth by suppressing apoptosis. Targeting multiple survival pathways is key for effective treatment against HER2-positive cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- HER2 (Human Epidermal growth factor Receptor 2) is a receptor tyrosine kinase.
- HER2 dysregulation is common in breast cancer, correlating with poor outcomes.
- HER2 promotes tumor growth by suppressing apoptosis, enhancing cell survival.
Purpose of the Study:
- Investigate mechanisms of apoptosis suppression by HER2.
- Identify clinical targets for HER2-positive breast cancers, which often develop therapy resistance.
- Understand HER2-mediated cell survival pathways to inform treatment strategies.
Main Methods:
- Review of scientific literature on HER2 signaling and apoptosis.
- Analysis of HER2-mediated activation of PI3K-AKT and Ras-MAPK pathways.
- Examination of HER2's role in intrinsic and extrinsic apoptotic pathways.
Main Results:
- HER2 overexpression increases anti-apoptotic proteins (Bcl-2, Bcl-xL, Mcl-1) and survivin.
- HER2 upregulates MDM2 via AKT, suppressing p53-mediated apoptosis.
- HER2 can translocate to mitochondria, inhibiting cytochrome c release and TRAIL-induced apoptosis.
Conclusions:
- Targeting multiple components of HER2-mediated cell survival pathways is necessary due to redundancy.
- Therapies targeting Bcl-2 proteins show promise.
- Next-generation therapies like irreversible pan-ERBB inhibitors and T-DM1 demonstrate clinical efficacy.
- Further research should focus on resistance mechanisms and combination therapies.
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