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Author Spotlight: Exploring Salidroside's Molecular Mechanisms in Breast Cancer Treatment
Published on: June 9, 2023
Molecular Insights of Pathways Resulting from Two Common PIK3CA Mutations in Breast Cancer
Poornima Bhat-Nakshatri1, Chirayu P Goswami2, Sunil Badve3
1Department of Surgery, Indiana University School of Medicine, Indianapolis, Indiana.
Abstract:
The PI3K pathway is activated in approximately 70% of breast cancers. PIK3CA gene mutations or amplifications that affect the PI3K p110α subunit account for activation of this pathway in 20% to 40% of cases, particularly in estrogen receptor alpha (ERα)-positive breast cancers. AKT family of kinases, AKT1-3, are the downstream targets of PI3K and these kinases activate ERα. Although several inhibitors of PI3K have been developed, none has proven effective in the clinic, partly due to an incomplete understanding of the selective routing of PI3K signaling to specific AKT isoforms. Accordingly, we investigated in this study the contribution of specific AKT isoforms in connecting PI3K activation to ERα signaling, and we also assessed the utility of using the components of PI3K-AKT isoform-ERα signaling axis as predictive biomarkers of response to PI3K inhibitors. Using a variety of physiologically relevant model systems with defined natural or knock-in PIK3CA mutations and/or PI3K hyperactivation, we show that PIK3CA-E545K mutations (found in ∼20% of PIK3CA-mutant breast cancers), but not PIK3CA-H1047R mutations (found in 55% of PIK3CA-mutant breast cancers), preferentially activate AKT1. Our findings argue that AKT1 signaling is needed to respond to estrogen and PI3K inhibitors in breast cancer cells with PIK3CA-E545K mutation, but not in breast cancer cells with other PIK3CA mutations. This study offers evidence that personalizing treatment of ER-positive breast cancers to PI3K inhibitor therapy may benefit from an analysis of PIK3CA-E545K-AKT1-estrogen signaling pathways. Cancer Res; 76(13); 3989-4001. ©2016 AACR.
Insights
Specific PIK3CA mutations activate AKT1, crucial for estrogen receptor-positive breast cancer response to PI3K inhibitors. Targeting this pathway may personalize treatment for better outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The PI3K pathway is frequently activated in breast cancer, often via PIK3CA mutations.
- Estrogen receptor alpha (ERα)-positive breast cancers commonly exhibit PI3K pathway activation.
- Understanding PI3K-AKT signaling to ERα is key for effective PI3K inhibitor therapy.
Purpose of the Study:
- Investigate AKT isoform involvement in PI3K-AKT-ERα signaling.
- Determine if PI3K-AKT-ERα pathway components can predict response to PI3K inhibitors.
- Differentiate the roles of specific PIK3CA mutations in pathway activation.
Main Methods:
- Utilized physiologically relevant model systems with defined PIK3CA mutations.
- Studied PI3K hyperactivation and its downstream effects.
- Analyzed the activation of specific AKT isoforms (AKT1-3).
Main Results:
- PIK3CA-E545K mutations preferentially activate AKT1, unlike PIK3CA-H1047R mutations.
- AKT1 signaling is essential for estrogen and PI3K inhibitor response in PIK3CA-E545K mutant cells.
- Other PIK3CA mutations do not show this AKT1 dependency.
Conclusions:
- PIK3CA-E545K mutations uniquely link PI3K activation to AKT1, impacting ERα signaling.
- AKT1 is a critical mediator in PIK3CA-E545K-driven breast cancer.
- Analyzing the PIK3CA-E545K-AKT1-ERα axis may guide personalized PI3K inhibitor treatment for ER-positive breast cancers.
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