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Updated: Mar 13, 2026

Identification of Transcription Factor Regulators using Medium-Throughput Screening of Arrayed Libraries and a Dual-Luciferase-Based Reporter
Published on: March 27, 2020
Transcriptome- and proteome-oriented identification of dysregulated eIF4G, STAT3, and Hippo pathways altered by
Feixiong Cheng1,2,3, Junfei Zhao1,4, Ariella B Hanker5
1Department of Biomedical Informatics, Vanderbilt University Medical Center, Nashville, TN, 37203, USA.
Purpose:
Phosphatidylinositol 3-kinase (PI3K)/AKT pathway aberrations are common in human breast cancer. Furthermore, PIK3CA mutations are commonly associated with resistance to anti-epidermal growth factor receptor 2 (HER2) or anti-estrogen receptor (ER) agents in HER2 or ER positive (HER2+/ER+) breast cancer. Hence, deciphering the underlying mechanisms of PIK3CA mutations in HER2+/ER+ breast cancer would provide novel insights into elucidating resistance to anti-HER2/ER therapies.
Methods:
In this study, we systematically investigated the biological consequences of PIK3CA H1047R in HER2+/ER+ breast cancer by uniquely incorporating mRNA transcriptomic data from The Cancer Genome Atlas and proteomic data from reverse-phase protein arrays.
Results:
Our integrative bioinformatics analyses revealed that several important pathways such as STAT3 and VEGF/hypoxia were selectively altered by PIK3CA H1047R in HER2+/ER+ breast cancer. Protein differential expression analysis indicated that an elevated eIF4G might promote tumor angiogenesis and growth via regulation of the hypoxia-activated switch in HER2+ PIK3CA H1047R breast cancer. We observed hypo-phosphorylation of EGFR in HER2+ PIK3CA H1047R breast cancer versus HER2+PIK3CAwild-type (PIK3CA WT). In addition, ER and PIK3CA H1047R might cooperate to activate STAT3, MAPK, AKT, and Hippo pathways in ER+ PIK3CA H1047R breast cancer. A higher YAPpS127 level was observed in ER+ PIK3CA H1047R patients than that in an ER+ PIK3CA WT subgroup. By examining breast cancer cell lines having both microarray gene expression and drug treatment data from the Genomics of Drug Sensitivity in Cancer and the Stand Up to Cancer datasets, we found that the elevated YAP1 mRNA expression was associated with the resistance of BCL-2 family inhibitors, but with the sensitivity to MEK/MAPK inhibitors in breast cancer cells.
Conclusions:
In summary, these findings shed light on the functional consequences of PIK3CA H1047R-driven breast tumorigenesis and resistance to the existing therapeutic agents in HER2+/ER+ breast cancer.
Insights
This study reveals how PIK3CA mutations drive breast cancer growth and resistance to therapies. Understanding these mechanisms, including altered pathways like STAT3 and VEGF/hypoxia, is key for developing new treatments.
Area of Science:
- Oncology
- Molecular Biology
- Bioinformatics
Background:
- Phosphatidylinositol 3-kinase (PI3K)/AKT pathway aberrations are frequent in breast cancer.
- PIK3CA mutations are linked to resistance against HER2 or ER therapies in HER2+/ER+ breast cancer.
Purpose of the Study:
- To investigate the biological effects of PIK3CA H1047R mutation in HER2+/ER+ breast cancer.
- To understand PIK3CA's role in resistance to anti-HER2/ER therapies.
Main Methods:
- Integrated analysis of mRNA transcriptomic data (The Cancer Genome Atlas) and proteomic data (reverse-phase protein arrays).
- Bioinformatic analyses of pathways and protein expression.
- Examination of breast cancer cell lines with gene expression and drug sensitivity data.
Main Results:
- PIK3CA H1047R alters STAT3 and VEGF/hypoxia pathways in HER2+/ER+ breast cancer.
- Elevated eIF4G may promote angiogenesis and growth; EGFR phosphorylation is reduced.
- ER and PIK3CA H1047R cooperate to activate STAT3, MAPK, AKT, and Hippo pathways; YAP1 expression correlates with drug resistance/sensitivity.
Conclusions:
- Findings illuminate PIK3CA H1047R-driven breast tumorigenesis.
- These insights explain resistance to current therapies in HER2+/ER+ breast cancer.
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