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Published on: July 25, 2020
Genomic dissection and mutation-specific target discovery for breast cancer PIK3CA hotspot mutations
Adam X Miranda1, Justin Kemp1, Brad A Davidson1
1Department of Medicine, Vanderbilt University Medical Center, Nashville, TN, USA.
Background:
Recent advancements in high-throughput genomics and targeted therapies have provided tremendous potential to identify and therapeutically target distinct mutations associated with cancers. However, to date the majority of targeted therapies are used to treat all functional mutations within the same gene, regardless of affected codon or phenotype.
Results:
In this study, we developed a functional genomic analysis workflow with a unique isogenic cell line panel bearing two distinct hotspot PIK3CA mutations, E545K and H1047R, to accurately identify targetable differences between mutations within the same gene. We performed RNA-seq and ATAC-seq and identified distinct transcriptomic and epigenomic differences associated with each PIK3CA hotspot mutation. We used this data to curate a select CRISPR knock out screen to identify mutation-specific gene pathway vulnerabilities. These data revealed AREG as a E545K-preferential target that was further validated through in vitro analysis and publicly available patient databases.
Conclusions:
Using our multi-modal genomics framework, we discover distinct differences in genomic regulation between PIK3CA hotspot mutations, suggesting the PIK3CA mutations have different regulatory effects on the function and downstream signaling of the PI3K complex. Our results demonstrate the potential to rapidly uncover mutation specific molecular targets, specifically AREG and a proximal gene regulatory region, that may provide clinically relevant therapeutic targets. The methods outlined provide investigators with an integrative strategy to identify mutation-specific targets for the treatment of other oncogenic mutations in an isogenic system.
Insights
This study reveals distinct molecular differences between PIK3CA mutations E545K and H1047R using functional genomics. These findings identify AREG as a potential therapeutic target specific to the E545K mutation.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Oncology
Background:
- High-throughput genomics and targeted therapies offer potential for cancer mutation targeting.
- Current therapies often treat all mutations within a gene similarly, irrespective of specific codon or phenotype.
Purpose of the Study:
- To develop a functional genomic workflow to differentiate targetable differences between PIK3CA hotspot mutations (E545K and H1047R).
- To identify mutation-specific gene pathway vulnerabilities and potential therapeutic targets.
Main Methods:
- Utilized an isogenic cell line panel with distinct PIK3CA mutations (E545K, H1047R).
- Performed RNA-seq and ATAC-seq to identify transcriptomic and epigenomic differences.
- Conducted CRISPR knockout screens to uncover mutation-specific vulnerabilities.
Main Results:
- Identified distinct transcriptomic and epigenomic profiles for E545K and H1047R PIK3CA mutations.
- Discovered AREG as a preferential target for the E545K mutation.
- Validated AREG targeting through in vitro analysis and patient databases.
Conclusions:
- PIK3CA hotspot mutations exhibit distinct genomic regulation and downstream signaling effects.
- Demonstrated the potential to uncover mutation-specific molecular targets like AREG for therapeutic development.
- Presented an integrative strategy for identifying mutation-specific targets in isogenic systems for various oncogenic mutations.
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