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Systematic Identification and Assessment of Therapeutic Targets for Breast Cancer Based on Genome-Wide RNA
Yang Liu1, Xiaoyao Yin2, Jing Zhong3
1Research Center for Clinical & Translational Medicine, Beijing 302 Hospital, Beijing 100039, China. liuyang@bmi.ac.cn.
Abstract:
With accumulating public omics data, great efforts have been made to characterize the genetic heterogeneity of breast cancer. However, identifying novel targets and selecting the best from the sizeable lists of candidate targets is still a key challenge for targeted therapy, largely owing to the lack of economical, efficient and systematic discovery and assessment to prioritize potential therapeutic targets. Here, we describe an approach that combines the computational evaluation and objective, multifaceted assessment to systematically identify and prioritize targets for biological validation and therapeutic exploration. We first establish the reference gene expression profiles from breast cancer cell line MCF7 upon genome-wide RNA interference (RNAi) of a total of 3689 genes, and the breast cancer query signatures using RNA-seq data generated from tissue samples of clinical breast cancer patients in the Cancer Genome Atlas (TCGA). Based on gene set enrichment analysis, we identified a set of 510 genes that when knocked down could significantly reverse the transcriptome of breast cancer state. We then perform multifaceted assessment to analyze the gene set to prioritize potential targets for gene therapy. We also propose drug repurposing opportunities and identify potentially druggable proteins that have been poorly explored with regard to the discovery of small-molecule modulators. Finally, we obtained a small list of candidate therapeutic targets for four major breast cancer subtypes, i.e., luminal A, luminal B, HER2+ and triple negative breast cancer. This RNAi transcriptome-based approach can be a helpful paradigm for relevant researches to identify and prioritize candidate targets for experimental validation.
Insights
Researchers developed a new RNA interference (RNAi) transcriptome-based method to identify and prioritize therapeutic targets for breast cancer. This approach systematically assesses gene targets, aiding in the development of targeted therapies for diverse breast cancer subtypes.
Area of Science:
- Genomics
- Cancer Biology
- Bioinformatics
Background:
- Breast cancer exhibits significant genetic heterogeneity, complicating targeted therapy development.
- Identifying and prioritizing novel therapeutic targets remains a challenge due to the lack of systematic discovery and assessment methods.
Purpose of the Study:
- To develop and validate a systematic approach for identifying and prioritizing therapeutic targets in breast cancer.
- To leverage computational and multifaceted assessments for biological validation and therapeutic exploration.
Main Methods:
- Genome-wide RNA interference (RNAi) screening in MCF7 breast cancer cells to establish reference gene expression profiles.
- RNA-sequencing (RNA-seq) analysis of clinical breast cancer patient samples from The Cancer Genome Atlas (TCGA) to generate query signatures.
- Gene set enrichment analysis to identify genes whose knockdown reverses the breast cancer transcriptome.
- Multifaceted assessment for prioritizing gene therapy targets, drug repurposing, and identifying druggable proteins.
Main Results:
- Identified 510 genes whose knockdown significantly altered the breast cancer transcriptome.
- Prioritized potential therapeutic targets for gene therapy and identified novel drug repurposing opportunities.
- Generated a prioritized list of candidate therapeutic targets for luminal A, luminal B, HER2+, and triple-negative breast cancer subtypes.
Conclusions:
- The developed RNAi transcriptome-based approach provides a systematic paradigm for identifying and prioritizing breast cancer therapeutic targets.
- This method facilitates the discovery of novel targets and aids in selecting the most promising candidates for experimental validation and targeted therapy development.
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