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Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Single-cell and multi-omics integration reveals cholesterol biosynthesis as a synergistic target with HER2 in
Tzu-Yang Tseng1, Chiao-Hui Hsieh1, Jie-Yu Liu1
1Department of Life Science, National Taiwan University, Taipei, Taiwan.
Abstract:
Breast cancer stands as one of the most prevalent malignancies affecting women. Alterations in molecular pathways in cancer cells represent key regulatory disruptions that drive malignancy, influencing cancer cell survival, proliferation, and potentially modulating therapeutic responsiveness. Therefore, decoding the intricate molecular mechanisms and identifying novel therapeutic targets through systematic computational approaches are essential steps toward advancing effective breast cancer treatments. In this study, we developed an integrative computational framework that combines single-cell RNA sequencing (scRNA-seq) and multi-omics analyses to delineate the functional characteristics of malignant cell subsets in breast cancer patients. Our analyses revealed a significant correlation between cholesterol biosynthesis and HER2 expression in malignant breast cancer cells, supported by proteomics data, gene expression profiles, drug treatment scores, and cell-surface HER2 intensity measurements. Given previous evidence linking cholesterol biosynthesis to HER2 membrane dynamics, we proposed a combinatorial strategy targeting both pathways. Experimental validation through clonogenic and viability assays demonstrated that simultaneous inhibition of cholesterol biosynthesis (via statins) and HER2 (via Neratinib) synergistically reduced malignant breast cancer cells, even in HER2-negative contexts. Through systematic analysis of scRNA-seq and multi-omics data, our study computationally identified and experimentally validated cholesterol biosynthesis and HER2 as novel combinatorial therapeutic targets in breast cancer. This data-driven approach highlights the potential of leveraging multiple molecular profiling techniques to uncover previously unexplored treatment strategies.
Insights
This study found that targeting cholesterol biosynthesis and HER2 pathways together can effectively reduce malignant breast cancer cells. This combinatorial approach offers a novel therapeutic strategy for breast cancer treatment.
Area of Science:
- Oncology
- Computational Biology
- Molecular Biology
Background:
- Breast cancer is a prevalent malignancy with complex molecular drivers affecting treatment response.
- Understanding molecular alterations is crucial for identifying new therapeutic targets.
- Computational approaches integrating multi-omics data can reveal novel insights into cancer biology.
Purpose of the Study:
- To develop an integrative computational framework using single-cell RNA sequencing (scRNA-seq) and multi-omics data.
- To identify and validate novel combinatorial therapeutic targets in breast cancer.
- To explore the link between cholesterol biosynthesis and HER2 expression in malignant cells.
Main Methods:
- Integrated computational analysis of scRNA-seq and multi-omics data.
- Proteomics, gene expression profiling, and drug treatment scoring.
- Experimental validation using clonogenic and viability assays with statins and Neratinib.
Main Results:
- A significant correlation was identified between cholesterol biosynthesis and HER2 expression in malignant breast cancer cells.
- Simultaneous inhibition of cholesterol biosynthesis and HER2 synergistically reduced malignant breast cancer cell viability.
- This synergistic effect was observed even in HER2-negative breast cancer contexts.
Conclusions:
- Cholesterol biosynthesis and HER2 are identified as novel combinatorial therapeutic targets in breast cancer.
- An integrative computational approach can uncover previously unexplored treatment strategies.
- Targeting both pathways offers a promising new therapeutic avenue for breast cancer, including HER2-negative cases.
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