Identifying Hub Genes Associated with Neoadjuvant Chemotherapy Resistance in Breast Cancer and Potential Drug
Trishna Saha Detroja1, Rajesh Detroja1,2, Sumit Mukherjee3
1The Azrieli Faculty of Medicine, Bar-Ilan University, Safed 1311502, Israel.
Abstract:
Breast cancer is the second leading cause of morbidity and mortality in women worldwide. Despite advancements in the clinical application of neoadjuvant chemotherapy (NAC), drug resistance remains a major concern hindering treatment efficacy. Thus, identifying the key genes involved in driving NAC resistance and targeting them with known potential FDA-approved drugs could be applied to advance the precision medicine strategy. With this aim, we performed an integrative bioinformatics study to identify the key genes associated with NAC resistance in breast cancer and then performed the drug repurposing to identify the potential drugs which could use in combination with NAC to overcome drug resistance. In this study, we used publicly available RNA-seq datasets from the samples of breast cancer patients sensitive and resistant to chemotherapy and identified a total of 1446 differentially expressed genes in NAC-resistant breast cancer patients. Next, we performed gene co-expression network analysis to identify significantly co-expressed gene modules, followed by MCC (Multiple Correlation Clustering) clustering algorithms and identified 33 key hub genes associated with NAC resistance. mRNA-miRNA network analysis highlighted the potential impact of these hub genes in altering the regulatory network in NAC-resistance breast cancer cells. Further, several hub genes were found to be significantly involved in the poor overall survival of breast cancer patients. Finally, we identified FDA-approved drugs which could be useful for potential drug repurposing against those hub genes. Altogether, our findings provide new insight into the molecular mechanisms of NAC resistance and pave the way for drug repurposing techniques and personalized treatment to overcome NAC resistance in breast cancer.
Insights
This study identifies key genes driving neoadjuvant chemotherapy (NAC) resistance in breast cancer using bioinformatics. It also finds FDA-approved drugs for repurposing to overcome this resistance, advancing personalized breast cancer treatment.
Area of Science:
- Oncology
- Bioinformatics
- Genomics
Background:
- Breast cancer poses a significant global health challenge, with neoadjuvant chemotherapy (NAC) efficacy limited by drug resistance.
- Overcoming NAC resistance is crucial for improving treatment outcomes and survival rates in breast cancer patients.
Purpose of the Study:
- To identify key genes associated with NAC resistance in breast cancer through an integrative bioinformatics approach.
- To perform drug repurposing to identify potential FDA-approved drugs that can be combined with NAC to overcome resistance.
Main Methods:
- Analysis of RNA-seq datasets from chemotherapy-sensitive and resistant breast cancer patients.
- Gene co-expression network analysis, Multiple Correlation Clustering (MCC) to identify hub genes.
- mRNA-miRNA network analysis and survival analysis.
Main Results:
- Identified 1446 differentially expressed genes in NAC-resistant breast cancer.
- Discovered 33 key hub genes significantly associated with NAC resistance.
- Highlighted the role of hub genes in altering regulatory networks and linked several to poor patient survival.
- Identified potential FDA-approved drugs for repurposing against these hub genes.
Conclusions:
- The study provides novel insights into the molecular mechanisms underlying NAC resistance in breast cancer.
- Findings support drug repurposing strategies and personalized treatment approaches to combat NAC resistance.
- Identified therapeutic targets and drugs offer potential for combination therapies to improve breast cancer treatment efficacy.
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