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Updated: Oct 30, 2025

In Silico Clinical Trials for Cardiovascular Disease
Published on: May 27, 2022
Identification of candidate biomarkers and therapeutic agents for heart failure by bioinformatics analysis
Vijayakrishna Kolur1, Basavaraj Vastrad2, Chanabasayya Vastrad3
1Vihaan Heart Care & Super Specialty Centre, Vivekananda General Hospital, Deshpande Nagar, Hubli, Karnataka, 580029, India.
Insights
This study identified key genes like ESR1 and PYHIN1 involved in heart failure (HF) progression. These genes may serve as diagnostic biomarkers and therapeutic targets for heart failure.
Area of Science:
- Cardiovascular Biology
- Genomics
- Bioinformatics
Background:
- Heart failure (HF) is a widespread clinical syndrome caused by cardiac overload and injury.
- Millions worldwide are affected by heart failure, necessitating research into its underlying mechanisms.
Purpose of the Study:
- To identify and validate key genes (hub genes) implicated in the development of heart failure.
- To explore potential therapeutic drug molecules for heart failure treatment.
Main Methods:
- Analysis of high-throughput sequencing data (GSE141910) from 366 samples (200 HF, 166 non-HF).
- Identification of differentially expressed genes (DEGs), enrichment analysis (GO, REACTOME), protein-protein interaction (PPI) network construction, and module analysis.
- Construction of gene-miRNA and gene-TF regulatory networks, hub gene validation, and molecular docking studies.
Main Results:
- Identified 881 DEGs (442 upregulated, 439 downregulated) significantly enriched in pathways like biological adhesion and extracellular matrix organization.
- Discovered top hub genes including ESR1, PYHIN1, PPP2R2B, LCK, TP63, PCLAF, CFTR, TK1, ECT2, and FKBP5.
- Module analysis linked HF to the adaptive immune system and neutrophil degranulation; identified prognostic and diagnostic biomarkers.
Conclusions:
- Identified key genes and pathways crucial for heart failure progression.
- Provided new insights into the molecular mechanisms underlying heart failure.
- Validated potential diagnostic biomarkers and therapeutic targets for heart failure.
Introduction:
Heart failure (HF) is a heterogeneous clinical syndrome and affects millions of people all over the world. HF occurs when the cardiac overload and injury, which is a worldwide complaint. The aim of this study was to screen and verify hub genes involved in developmental HF as well as to explore active drug molecules.
Methods:
The expression profiling by high throughput sequencing of GSE141910 dataset was downloaded from the Gene Expression Omnibus (GEO) database, which contained 366 samples, including 200 heart failure samples and 166 non heart failure samples. The raw data was integrated to find differentially expressed genes (DEGs) and were further analyzed with bioinformatics analysis. Gene ontology (GO) and REACTOME enrichment analyses were performed via ToppGene; protein-protein interaction (PPI) networks of the DEGs was constructed based on data from the HiPPIE interactome database; modules analysis was performed; target gene-miRNA regulatory network and target gene-TF regulatory network were constructed and analyzed; hub genes were validated; molecular docking studies was performed.
Results:
A total of 881 DEGs, including 442 up regulated genes and 439 down regulated genes were observed. Most of the DEGs were significantly enriched in biological adhesion, extracellular matrix, signaling receptor binding, secretion, intrinsic component of plasma membrane, signaling receptor activity, extracellular matrix organization and neutrophil degranulation. The top hub genes ESR1, PYHIN1, PPP2R2B, LCK, TP63, PCLAF, CFTR, TK1, ECT2 and FKBP5 were identified from the PPI network. Module analysis revealed that HF was associated with adaptive immune system and neutrophil degranulation. The target genes, miRNAs and TFs were identified from the target gene-miRNA regulatory network and target gene-TF regulatory network. Furthermore, receiver operating characteristic (ROC) curve analysis and RT-PCR analysis revealed that ESR1, PYHIN1, PPP2R2B, LCK, TP63, PCLAF, CFTR, TK1, ECT2 and FKBP5 might serve as prognostic, diagnostic biomarkers and therapeutic target for HF. The predicted targets of these active molecules were then confirmed.
Conclusion:
The current investigation identified a series of key genes and pathways that might be involved in the progression of HF, providing a new understanding of the underlying molecular mechanisms of HF.
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