ArticleFrontiers in cardiovascular medicine2022
Expression pattern and diagnostic value of ferroptosis-related genes in acute myocardial infarction.
Article in Frontiers in cardiovascular medicine, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 24 papers.
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Who cites it
24 citing papers in PubMed, 42 citations in OpenAlex.
- Bioinformatics and Experimental Validation of Diagnostic Marker Genes for Myocardial Infarction and Analysis of Their Immune Cell Infiltration.Biochemical genetics · 2026Article
- SPINK5 promotes sensitivity to cisplatin by inducing ferroptosis in head and neck carcinoma.Cancer gene therapy · 2026Article
- Extracellular Vesicles in Myocardial Infarction: Dual Role in Ferroptosis Regulation and In Vivo Imaging.Diagnostics (Basel, Switzerland) · 2026Review
- Pathogenic glycosyltransferase genes and potential therapeutic drugs in pressure overload-induced heart failure.ESC heart failure · 2025Article
- Dapagliflozin improves diabetic kidney disease by inhibiting ferroptosis through β-hydroxybutyrate production.Renal failure · 2025Article
- Transcriptomic exploration of key genes related to mitochondria and ferroptosis in inflammatory bowel disease and experimental validation.Scientific reports · 2025Article
- Identification and validation of feature genes of acute myocardial infarction based on ferroptosis-related genes.European journal of medical research · 2025Article
- KDM6B promotes ferroptosis in rheumatoid arthritis fibroblast-like synoviocytes via the miR-128-3p/SLC7A11 axis through H3K27me3 modification.Journal of orthopaedic surgery and research · 2025Article
- ATG7-induced autophagy inhibits ferroptosis and promotes the progression of colorectal adenocarcinoma.Discover oncology · 2025Article
- Identification of mitophagy-related genes in patients with acute myocardial infarction.Hereditas · 2025Article
- Platelet-Derived Microvesicles Mediate Cardiomyocyte Ferroptosis by Transferring ACSL1 During Acute Myocardial Infarction.Molecular biotechnology · 2025Article
- Influence of Mesalazine on Ferroptosis-Related Gene Expression in In Vitro Colorectal Cancer Culture.Biomedicines · 2025Article
- Ferroptosis genes and ST-segment elevation myocardial infarction outcomes: A predictive signature.Heliyon · 2025Article
- Identification and validation of biomarkers associated with mitochondrial dysfunction and ferroptosis in rat spinal cord injury.Frontiers in neurology · 2025Article
- Neutrophil-related IL1R2 gene predicts the occurrence and early progression of myocardial infarction.Frontiers in cardiovascular medicine · 2025Article
- Exploring the Potential Regulatory Mechanisms of Mitophagy in Ischemic Cardiomyopathy.International journal of general medicine · 2025Article
- Unveiling the Molecular Mechanisms of Rosacea: Insights From Transcriptomics and In Vitro Experiments.Journal of cosmetic dermatology · 2025Article
- Identification and characterization of novel ferroptosis-related genes in acute myocardial infarction.Human genomics · 2024Article
- Expression characteristics of lipid metabolism-related genes and correlative immune infiltration landscape in acute myocardial infarction.Scientific reports · 2024Article
- Ferroptosis-related gene MAPK3 is associated with the neurological outcome after cardiac arrest.PloS one · 2024Article
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Authors and funding
10 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Background: Ferroptosis is a form of regulatory cell death (RCD) caused by iron-dependent lipid peroxidation. The role of ferroptosis in the process of acute myocardial infarction (AMI) is still unclear and requires further study. Therefore, it is helpful to identify ferroptosis related genes (FRGs) involved in AMI and explore their expression patterns and molecular mechanisms. Methods: The AMI-related microarray datasets GSE66360 and GSE61144 were obtained using the Gene Expression Omnibus (GEO) online database. GO annotation, KEGG pathway enrichment analysis and Protein-protein interaction (PPI) analysis were performed for the common significant differential expression genes (CoDEGs) in these two datasets. The FRGs were obtained from the FerrDb V2 and the differentially expressed FRGs were used to identify potential biomarkers by receiver operating characteristic (ROC) analysis. The expression of these FRGs was verified using external dataset GSE60993 and GSE775. Finally, the expression of these FRGs was further verified in myocardial hypoxia model. Results: A total of 131 CoDEGs were identified and these genes were mainly enriched in the pathways of "inflammatory response," "immune response," "plasma membrane," "receptor activity," "protein homodimerization activity," "calcium ion binding," "Phagosome," "Cytokine-cytokine receptor interaction," and "Toll-like receptor signaling pathway." The top 7 hub genes ITGAM, S100A12, S100A9, TLR2, TLR4, TLR8, and TREM1 were identified from the PPI network. 45 and 14 FRGs were identified in GSE66360 and GSE61144, respectively. FRGs ACSL1, ATG7, CAMKK2, GABARAPL1, KDM6B, LAMP2, PANX2, PGD, PTEN, SAT1, STAT3, TLR4, and ZFP36 were significantly differentially expressed in external dataset GSE60993 with AUC ≥ 0.7. Finally, ALOX5, CAMKK2, KDM6B, LAMP2, PTEN, PTGS2, and ULK1 were identified as biomarkers of AMI based on the time-gradient transcriptome dataset of AMI mice and the cellular hypoxia model. Conclusion: In this study, based on the existing datasets, we identified differentially expressed FRGs in blood samples from patients with AMI and further validated these FRGs in the mouse time-gradient transcriptome dataset of AMI and the cellular hypoxia model. This study explored the expression pattern and molecular mechanism of FRGs in AMI, providing a basis for the accurate diagnosis of AMI and the selection of new therapeutic targets.
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