ArticleAging2024
A lactate metabolism-related gene signature to diagnose osteoarthritis based on machine learning combined with experimental validation.
Article in Aging, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- SLC25A12 mitigates mitochondrial dysfunction in myoblast senescence, and alleviates cuproptosis-related changes under copper stress.Biology direct · 2026Article
- Lactate regulates osteoclastogenesis via H3k18la in osteoarthritis.International journal of molecular medicine · 2026Article
- The emerging role of lactate in skeletal homeostasis and disorders: Integrated mechanisms and translational opportunities.Journal of orthopaedic translation · 2026Review
- Smart Nanodelivery Systems for Immunometabolic Modulation in Osteoarthritis.Exploration (Beijing, China) · 2026Review
- Identification and validation of biomarkers associated with cellular senescence and demethylation in acute myocardial infarction.Scientific reports · 2025Article
- Development and validation of an interpretable shap-based machine learning model for predicting postoperative complications in laryngeal cancer.BMC surgery · 2025Article
- Integrated bioinformatics and network pharmacology to identify and validate macrophage polarization related hub genes in the treatment of osteoarthritis with Astragalus membranaceus.Journal of orthopaedic surgery and research · 2025Article
- A six-gene expression signature in peripheral blood mononuclear cells effectively diagnoses osteoarthritis.Frontiers in medicine · 2025Article
- Development and validation of a novel nutrition-inflammation prognostic score for predicting 30-day mortality in critically ill stroke patients.Frontiers in nutrition · 2025Article
- Association analysis between nutritional factors within the genome and the risk of osteoarthritis.Frontiers in nutrition · 2025Article
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4 authors.
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Abstract
backgroundLactate is gradually proved as the essential regulator in intercellular signal transduction, energy metabolism reprogramming, and histone modification. This study aims to clarify the diagnosis value of lactate metabolism-related genes in osteoarthritis (OA).
methodsLactate metabolism-related genes were retrieved from the MSigDB. GSE51588 was downloaded from the Gene Expression Omnibus (GEO) as the training dataset. GSE114007, GSE117999, and GSE82107 datasets were adopted for external validation. Genomic difference detection, protein-protein interaction network analysis, LASSO, SVM-RFE, Boruta, and univariate logistic regression (LR) analyses were used for feature selection. Multivariate LR, Random Forest (RF), Support Vector Machine (SVM), and XGBoost (XGB) were used to develop the multiple-gene diagnosis models. 12 control and 12 OA samples were collected from the local hospital for re-verification. The transfection assays were conducted to explore the regulatory ability of the gene to the apoptosis and vitality of chondrocytes.
resultsThrough the bioinformatical analyses and machine learning algorithms, SLC2A1 and NDUFB9 of the 273 lactate metabolism-related genes were identified as the significant diagnosis biomarkers. The LR, RF, SVM, and XGB models performed impressively in the cohorts (AUC > 0.7). The local clinical samples indicated that SLC2A1 and NDUFB9 were both down-regulated in the OA samples (both P < 0.05). The knockdown of NDUFB9 inhibited the viability and promoted the apoptosis of the CHON-001 cells treated with IL-1beta (both P < 0.05).
conclusionsA lactate metabolism-related gene signature was constructed to diagnose OA, which was validated in multiple independent cohorts, local clinical samples, and cellular functional experiments.
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