ArticleFrontiers in aging neuroscience2023
Construction and evaluation of Alzheimer's disease diagnostic prediction model based on genes involved in mitophagy.
Article in Frontiers in aging neuroscience, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 20 papers.
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20 citing papers in PubMed, 21 citations in OpenAlex.
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- Splicing factor Sf3b1 facilitates maintenance of neuronal dendrites by modulating mitochondrial health.Cellular and molecular life sciences : CMLS · 2025Article
- Identification of biomarkers associated with mitophagy in bladder cancer.Scientific reports · 2025Article
- Gene Expression Changes as Biomarkers of Immunosenescence in Bulgarian Individuals of Active Age.Biomedicines · 2025Article
- Transcriptome analysis and RT-qPCR validation of mitophagy-related key genes in the progression of diabetic retinopathy.Frontiers in endocrinology · 2025Article
- Identification of mitophagy-related biomarkers in severe acute pancreatitis: integration of WGCNA, machine learning algorithms and scRNA-seq.Frontiers in immunology · 2025Article
- Association between ATG16L1 rs2241880(T300A) and rs4663421 and ANCA‑associated vasculitis in the Guangxi population of China: Propensity score matching analysis.Biomedical reports · 2025Article
- A Six-Gene Signature Related to Liquid-Liquid Phase Separation for Diagnosis of Alzheimer's Disease.Actas espanolas de psiquiatria · 2024Article
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- Integrating Multi-omics to Identify Age-Related Macular Degeneration Subtypes and Biomarkers.Journal of molecular neuroscience : MN · 2024Article
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- Integrating Multi-omics Data for Alzheimer's Disease to Explore Its Biomarkers Via the Hypergraph-Regularized Joint Deep Semi-Non-Negative Matrix Factorization Algorithm.Journal of molecular neuroscience : MN · 2024Article
- Construction and validation of a diagnostic model for rheumatoid arthritis based on mitochondrial autophagy-related genes.Heliyon · 2024Article
- Identification of Mitophagy-Associated Genes for the Prediction of Metabolic Dysfunction-Associated Steatohepatitis Based on Interpretable Machine Learning Models.Journal of inflammation research · 2024Article
- Analyses of single-cell and bulk RNA sequencing combined with machine learning reveal the expression patterns of disrupted mitophagy in schizophrenia.Frontiers in psychiatry · 2024Article
- Identification of Blood Biomarkers Related to Energy Metabolism and Construction of Diagnostic Prediction Model Based on Three Independent Alzheimer's Disease Cohorts.Journal of Alzheimer's disease : JAD · 2024Article
- Analysis of Immune and Prognostic-Related lncRNA PRKCQ-AS1 for Predicting Prognosis and Regulating Effect in Sepsis.Journal of inflammation research · 2024Article
- Prioritization of risk genes for Alzheimer's disease: an analysis framework using spatial and temporal gene expression data in the human brain based on support vector machine.Frontiers in genetics · 2023Article
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5 authors at 1 institution in 1 country.
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Abstract
Introduction: Alzheimer's disease (AD) is a common neurodegenerative disease. The concealment of the disease is the difficulty of its prevention and treatment. Previous studies have shown that mitophagy is crucial to the development of AD. However, there is a lack of research on the identification and clinical significance of mitophagy-related genes in AD. Therefore, the purpose of this study was to identify the mitophagy-related genes with the diagnostic potential for AD and establish a diagnostic model for AD. Methods: Firstly, we download the AD gene expression profile from Gene Expression Omnibus (GEO). Limma, PPI, functional enrichment analysis and WGCNA were used to screen the differential expression of mitophagy-related AD gene. Then, machine learning methods (random forest, univariate analysis, support vector machine, LASSO regression and support vector machine classification) were used to identify diagnostic markers. Finally, the diagnostic model was established and evaluated by ROC, multiple regression analysis, nomogram, calibration curve and other methods. Moreover, multiple independent datasets, AD cell models and AD clinical samples were used to verify the expression level of characteristic genes in the diagnostic model. Results: In total, 72 differentially expressed mitophagy-related related genes were identified, which were mainly involved in biological functions such as autophagy, apoptosis and neurological diseases. Four mitophagy-related genes (OPTN, PTGS2, TOMM20, and VDAC1) were identified as biomarkers. A diagnostic prediction model was constructed, and the reliability of the model was verified by receiver operating characteristic (ROC) curve analysis of GSE122063 and GSE63061. Then, we combine four mitophagy-related genes with age to establish a nomogram model. The ROC, C index and calibration curve show that the model has good prediction performance. Finally, multiple independent datasets, AD cell model samples and clinical peripheral blood samples confirmed that the expression levels of four mitophagy-related genes were consistent with the results of bioinformatics analysis. Discussion: The analysis results and diagnostic model of this study are helpful for the follow-up clinical work and mechanism research of AD.
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