ArticleFrontiers in immunology2024
Multi-omics analysis and experimental validation of the value of monocyte-associated features in prostate cancer prognosis and immunotherapy.
Article in Frontiers in immunology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 27 papers.
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Who cites it
27 citing papers in PubMed.
- Key hub genes identification and therapeutic target prediction via multi-validation for the senescence-inflammation axis in prostate cancer.Scientific reports · 2026Article
- Differentially expressed genes and therapeutic targets for nonalcoholic fatty liver disease from transcriptomic techniques.Medicine · 2025Article
- The LINC01270/miR-29c-3p/LOX axis drives gastric cancer progression: Bioinformatics and experimental validation.Biochemistry and biophysics reports · 2025Article
- Comprehensive analysis of glycometabolism-related genes reveals PLOD2 as a prognostic biomarker and therapeutic target in gastric cancer.BMC gastroenterology · 2025Article
- Genetic variation reveals the therapeutic potential of BRSK2 in idiopathic pulmonary fibrosis.BMC medicine · 2025Article
- The role of endothelial cell-related gene COL1A1 in prostate cancer diagnosis and immunotherapy: insights from machine learning and single-cell analysis.Biology direct · 2025Article
- Acute aerobic exercise alters serum protein distribution in colorectal cancer patients.Frontiers in oncology · 2025Article
- Association between ethylene oxide exposure and serum sex hormone levels measured in a reference sample of the US general population.Frontiers in endocrinology · 2025Article
- Nervous system-gut microbiota-immune system axis: future directions for preventing tumor.Frontiers in immunology · 2025Review
- Naples Prognostic Score (NPS) as a Novel Prognostic Score for Stage III Breast Cancer Patients: A Real-World Retrospective Study.Breast cancer (Dove Medical Press) · 2025Article
- Exploring the link between serum uric acid and endometriosis: a cross-sectional analysis utilizing NHANES data from 1999-2006.Frontiers in endocrinology · 2025Article
- Development and functional validation of a disulfidoptosis-related gene prognostic model for lung adenocarcinoma based on bioinformatics and experimental validation.Frontiers in immunology · 2025Article
- Identification of lipid metabolism related immune markers in atherosclerosis through machine learning and experimental analysis.Frontiers in immunology · 2025Article
- Hexokinase2-engineered T cells display increased anti-tumor function.Frontiers in immunology · 2025Article
- Targeting tumor-associated macrophages in colon cancer: mechanisms and therapeutic strategies.Frontiers in immunology · 2025Review
- The role of tumor-associated macrophages in HPV induced cervical cancer.Frontiers in immunology · 2025Review
- Article
- Construction of a Prognostic Model of Prostate Cancer Based on Immune and Metabolic Genes and Experimental Validation of the Gene AK5.Oncology research · 2025Article
- Machine learning model reveals the role of angiogenesis and EMT genes in glioma patient prognosis and immunotherapy.Biology direct · 2024Article
- Identification of cancer stem cell-related genes through single cells and machine learning for predicting prostate cancer prognosis and immunotherapy.Frontiers in immunology · 2024Article
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Authors and funding
9 authors.
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No grant is acknowledged in the PubMed record.
Abstract
Background: Monocytes play a critical role in tumor initiation and progression, with their impact on prostate adenocarcinoma (PRAD) not yet fully understood. This study aimed to identify key monocyte-related genes and elucidate their mechanisms in PRAD. Method: Utilizing the TCGA-PRAD dataset, immune cell infiltration levels were assessed using CIBERSORT, and their correlation with patient prognosis was analyzed. The WGCNA method pinpointed 14 crucial monocyte-related genes. A diagnostic model focused on monocytes was developed using a combination of machine learning algorithms, while a prognostic model was created using the LASSO algorithm, both of which were validated. Random forest and gradient boosting machine singled out CCNA2 as the most significant gene related to prognosis in monocytes, with its function further investigated through gene enrichment analysis. Mendelian randomization analysis of the association of HLA-DR high-expressing monocytes with PRAD. Molecular docking was employed to assess the binding affinity of CCNA2 with targeted drugs for PRAD, and experimental validation confirmed the expression and prognostic value of CCNA2 in PRAD. Result: Based on the identification of 14 monocyte-related genes by WGCNA, we developed a diagnostic model for PRAD using a combination of multiple machine learning algorithms. Additionally, we constructed a prognostic model using the LASSO algorithm, both of which demonstrated excellent predictive capabilities. Analysis with random forest and gradient boosting machine algorithms further supported the potential prognostic value of CCNA2 in PRAD. Gene enrichment analysis revealed the association of CCNA2 with the regulation of cell cycle and cellular senescence in PRAD. Mendelian randomization analysis confirmed that monocytes expressing high levels of HLA-DR may promote PRAD. Molecular docking results suggested a strong affinity of CCNA2 for drugs targeting PRAD. Furthermore, immunohistochemistry experiments validated the upregulation of CCNA2 expression in PRAD and its correlation with patient prognosis. Conclusion: Our findings offer new insights into monocyte heterogeneity and its role in PRAD. Furthermore, CCNA2 holds potential as a novel targeted drug for PRAD.
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