ArticleBMC cancer2024
Cellular senescence and metabolic reprogramming model based on bulk/single-cell RNA sequencing reveals PTGER4 as a therapeutic target for ccRCC.
Article in BMC cancer, 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.
- ZBED6-IGF2-PIK3C3 autophagy axis drives ccRCC progression: A multi-omics integration study.iScience · 2026Article
- Comprehensive analysis of key palmitoylation-modifying enzymes in clear cell renal cell carcinoma: implications for prognosis and therapy.Cancer cell international · 2026Article
- ACSL5 regulated acetyl-CoA to promote bladder cancer cellular senescence via 53BP1 acetylation.Oncogene · 2025Article
- Cellular senescence in cancer: from mechanism paradoxes to precision therapeutics.Molecular cancer · 2025Review
- COL6A2 in clear cell renal cell carcinoma: a multifaceted driver of tumor progression, immune evasion, and drug sensitivity.Journal of translational medicine · 2025Article
- Therapy-induced senescence is a transient drug resistance mechanism in breast cancer.Molecular cancer · 2025Article
- SIGMAR1 screened by a GPCR-related classifier regulates endoplasmic reticulum stress in bladder cancer.Journal of translational medicine · 2025Article
- Article
- Machine learning-derived cellular senescence index for predicting prognosis and drug sensitivity in patients with renal cell carcinoma.Frontiers in immunology · 2025Article
- Cellular Senescence: A Bridge Between Diabetes and Microangiopathy.Biomolecules · 2024Review
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Authors and funding
11 authors.
Funding
Abstract
Clear cell renal cell carcinoma (ccRCC) is the prevailing histological subtype of renal cell carcinoma and has unique metabolic reprogramming during its occurrence and development. Cell senescence is one of the newly identified tumor characteristics. However, there is a dearth of methodical and all-encompassing investigations regarding the correlation between the broad-ranging alterations in metabolic processes associated with aging and ccRCC. We utilized a range of analytical methodologies, such as protein‒protein interaction network analysis and least absolute shrinkage and selection operator (LASSO) regression analysis, to form and validate a risk score model known as the senescence-metabolism-related risk model (SeMRM). Our study demonstrated that SeMRM could more precisely predict the OS of ccRCC patients than the clinical prognostic markers in use. By utilizing two distinct datasets of ccRCC, ICGC-KIRC (the International Cancer Genome Consortium) and GSE29609, as well as a single-cell dataset (GSE156632) and real patient clinical information, and further confirmed the relationship between the senescence-metabolism-related risk score (SeMRS) and ccRCC patient progression. It is worth noting that patients who were classified into different subgroups based on the SeMRS exhibited notable variations in metabolic activity, immune microenvironment, immune cell type transformation, mutant landscape, and drug responsiveness. We also demonstrated that PTGER4, a key gene in SeMRM, regulated ccRCC cell proliferation, lipid levels and the cell cycle in vivo and in vitro. Together, the utilization of SeMRM has the potential to function as a dependable clinical characteristic to increase the accuracy of prognostic assessment for patients diagnosed with ccRCC, thereby facilitating the selection of suitable treatment strategies.
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