ArticleCell cycle (Georgetown, Tex.)2023
Metformin attenuates multiple myeloma cell proliferation and encourages apoptosis by suppressing METTL3-mediated m6A methylation of THRAP3, RBM25, and USP4.
Article in Cell cycle (Georgetown, Tex.), 2023. 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, 33 citations in OpenAlex.
- Knocking Down CDKN2A Enhances the Therapeutic Effects of Metformin and Resveratrol on Diabetic Retinopathy.Applied biochemistry and biotechnology · 2026Article
- Defining the RNA Modification Landscape of Multiple Myeloma Reveals METTL3-Dependent mbioRxiv : the preprint server for biology · 2026Article
- Metformin enhances external urethral sphincter integrity and restores continence via AMPK activation in a rat model of stress urinary incontinence.Animal models and experimental medicine · 2026Article
- Emerging roles of RNA mInternational journal of oncology · 2026Review
- FTO-CHRM3 axis regulates multiple myeloma progression: a machine learning-based identification.Annals of hematology · 2026Article
- Imeglimin Exerts Anti-Tumor Activity in Multiple Myeloma Through Affecting Energy Metabolism and Downregulating IL-16 Expression.Cancer medicine · 2026Article
- m6A methylation-modified ETV1 drives multiple myeloma progression and M2 polarization of tumor-associated macrophage through transcriptional activation of RBMS1.Journal of translational medicine · 2026Article
- Metformin inhibits proliferation of residing fibroadipogenic progenitor cells from failing human hearts.ESC heart failure · 2026Article
- THRAP3 promotes ferroptosis resistance in acute myelocytic leukemia through SLU7-mediated alternative splicing of GIT2.Nature communications · 2025Article
- Targeting METTL16 attenuates mesangial cell viability and fibrosis in a high-glucose state by suppressing m6A modification and the expression of RAP1B.BMC molecular and cell biology · 2025Article
- METTL3 Is Essential for Exercise Benefits in Diabetic Cardiomyopathy.Circulation · 2025Article
- From bone marrow mesenchymal stem cells to diseases: the crucial role of mStem cell research & therapy · 2025Review
- Research progress on N6-methyladenosine and non-coding RNA in multiple myeloma.Discover oncology · 2025Review
- Uncalled4 improves nanopore DNA and RNA modification detection via fast and accurate signal alignment.Nature methods · 2025Article
- The METTL3/TRAP1 axis as a key regulator of 5-fluorouracil chemosensitivity in colorectal cancer.Molecular and cellular biochemistry · 2025Article
- A novel mechanism in regulating drug sensitivity, growth, and apoptosis of bortezomib-resistant multiple myeloma cells: the USP4/KLF2/HMGA2 cascade.Journal of orthopaedic surgery and research · 2025Article
- The YTHDC1 reader protein recognizes and regulates the lncRNA MEG3 following its METTL3-mediated mCell death & disease · 2025Article
- Epigenetic modifications in cardiac fibrosis: recent evidence of new pharmacological targets.Frontiers in molecular biosciences · 2025Review
- Epigenetics-targeted drugs: current paradigms and future challenges.Signal transduction and targeted therapy · 2024Review
- Article
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Authors and funding
8 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Based on the results of epidemiological and preclinical studies, metformin can improve the prognosis of patients with malignant tumors. Studies have confirmed that metformin inhibits multiple myeloma (MM) cell proliferation and promotes apoptosis. Nevertheless, the specific mechanism remains to be elucidated. MM cells were intervened with different doses of metformin to detect cell proliferation and apoptosis. Western blotting and RT-qPCR were employed to assess the expression of METTL3, METTL14, WTAP, FTO, and ALKBH5 after metformin intervention. The microarray dataset GSE29023 was retrieved from the Gene Expression Omnibus (GEO) database and calculated using the R language (limma package) to authenticate differentially expressed genes (DEGs). The database for annotation, visualization, and integrated discovery (David) was applied for GO annotation analysis of DEGs. Subsequently, the string database and Cytoscape software were applied to construct protein-protein interaction (PPI) and DEM hub gene networks. Bioinformatics analysis and MeRIP were applied to predict and test METTL3-mediated m6A levels on mRNA of THRAP3, RBM25, and USP4 in METTL3 knocked-down cells. Then rescue experiments were performed to explore effects of METTL3 and THRAP3, RBM25, or USP4 on cell proliferation and apoptosis. The effect on MM cell xenograft tumor growth was observed by injection of metformin or/and overexpression of METTL3 in in vivo experiments. Metformin decreased cell proliferation and encouraged cell apoptosis in a dose-dependent manner. Global m6A modification was elevated in MM cells compared to normal cells, which was counteracted by metformin treatment. Furthermore, THRAP3, RBM25, and USP4 were identified as possible candidate genes for metformin treatment by GSE29023 data mining. METTL3 interference impaired m6A modification on mRNA of THRAP3, RBM25, and USP4 as well as expression levels. The mRNA stability and expression of THRAP3, RBM25, and USP4 was decreased after metformin treatment, which was reversed by METTL3 overexpression. THRAP3, RBM25 or USP4 knockdown reversed the assistance of METTL3 overexpression on the malignant behavior of MM cells. Finally, upregulation of METTL3 was shown to exert facilitative effects on xenograft tumor growth by blocking metformin injection. The present study demonstrates that metformin can repress the expression of THRAP3, RBM25, and USP4 by inhibiting METTL3-mediated m6A modification, which in turn hamper cell proliferation and promotes cell apoptosis.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.