ArticleBioengineered2022
Far upstream element -binding protein 1 (FUBP1) participates in the malignant process and glycolysis of colon cancer cells by combining with c-Myc.
Article in Bioengineered, 2022. 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, 12 citations in OpenAlex.
- The RNA-binding protein RBFOX2 suppresses colorectal cancer proliferation and metastasis by reducing FUBP1 mRNA stability to induce mitochondrial dysfunction and ferroptosis.Discover oncology · 2026Article
- Hybrid tuned deep learning model for breast cancer diagnosis using genetic data.Scientific reports · 2026Article
- Role and Molecular Mechanisms of Aerobic Glycolysis in Gastrointestinal Tumors.Journal of Cancer · 2026Review
- GTPBP4 promotes colorectal cancer cell proliferation by positively regulating MYC-driven glycolytic metabolism.American journal of cancer research · 2026Article
- Facilitation of diabetic wound healing by far upstream element binding protein 1 through augmentation of dermal fibroblast activity.Acta diabetologica · 2025Article
- Role of glucose metabolic reprogramming in colorectal cancer progression and drug resistance.Translational oncology · 2024Review
- Serinc2 Drives the Progression of Cervical Cancer Through Regulating Myc Pathway.Cancer medicine · 2024Article
- FUBP1 in human cancer: Characteristics, functions, and potential applications.Translational oncology · 2024Review
- Circulating autoantibodies to alpha-enolase (ENO1) and far upstream element-binding protein 1 (FUBP1) are negative prognostic factors for pancreatic cancer patient survival.Clinical and experimental medicine · 2023Article
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Authors and funding
6 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Human distal upstream element (Fuse) binding protein 1 (FUBP1) is a transcriptional regulator of c-Myc and represents an important prognostic marker in many cancers. Therefore, the present study aimed to investigate whether FUBP1 could combine with c-Myc to participate in the progression of colon cancer. Detection of FUBP1 expression was done through reverse transcription-quantitative PCR (RT-qPCR), and the combination of FUBP1 and c-Myc was detected by immunoprecipitation assay. Cell counting kit (CCK)-8, colony formation, transwell and wound healing were applied for assessing the ability of cells to proliferate, migrate, and invade; glycolysis and lactic acid detection kits were used to detect glucose uptake and lactic acid content, while western blotting was adopted to detect the protein expression of glycolysis-related genes. FUBP1 expression was elevated in HCT116 cells relative to other colon cancer cell lines, and silencing FUBP1 could inhibit the ability of HCT116 cells to proliferate, migrate, invade and glycolysis, and enhance its apoptosis. In addition, the results of immunoprecipitation experiments showed that FUBP1 could bind to c-Myc. c-Myc overexpression reversed the inhibitory effects of FUBP1 knockdown on the ability of HCT116 cells to proliferate, migrate, invade and glycolysis. The results indicated that FUBP1 could participate in the deterioration process of colon cancer cells by combining with c-Myc, and it has clinical significance for understanding the key role of FUBP1 in tumor genesis.
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