Exploring the Molecular Therapeutic Mechanisms of Gemcitabine through Quantitative Proteomics.
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Gemcitabine (GEM) is widely employed in the treatment of various cancers, including pancreatic cancer.
APA
Jiang Y, Ren X, et al. (2024). Exploring the Molecular Therapeutic Mechanisms of Gemcitabine through Quantitative Proteomics.. Journal of proteome research, 23(7), 2343-2354. https://doi.org/10.1021/acs.jproteome.3c00890
MLA
Jiang Y, et al.. "Exploring the Molecular Therapeutic Mechanisms of Gemcitabine through Quantitative Proteomics.." Journal of proteome research, vol. 23, no. 7, 2024, pp. 2343-2354.
PMID
38831540 ↗
Abstract 한글 요약
Gemcitabine (GEM) is widely employed in the treatment of various cancers, including pancreatic cancer. Despite their clinical success, challenges related to GEM resistance and toxicity persist. Therefore, a deeper understanding of its intracellular mechanisms and potential targets is urgently needed. In this study, through mass spectrometry analysis in data-dependent acquisition mode, we carried out quantitative proteomics (three independent replications) and thermal proteome profiling (TPP, two independent replications) on MIA PaCa-2 cells to explore the effects of GEM. Our proteomic analysis revealed that GEM led to the upregulation of the cell cycle and DNA replication proteins. Notably, we observed the upregulation of S-phase kinase-associated protein 2 (SKP2), a cell cycle and chemoresistance regulator. Combining SKP2 inhibition with GEM showed synergistic effects, suggesting SKP2 as a potential target for enhancing the GEM sensitivity. Through TPP, we pinpointed four potential GEM binding targets implicated in tumor development, including in breast and liver cancers, underscoring GEM's broad-spectrum antitumor capabilities. These findings provide valuable insights into GEM's molecular mechanisms and offer potential targets for improving treatment efficacy.
🏷️ 키워드 / MeSH 📖 같은 키워드 OA만
- Deoxycytidine
- Gemcitabine
- Humans
- Proteomics
- Cell Line
- Tumor
- S-Phase Kinase-Associated Proteins
- Antimetabolites
- Antineoplastic
- Drug Resistance
- Neoplasm
- Pancreatic Neoplasms
- Cell Cycle Proteins
- Up-Regulation
- Gene Expression Regulation
- Neoplastic
- gemcitabine
- molecular mechanisms
- pancreatic cancer
- quantitative proteomics
- thermal proteome profiling
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