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Updated: Oct 30, 2025

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Network pharmacology of triptolide in cancer cells: implications for transcription factor binding
Ean-Jeong Seo1, Mona Dawood1,2, Annika K Hult3
1Department of Pharmaceutical Biology, Institute of Pharmaceutical and Biomedical Sciences, Johannes Gutenberg University, Staudinger Weg 5, 55128, Mainz, Germany.
Abstract:
Background Triptolide is an active natural product, which inhibits cell proliferation, induces cell apoptosis, suppresses tumor metastasis and improves the effect of other therapeutic treatments in several cancer cell lines by affecting multiple molecules and signaling pathways, such as caspases, heat-shock proteins, DNA damage and NF-ĸB. Purpose We investigated the effect of triptolide towards NF-ĸB and GATA1. Methods We used cell viability assay, compare and cluster analyses of microarray-based mRNA transcriptome-wide expression data, gene promoter binding motif analysis, molecular docking, Ingenuity pathway analysis, NF-ĸB reporter cell assay, and electrophoretic mobility shift assay (EMSA) of GATA1. Results Triptolide inhibited the growth of drug-sensitive (CCRF-CEM, U87.MG) and drug-resistant cell lines (CEM/ADR5000, U87.MGΔEGFR). Hierarchical cluster analysis showed six major clusters in dendrogram. The sensitive and resistant cell lines were statistically significant (p = 0.65 × 10-2) distributed. The binding motifs of NF-κB (Rel) and of GATA1 proteins were significantly enriched in regions of 25 kb upstream promoter of all genes. IPA showed the networks, biological functions, and canonical pathways influencing the activity of triptolide towards tumor cells. Interestingly, upstream analysis for the 40 genes identified by compare analysis revealed ZFPM1 (friend of GATA protein 1) as top transcription regulator. However, we did not observe any effect of triptolide to the binding of GATA1 in vitro. We confirmed that triptolide inhibited NF-κB activity, and it strongly bound to the pharmacophores of IκB kinase β and NF-κB in silico. Conclusion Triptolide showed promising inhibitory effect toward NF-κB, making it a potential candidate for targeting NF-κB.
Insights
Triptolide, a natural compound, effectively inhibits cancer cell growth by targeting the NF-κB pathway. This study confirms triptolide
Area of Science:
- Molecular Biology
- Cancer Research
- Natural Products Chemistry
Background:
- Triptolide is a natural product known to inhibit cancer cell proliferation, induce apoptosis, and suppress metastasis.
- It affects multiple cancer-related signaling pathways, including caspases, heat-shock proteins, DNA damage, and NF-κB.
Purpose of the Study:
- To investigate the specific effects of triptolide on the NF-κB and GATA1 signaling pathways in cancer cells.
- To explore triptolide's potential as a therapeutic agent targeting these pathways.
Main Methods:
- Utilized cell viability assays, microarray analysis, and bioinformatics tools (Ingenuity Pathway Analysis).
- Employed molecular docking, NF-κB reporter assays, and electrophoretic mobility shift assays (EMSA) to assess molecular interactions.
Main Results:
- Triptolide inhibited the growth of both drug-sensitive and drug-resistant cancer cell lines.
- NF-κB (Rel) binding motifs were significantly enriched in gene promoter regions.
- Triptolide demonstrated strong in silico binding to IκB kinase β and NF-κB, confirming NF-κB inhibition, but showed no in vitro effect on GATA1 binding.
Conclusions:
- Triptolide exhibits a potent inhibitory effect on the NF-κB pathway.
- Its ability to target NF-κB makes triptolide a promising candidate for cancer therapy development.
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