A novel triptolide analog downregulates NF-κB and induces mitochondrial apoptosis pathways in human pancreatic cancer
Qiaomu Tian1, Peng Zhang2, Yihan Wang1
1Department of Surgery, The University of Chicago, Chicago, United States.
Abstract:
Pancreatic cancer is the seventh leading cause of cancer-related death worldwide, and despite advancements in disease management, the 5 -year survival rate stands at only 12%. Triptolides have potent anti-tumor activity against different types of cancers, including pancreatic cancer, however poor solubility and toxicity limit their translation into clinical use. We synthesized a novel pro-drug of triptolide, (E)-19-[(1'-benzoyloxy-1'-phenyl)-methylidene]-Triptolide (CK21), which was formulated into an emulsion for in vitro and in vivo testing in rats and mice, and used human pancreatic cancer cell lines and patient-derived pancreatic tumor organoids. A time-course transcriptomic profiling of tumor organoids treated with CK21 in vitro was conducted to define its mechanism of action, as well as transcriptomic profiling at a single time point post-CK21 administration in vivo. Intravenous administration of emulsified CK21 resulted in the stable release of triptolide, and potent anti-proliferative effects on human pancreatic cancer cell lines and patient-derived pancreatic tumor organoids in vitro, and with minimal toxicity in vivo. Time course transcriptomic profiling of tumor organoids treated with CK21 in vitro revealed <10 differentially expressed genes (DEGs) at 3 hr and ~8,000 DEGs at 12 hr. Overall inhibition of general RNA transcription was observed, and Ingenuity pathway analysis together with functional cellular assays confirmed inhibition of the NF-κB pathway, increased oxidative phosphorylation and mitochondrial dysfunction, leading ultimately to increased reactive oxygen species (ROS) production, reduced B-cell-lymphoma protein 2 (BCL2) expression, and mitochondrial-mediated tumor cell apoptosis. Thus, CK21 is a novel pro-drug of triptolide that exerts potent anti-proliferative effects on human pancreatic tumors by inhibiting the NF-κB pathway, leading ultimately to mitochondrial-mediated tumor cell apoptosis.
Insights
A new triptolide pro-drug, CK21, shows potent anti-cancer effects against pancreatic tumors. CK21 inhibits the NF-κB pathway, causing tumor cell death with minimal toxicity.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Pancreatic cancer has a low survival rate, necessitating new therapeutic strategies.
- Triptolides exhibit anti-tumor properties but face challenges with solubility and toxicity.
- CK21 is a novel pro-drug designed to overcome triptolide's limitations.
Purpose of the Study:
- To evaluate the efficacy and mechanism of action of CK21 against pancreatic cancer.
- To assess the in vitro and in vivo anti-proliferative effects of CK21.
- To investigate the molecular pathways targeted by CK21.
Main Methods:
- Synthesis and formulation of the triptolide pro-drug CK21 into an emulsion.
- In vitro testing using human pancreatic cancer cell lines and patient-derived tumor organoids.
- In vivo testing in rats and mice, including time-course transcriptomic profiling.
- Analysis of gene expression changes, pathway analysis (e.g., NF-κB), and cellular assays.
Main Results:
- CK21 demonstrated potent anti-proliferative effects on pancreatic cancer cells and organoids in vitro.
- Intravenous administration of emulsified CK21 showed stable triptolide release and minimal in vivo toxicity.
- Transcriptomic analysis revealed inhibition of RNA transcription, NF-κB pathway, and increased mitochondrial dysfunction.
- CK21 induced reactive oxygen species (ROS) production, reduced BCL2 expression, and promoted apoptosis.
Conclusions:
- CK21 is a promising novel pro-drug of triptolide for pancreatic cancer treatment.
- CK21 effectively inhibits pancreatic tumor growth by targeting the NF-κB pathway and inducing mitochondrial-mediated apoptosis.
- The developed formulation allows for stable drug release and reduced toxicity, paving the way for clinical investigation.
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