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Characterization of a membrane-active anti-tumor agent, UA8967
Robert T Dorr1, Betty K Samulitis, Lee Wisner
1University of Arizona Cancer Center, 1515 N. Campbell Ave, Rm 4963C, Tucson, AZ 85724-5024, USA. bdorr@azcc.arizona.edu
Abstract:
Deletions or mutations in the tumor suppressor gene DPC4 (deleted in pancreatic carcinoma locus 4) are common in colon and pancreatic cancers. Using the Target-related Affinity Profiling (TRAP) chemical library screening method, a novel agent, UA8967, was selected for further studies because it showed greater potency in DPC4-deleted HCT-116 colon cancer cells. Cytotoxicity studies in six pancreatic cancer cell lines (MiaPaca-2, Panc-1, BxPC3, CF-PAC1, AsPC1, and T3M4), one normal human pancreatic ductal epithelial line (HPDE-6) and the HCT-116 DPC4(+/+) and HCT-116 DPC4(-/-) colon cancer cells showed IC50s ranging from 12-61 μM for exposure times of 72 h. Analysis of schedule dependence showed no advantage for long drug exposure times. There was also no selective inhibition of DNA, RNA or protein synthesis after exposure to UA8967. At 24-48 h, there was an accumulation of cells in G0/G1-phase and a proportionate reduction in S-phase cells. Within 1-6 h of exposure, cells were found to undergo an autophagic response, followed at 24 h by a low level of caspase-independent apoptosis with some necrosis. Because of the relatively non-specific mechanistic effects of UA8967, plasma membrane viability was evaluated using uptake of trypan blue and Sytox® Green dyes, and leakage of LDH. There was a dose dependent increase in Sytox® Green staining, trypan blue uptake and LDH leakage with increasing concentrations of UA8967, suggesting that UA8967 is affecting the plasma membrane. The DPC4(-/-) cells were more sensitive to UA8967 but not to DMSO, suggesting a drug-specific effect on cell membrane integrity.
Insights
A new compound, UA8967, shows potent cytotoxicity against DPC4-deleted colon and pancreatic cancer cells. This agent disrupts cell membrane integrity, offering a potential therapeutic strategy for DPC4-deficient cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Deletions or mutations in the DPC4 tumor suppressor gene are prevalent in pancreatic and colon cancers.
- Identifying novel therapeutic agents targeting DPC4-deficient tumors is crucial.
Purpose of the Study:
- To evaluate the efficacy and mechanism of action of a novel agent, UA8967, against DPC4-deleted cancer cells.
- To investigate UA8967's effects on cell viability, cell cycle, and plasma membrane integrity.
Main Methods:
- Target-related Affinity Profiling (TRAP) screening identified UA8967.
- Cytotoxicity assays were performed on multiple pancreatic and colon cancer cell lines, including DPC4-deleted and wild-type HCT-116 cells.
- Cell cycle analysis, apoptosis assays, and plasma membrane integrity tests (Sytox® Green, trypan blue, LDH leakage) were conducted.
Main Results:
- UA8967 exhibited potent cytotoxicity (IC50s 12-61 μM) in DPC4-deleted cancer cells.
- The drug induced G0/G1 cell cycle arrest and triggered an autophagic response followed by caspase-independent apoptosis and necrosis.
- UA8967 demonstrated a dose-dependent disruption of plasma membrane integrity, with DPC4(-/-) cells showing increased sensitivity.
Conclusions:
- UA8967 is a promising novel agent with significant cytotoxic effects on DPC4-deleted colon and pancreatic cancer cells.
- The compound's mechanism involves disruption of plasma membrane integrity, suggesting a targeted therapeutic approach.
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