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Identification of Mediators of T-cell Receptor Signaling via the Screening of Chemical Inhibitor Libraries
Published on: January 22, 2019
Targeting truncated retinoid X receptor-α by CF31 induces TNF-α-dependent apoptosis
Guang-Hui Wang1, Fu-Quan Jiang, Ying-Hui Duan
1School of Pharmaceutical Science, Xiamen University, Xiamen, China.
Abstract:
A truncated version of retinoid X receptor-α, tRXR-α, promotes cancer cell survival by activating the phosphoinositide 3-kinase (PI3K)/AKT pathway. However, targeting the tRXR-α-mediated survival pathway for cancer treatment remains to be explored. We report here our identification of a new natural product molecule, CF31, a xanthone isolated from Cratoxylum formosum ssp. pruniflorum, and the biologic evaluation of its regulation of the tRXR-α-mediated PI3K/AKT pathway. CF31 binds RXR-α and its binding results in inhibition of RXR-α transactivation. Through RXR-α mutational analysis and computational studies, we show that Arg316 of RXR-α, known to form salt bridges with certain RXR-α ligands, such as 9-cis-retinoic acid (9-cis-RA), is not required for the antagonist effect of CF31, showing a distinct binding mode. Evaluation of several CF31 analogs suggests that the antagonist effect is mainly attributed to an interference with Leu451 of helix H12 in RXR-α. CF31 is a potent inhibitor of AKT activation in various cancer cell lines. When combined with TNF-α, it suppresses TNF-α activation of AKT by inhibiting TNF-α-induced tRXR-α interaction with the p85α regulatory subunit of PI3K. CF31 inhibition of TNF-α activation of AKT also results in TNF-α-dependent activation of caspase-8 and apoptosis. Together, our results show that CF31 is an effective converter of TNF-α signaling from survival to death by targeting tRXR-α in a unique mode and suggest that identification of a natural product that targets an RXR-mediated cell survival pathway that regulates PI3K/AKT may offer a new therapeutic strategy to kill cancer cells.
Insights
A novel natural compound, CF31, targets truncated retinoid X receptor-alpha (tRXR-α) to inhibit cancer cell survival pathways. This compound converts tumor necrosis factor-alpha (TNF-α) signaling from promoting survival to inducing apoptosis.
Area of Science:
- Molecular Biology
- Pharmacology
- Natural Products Chemistry
Background:
- Truncated retinoid X receptor-alpha (tRXR-α) promotes cancer cell survival via the phosphoinositide 3-kinase (PI3K)/AKT pathway.
- Targeting tRXR-α-mediated survival pathways presents a potential cancer treatment strategy.
Purpose of the Study:
- To identify and evaluate a natural product, CF31, for its ability to regulate the tRXR-α-mediated PI3K/AKT pathway.
- To elucidate the mechanism of action of CF31 as an antagonist of tRXR-α.
Main Methods:
- Isolation and identification of CF31, a xanthone from Cratoxylum formosum ssp. pruniflorum.
- Biologic evaluation of CF31's regulation of the tRXR-α-mediated PI3K/AKT pathway.
- RXR-α mutational analysis and computational studies to determine CF31's binding mode.
Main Results:
- CF31 binds to RXR-α, inhibiting its transactivation through a distinct mode not requiring Arg316.
- CF31 acts as a potent inhibitor of AKT activation and interferes with the tRXR-α/PI3K interaction.
- CF31 converts TNF-α signaling from survival to apoptosis by activating caspase-8.
Conclusions:
- CF31 is a novel natural product antagonist of tRXR-α with a unique binding mode.
- CF31 effectively inhibits cancer cell survival pathways regulated by tRXR-α and PI3K/AKT.
- CF31 represents a promising therapeutic strategy for cancer treatment by inducing apoptosis.
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