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Published on: January 24, 2020
mTOR Inhibition via Displacement of Phosphatidic Acid Induces Enhanced Cytotoxicity Specifically in Cancer Cells
Tra-Ly Nguyen1, Marie-Julie Nokin1,2, Maxim Egorov3,4
1Institut Européen de Chimie et Biologie, INSERM U1218, Université de Bordeaux, Pessac, France.
Abstract:
The mTOR is a central regulator of cell growth and is highly activated in cancer cells to allow rapid tumor growth. The use of mTOR inhibitors as anticancer therapy has been approved for some types of tumors, albeit with modest results. We recently reported the synthesis of ICSN3250, a halitulin analogue with enhanced cytotoxicity. We report here that ICSN3250 is a specific mTOR inhibitor that operates through a mechanism distinct from those described for previous mTOR inhibitors. ICSN3250 competed with and displaced phosphatidic acid from the FRB domain in mTOR, thus preventing mTOR activation and leading to cytotoxicity. Docking and molecular dynamics simulations evidenced not only the high conformational plasticity of the FRB domain, but also the specific interactions of both ICSN3250 and phosphatidic acid with the FRB domain in mTOR. Furthermore, ICSN3250 toxicity was shown to act specifically in cancer cells, as noncancer cells showed up to 100-fold less sensitivity to ICSN3250, in contrast to other mTOR inhibitors that did not show selectivity. Thus, our results define ICSN3250 as a new class of mTOR inhibitors that specifically targets cancer cells.Significance: ICSN3250 defines a new class of mTORC1 inhibitors that displaces phosphatidic acid at the FRB domain of mTOR, inducing cell death specifically in cancer cells but not in noncancer cells. Cancer Res; 78(18); 5384-97. ©2018 AACR.
Insights
A new compound, ICSN3250, acts as a novel mTOR inhibitor by displacing phosphatidic acid. This cancer therapy specifically targets cancer cells, sparing healthy cells for improved treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The mechanistic target of rapamycin (mTOR) pathway is crucial for cell growth and frequently hyperactivated in cancer.
- Current mTOR inhibitors show modest efficacy and lack cancer cell specificity.
- ICSN3250, a halitulin analogue, exhibits enhanced cytotoxicity.
Purpose of the Study:
- To investigate the mechanism of action of ICSN3250 as an mTOR inhibitor.
- To determine the specificity of ICSN3250 towards cancer cells compared to non-cancer cells.
Main Methods:
- Biochemical assays to assess mTOR inhibition and phosphatidic acid displacement.
- Molecular docking and dynamics simulations to analyze binding interactions.
- Cell-based assays to evaluate cytotoxicity in cancer and non-cancer cells.
Main Results:
- ICSN3250 inhibits mTOR by competing with and displacing phosphatidic acid from the FRB domain.
- Molecular simulations confirm specific binding interactions of ICSN3250 with the mTOR FRB domain.
- ICSN3250 demonstrates significant toxicity towards cancer cells, with up to 100-fold greater sensitivity than non-cancer cells.
Conclusions:
- ICSN3250 represents a new class of mTOR inhibitors with a distinct mechanism of action.
- This compound exhibits cancer-specific cytotoxicity, offering a potential therapeutic advantage.
- ICSN3250's ability to displace phosphatidic acid defines its unique inhibitory profile.
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