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Updated: Jun 2, 2026

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Ridaforolimus (AP23573; MK-8669), a potent mTOR inhibitor, has broad antitumor activity and can be optimally
Victor M Rivera1, Rachel M Squillace, David Miller
1ARIAD Pharmaceuticals, Inc., 26 Landsdowne Street, Cambridge, MA 02139, USA. victor.rivera@ariad.com
Abstract:
The mTOR pathway is hyperactivated through oncogenic transformation in many human malignancies. Ridaforolimus (AP23573; MK-8669) is a novel rapamycin analogue that selectively targets mTOR and is currently under clinical evaluation. In this study, we investigated the mechanistic basis for the antitumor activity of ridaforolimus in a range of human tumor types, exploring potential markers of response, and determining optimal dosing regimens to guide clinical studies. Administration of ridaforolimus to tumor cells in vitro elicited dose-dependent inhibition of mTOR activity with concomitant effects on cell growth and division. We showed that ridaforolimus exhibits a predominantly cytostatic mode of action, consistent with the findings for other mTOR inhibitors. Potent inhibitory effects on vascular endothelial growth factor secretion, endothelial cell growth, and glucose metabolism were also observed. Although PTEN and/or phosphorylated AKT status have been proposed as potential mTOR pathway biomarkers, neither was predictive for ridaforolimus responsiveness in the heterogeneous panel of cancer cell lines examined. In mouse models, robust antitumor activity was observed in human tumor xenografts using a series of intermittent dosing schedules, consistent with pharmacodynamic observations of mTOR pathway inhibition for at least 72 hours following dosing. Parallel skin-graft rejection studies established that intermittent dosing schedules lack the immunosuppressive effects seen with daily dosing. Overall these findings show the broad inhibitory effects of ridaforolimus on cell growth, division, metabolism, and angiogenesis, and support the use of intermittent dosing as a means to optimize antitumor activity while minimizing systemic effects.
Insights
Ridaforolimus, a novel mTOR inhibitor, demonstrated broad antitumor effects by inhibiting cell growth, metabolism, and angiogenesis. Intermittent dosing optimizes efficacy while minimizing side effects, supporting its clinical use.
Area of Science:
- Oncology
- Pharmacology
Background:
- The mechanistic target of rapamycin (mTOR) pathway is frequently hyperactivated in human cancers.
- Ridaforolimus is a rapamycin analogue targeting mTOR currently in clinical trials.
Purpose of the Study:
- Investigate ridaforolimus's antitumor activity mechanisms across various human tumor types.
- Identify potential response biomarkers and optimal dosing regimens for clinical guidance.
Main Methods:
- In vitro studies assessed dose-dependent mTOR inhibition, cell growth, and division.
- In vivo studies utilized human tumor xenografts in mouse models.
- Pharmacodynamic and skin-graft rejection studies evaluated dosing schedules.
Main Results:
- Ridaforolimus showed dose-dependent inhibition of mTOR activity, primarily exhibiting cytostatic effects.
- Inhibitory effects were observed on vascular endothelial growth factor secretion, endothelial cell growth, and glucose metabolism.
- Intermittent dosing schedules demonstrated robust antitumor activity in vivo with reduced immunosuppression compared to daily dosing.
- PTEN and pAKT status were not predictive of ridaforolimus response in tested cell lines.
Conclusions:
- Ridaforolimus exhibits broad antitumor effects, impacting cell proliferation, metabolism, and angiogenesis.
- Intermittent dosing is a promising strategy to maximize antitumor activity and minimize systemic toxicity.
- Further clinical evaluation is warranted to guide optimal dosing and patient selection.
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