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A Semi-Quantitative Drug Affinity Responsive Target Stability (DARTS) assay for studying Rapamycin/mTOR interaction
Published on: August 27, 2019
Longitudinal imaging studies of tumor microenvironment in mice treated with the mTOR inhibitor rapamycin
Keita Saito1, Shingo Matsumoto, Hironobu Yasui
1Radiation Biology Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, United States of America.
Abstract:
Rapamycin is an allosteric inhibitor of mammalian target of rapamycin, and inhibits tumor growth and angiogenesis. Recent studies suggested a possibility that rapamycin renormalizes aberrant tumor vasculature and improves tumor oxygenation. The longitudinal effects of rapamycin on angiogenesis and tumor oxygenation were evaluated in murine squamous cell carcinoma (SCCVII) by electron paramagnetic resonance imaging (EPRI) and magnetic resonance imaging (MRI) to identify an optimal time after rapamycin treatment for enhanced tumor radioresponse. Rapamycin treatment was initiated on SCCVII solid tumors 8 days after implantation (500-750 mm(3)) and measurements of tumor pO(2) and blood volume were conducted from day 8 to 14 by EPRI/MRI. Microvessel density was evaluated over the same time period by immunohistochemical analysis. Tumor blood volume as measured by MRI significantly decreased 2 days after rapamycin treatment. Tumor pO(2) levels modestly but significantly increased 2 days after rapamycin treatment; whereas, it decreased in non-treated control tumors. Furthermore, the fraction of hypoxic area (pixels with pO(2)<10 mm Hg) in the tumor region decreased 2 days after rapamycin treatments. Immunohistochemical analysis of tumor microvessel density and pericyte coverage revealed that microvessel density decreased 2 days after rapamycin treatment, but pericyte coverage did not change, similar to what was seen with anti-angiogenic agents such as sunitinib which cause vascular renormalization. Collectively, EPRI/MRI co-imaging can provide non-invasive evidence of rapamycin-induced vascular renormalization and resultant transient increase in tumor oxygenation. Improved oxygenation by rapamycin treatment provides a temporal window for anti-cancer therapies to realize enhanced response to radiotherapy.
Insights
Rapamycin treatment transiently increases tumor oxygenation by normalizing vasculature, creating a window for enhanced radiotherapy response. This study used EPRI/MRI to track these effects in murine tumors.
Area of Science:
- Oncology
- Radiotherapy
- Pharmacology
Background:
- Rapamycin inhibits mammalian target of rapamycin (mTOR), impacting tumor growth and angiogenesis.
- Emerging evidence suggests rapamycin may normalize tumor vasculature and improve oxygenation.
- Understanding the temporal dynamics of these effects is crucial for optimizing cancer therapy.
Purpose of the Study:
- To evaluate the longitudinal effects of rapamycin on tumor angiogenesis and oxygenation.
- To identify the optimal timing post-treatment for enhanced tumor radioresponse.
- To assess rapamycin's impact on tumor blood volume, pO(2), and hypoxic fraction.
Main Methods:
- Utilized electron paramagnetic resonance imaging (EPRI) and magnetic resonance imaging (MRI) for longitudinal assessment.
- Administered rapamycin to SCCVII murine squamous cell carcinoma models.
- Measured tumor pO(2), blood volume, and microvessel density over time.
- Performed immunohistochemical analysis for microvessel density and pericyte coverage.
Main Results:
- Rapamycin treatment significantly decreased tumor blood volume by 2 days post-treatment.
- Tumor pO(2) levels increased significantly 2 days after rapamycin, while control tumors showed decreased pO(2).
- The fraction of hypoxic tumor area decreased 2 days post-rapamycin treatment.
- Microvessel density decreased, but pericyte coverage remained unchanged, indicating vascular normalization.
Conclusions:
- EPRI/MRI co-imaging non-invasively demonstrates rapamycin-induced vascular renormalization and increased tumor oxygenation.
- Rapamycin creates a transient therapeutic window of improved oxygenation, potentially enhancing radiotherapy efficacy.
- These findings support the strategic use of rapamycin to improve outcomes in cancer treatment.
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