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A Small Molecule Screen Exposes mTOR Signaling Pathway Involvement in Radiation-Induced Apoptosis
Elizabeth R Sharlow, Stephanie Leimgruber, Ana Lira
1Department of Radiation Oncology, University of Pittsburgh , Pittsburgh, Pennsylvania, United States.
Abstract:
Individuals are at risk of exposure to acute ionizing radiation (IR) from a nuclear accident or terrorism, but we lack effective therapies to mitigate the lethal IR effects. In the current study, we exploited an optimized, cell-based, high throughput screening assay to interrogate a small molecule library comprising 3437 known pharmacologically active compounds for mitigation against IR-induced apoptosis. Thirty-three library compounds significantly reduced apoptosis when administered 1 h after 4 Gy IR. Two- or three-dimensional computational structural analyses of the compounds indicated only one or two chemical clusters with most of the compounds being unique structures. The mechanistic target of rapamycin complex 1 (mTORC1) inhibitor, rapamycin, was the most potent compound, and it mitigated apoptosis by 50% at 200 ± 50 pM. Other mTOR inhibitors, namely everolimus, AZD8055, and torin 1, also suppressed apoptosis, providing additional pharmacological evidence for mTOR pathway involvement in regulating cell death after IR. Everolimus and torin 1 treatment after IR decreased the S phase population and enforced both G1 and G2 phase arrest. This prorogation of cell cycle progression was accompanied by decreased IR-induced DNA damage measured by γH2AX phosphorylation at Ser139. RNA interference-mediated knockdown of the respective mTORC1 and mTORC2 subunits, Raptor or Rictor, also mitigated IR-induced apoptosis. Collectively, this study suggests a central role for the mTOR signaling in the cytotoxic response to IR and offers a useful platform to probe for additional agents.
Insights
Researchers identified compounds that protect against lethal radiation effects. The mechanistic target of rapamycin (mTOR) pathway plays a key role in mitigating radiation-induced apoptosis, offering new therapeutic avenues.
Area of Science:
- Radiation Biology
- Pharmacology
- Cell Biology
Background:
- Acute ionizing radiation (IR) exposure poses significant health risks, with limited effective mitigation therapies.
- Developing treatments to counteract lethal IR effects is crucial for public health and security.
Purpose of the Study:
- To screen a library of pharmacologically active compounds for their ability to mitigate IR-induced apoptosis.
- To investigate the role of the mechanistic target of rapamycin (mTOR) signaling pathway in cellular response to IR.
Main Methods:
- Utilized a cell-based, high-throughput screening assay with 3437 known compounds.
- Administered compounds 1 hour after 4 Gy IR exposure and assessed apoptosis reduction.
- Analyzed compound structures and evaluated the effects of mTOR inhibitors and gene knockdown.
Main Results:
- Thirty-three compounds significantly reduced IR-induced apoptosis.
- Rapamycin, an mTORC1 inhibitor, was highly potent, mitigating apoptosis by 50% at 200 ± 50 pM.
- Other mTOR inhibitors and knockdown of mTOR subunits (Raptor, Rictor) also suppressed apoptosis and DNA damage.
Conclusions:
- The mTOR signaling pathway is central to the cytotoxic response to ionizing radiation.
- This study provides a platform for identifying novel agents to mitigate lethal IR effects.
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