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A novel radioprotective function for the mitochondrial tumor suppressor protein Fus1
E M Yazlovitskaya1, R Uzhachenko, P A Voziyan
1Department of Medicine, Division of Nephrology, Vanderbilt University, Nashville, TN 37232, USA.
Abstract:
FUS1/TUSC2 is a mitochondrial tumor suppressor with activity to regulate cellular oxidative stress by maintaining balanced ROS production and mitochondrial homeostasis. Fus1 expression is inhibited by ROS, suggesting that individuals with a high level of ROS may have lower Fus1 in normal tissues and, thus, may be more prone to oxidative stress-induced side effects of cancer treatment, including radiotherapy. As the role of Fus1 in the modulation of cellular radiosensitivity is unknown, we set out to determine molecular mechanisms of Fus1 involvement in the IR response in normal tissues. Mouse whole-body irradiation methodology was employed to determine the role for Fus1 in the radiation response and explore underlying molecular mechanisms. Fus1(-/-) mice were more susceptible to radiation compared with Fus1(+/+) mice, exhibiting increased mortality and accelerated apoptosis of the GI crypt epithelial cells. Following untimely reentrance into the cell cycle, the Fus1(-/-) GI crypt cells died at accelerated rate via mitotic catastrophe that resulted in diminished and/or delayed crypt regeneration after irradiation. At the molecular level, dysregulated dynamics of activation of main IR response proteins (p53, NFκB, and GSK-3β), as well as key signaling pathways involved in oxidative stress response (SOD2, PRDX1, and cytochrome c), apoptosis (BAX and PARP1), cell cycle (Cyclins B1 and D1), and DNA repair (γH2AX) were found in Fus1(-/-) cells after irradiation. Increased radiosensitivity of other tissues, such as immune cells and hair follicles was also detected in Fus1(-/-) mice. Our findings demonstrate a previously unknown radioprotective function of the mitochondrial tumor suppressor Fus1 in normal tissues and suggest new individualized therapeutic approaches based on Fus1 expression.
Insights
The mitochondrial tumor suppressor Fus1 (also known as TUSC2) protects normal tissues from radiation damage. Lower Fus1 levels increase susceptibility to radiation side effects, suggesting personalized cancer therapies.
Area of Science:
- Molecular Biology
- Oncology
- Radiotherapy Research
Background:
- FUS1/TUSC2 is a mitochondrial tumor suppressor regulating oxidative stress and homeostasis.
- ROS inhibits Fus1 expression, potentially increasing susceptibility to oxidative stress-induced side effects from cancer treatments like radiotherapy.
- The role of Fus1 in cellular radiosensitivity remains largely unexplored.
Purpose of the Study:
- To investigate the molecular mechanisms of Fus1's involvement in the response to ionizing radiation (IR) in normal tissues.
- To determine the role of Fus1 in modulating cellular radiosensitivity.
Main Methods:
- Utilized whole-body irradiation methodology in Fus1 knockout (Fus1(-/-)) and wild-type (Fus1(+/+)) mice.
- Analyzed molecular signaling pathways related to IR response, oxidative stress, apoptosis, cell cycle, and DNA repair post-irradiation.
Main Results:
- Fus1(-/-) mice exhibited increased mortality and accelerated apoptosis in GI crypt epithelial cells post-irradiation compared to Fus1(+/+) mice.
- Fus1(-/-) GI crypt cells underwent mitotic catastrophe, leading to impaired crypt regeneration.
- Dysregulated activation of key IR response proteins (p53, NFκB, GSK-3β) and altered signaling pathways were observed in Fus1(-/-) cells.
- Increased radiosensitivity was noted in other tissues, including immune cells and hair follicles, of Fus1(-/-) mice.
Conclusions:
- Fus1 possesses a previously unrecognized radioprotective function in normal tissues.
- Fus1 deficiency enhances susceptibility to radiation-induced damage and side effects.
- Findings suggest potential for individualized cancer therapies based on Fus1 expression levels to mitigate radiotherapy toxicity.
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