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Intestinal Epithelial Regeneration in Response to Ionizing Irradiation
Published on: July 27, 2022
NRF2 Mediates Cellular Resistance to Transformation, Radiation, and Inflammation in Mice
Dörthe Schaue1, Ewa D Micewicz2, Josephine A Ratikan1
1Department of Radiation Oncology, David Geffen School of Medicine, University of California at Los Angeles, Los Angeles, CA 90095-1714, USA.
Abstract:
Nuclear factor erythroid 2-related factor 2 (NRF2) is recognized as a master transcription factor that regulates expression of numerous detoxifying and antioxidant cytoprotective genes. In fact, models of NRF2 deficiency indicate roles not only in redox regulation, but also in metabolism, inflammatory/autoimmune disease, cancer, and radioresistancy. Since ionizing radiation (IR) generates reactive oxygen species (ROS), it is not surprising it activates NRF2 pathways. However, unexpectedly, activation is often delayed for many days after the initial ROS burst. Here, we demonstrate that, as assayed by γ-H2AX staining, rapid DNA double strand break (DSB) formation by IR in primary mouse Nrf2-/- MEFs was not affected by loss of NRF2, and neither was DSB repair to any great extent. In spite of this, basal and IR-induced transformation was greatly enhanced, suggesting that NRF2 protects against late IR-induced genomic instability, at least in murine MEFs. Another possible IR- and NRF2-related event that could be altered is inflammation and NRF2 deficiency increased IR-induced NF-κB pro-inflammatory responses mostly late after exposure. The proclivity of NRF2 to restrain inflammation is also reflected in the reprogramming of tumor antigen-specific lymphocyte responses in mice where Nrf2 k.o. switches Th2 responses to Th1 polarity. Delayed NRF2 responses to IR may be critical for the immune transition from prooxidant inflammation to antioxidant healing as well as in driving cellular radioresistance and survival. Targeting NRF2 to reprogram immunity could be of considerable therapeutic benefit in radiation and immunotherapy.
Insights
Nuclear factor erythroid 2-related factor 2 (NRF2) deficiency enhances radiation-induced genomic instability and inflammation. NRF2 plays a crucial role in protecting against late radiation effects and reprogramming immune responses.
Area of Science:
- Molecular Biology
- Cellular Biology
- Radiation Oncology
Background:
- Nuclear factor erythroid 2-related factor 2 (NRF2) is a key regulator of antioxidant and detoxifying genes.
- NRF2 plays roles in redox regulation, metabolism, inflammation, cancer, and radioresistance.
- Ionizing radiation (IR) activates NRF2 pathways, but this activation is often delayed.
Purpose of the Study:
- To investigate the role of NRF2 in DNA double-strand break (DSB) formation and repair after IR.
- To determine NRF2's influence on IR-induced transformation and genomic instability.
- To examine NRF2's impact on IR-induced inflammation and immune responses.
Main Methods:
- Assay of DNA double-strand breaks (DSBs) using γ-H2AX staining in primary mouse Nrf2-/- MEFs.
- Evaluation of basal and IR-induced transformation.
- Assessment of IR-induced NF-κB pro-inflammatory responses.
- Analysis of tumor antigen-specific lymphocyte responses in Nrf2 knockout mice.
Main Results:
- Loss of NRF2 did not affect rapid DSB formation or repair following IR.
- NRF2 deficiency significantly enhanced basal and IR-induced transformation.
- NRF2 deficiency exacerbated late IR-induced NF-κB pro-inflammatory responses.
- Nrf2 knockout shifted Th2 responses to Th1 polarity in mice.
Conclusions:
- NRF2 protects against late IR-induced genomic instability in murine MEFs.
- Delayed NRF2 responses to IR are critical for transitioning from inflammation to healing.
- NRF2 influences cellular radioresistance and survival.
- Targeting NRF2 could offer therapeutic benefits in radiation therapy and immunotherapy.
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