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Published on: January 12, 2020
The canonical NF-κB pathway differentially protects normal and human tumor cells from ROS-induced DNA damage
Alexandros Sfikas1, Christina Batsi, Evangelia Tselikou
1Cell and Molecular Physiology Unit, Laboratory of Physiology, School of Medicine, University of Ioannina, 45110 Ioannina, Greece.
Abstract:
DNA damage responses (DDR) invoke senescence or apoptosis depending on stimulus intensity and the degree of activation of the p53-p21(Cip1/Waf1) axis; but the functional impact of NF-κB signaling on these different outcomes in normal vs. human cancer cells remains poorly understood. We investigated the NF-κB-dependent effects and mechanism underlying reactive oxygen species (ROS)-mediated DDR outcomes of normal human lung fibroblasts (HDFs) and A549 human lung cancer epithelial cells. To activate DDR, ROS accumulation was induced by different doses of H(2)O(2). The effect of ROS induction caused a G2 or G2-M phase cell cycle arrest of both human cell types. However, ROS-mediated DDR eventually culminated in different end points with HDFs undergoing premature senescence and A549 cancer cells succumbing to apoptosis. NF-κB p65/RelA nuclear translocation and Ser536 phosphorylation were induced in response to H(2)O(2)-mediated ROS accumulation. Importantly, blocking the activities of canonical NF-κB subunits with an IκBα super-repressor or suppressing canonical NF-κB signaling by IKKβ knock-down accelerated HDF premature senescence by up-regulating the p53-p21(Cip1/Waf1) axis; but inhibiting the canonical NF-κB pathway exacerbated H(2)O(2)-induced A549 cell apoptosis. HDF premature aging occurred in conjunction with γ-H2AX chromatin deposition, senescence-associated heterochromatic foci and beta-galactosidase staining. p53 knock-down abrogated H(2)O(2)-induced premature senescence of vector control- and IκBαSR-expressing HDFs functionally linking canonical NF-κB-dependent control of p53 levels to ROS-induced HDF senescence. We conclude that IKKβ-driven canonical NF-κB signaling has different functional roles for the outcome of ROS responses in the contexts of normal vs. human tumor cells by respectively protecting them against DDR-dependent premature senescence and apoptosis.
Insights
Nuclear factor-kappa B (NF-κB) signaling impacts DNA damage responses differently in normal cells versus cancer cells. NF-κB activation protects normal cells from premature senescence and cancer cells from apoptosis.
Area of Science:
- Cellular Biology
- Molecular Biology
- Cancer Research
Background:
- DNA damage responses (DDR) can lead to senescence or apoptosis.
- The role of NF-κB signaling in DDR outcomes is not fully understood.
- Reactive oxygen species (ROS) are key mediators of DDR.
Purpose of the Study:
- To investigate NF-κB-dependent mechanisms in ROS-mediated DDR.
- To compare DDR outcomes in normal human lung fibroblasts (HDFs) and A549 lung cancer cells.
- To elucidate the differential roles of NF-κB in normal vs. cancer cell fate.
Main Methods:
- Induction of ROS accumulation using hydrogen peroxide (H2O2) to activate DDR.
- Analysis of cell cycle arrest, senescence, and apoptosis.
- Manipulation of NF-κB signaling using IκBα super-repressor and IKKβ knock-down.
- Assessment of p53-p21(Cip1/Waf1) axis activation and senescence markers.
Main Results:
- ROS induced G2-M cell cycle arrest in both HDFs and A549 cells.
- HDFs underwent premature senescence, while A549 cells underwent apoptosis.
- NF-κB activation (p65/RelA translocation) occurred in response to ROS.
- Inhibition of NF-κB accelerated senescence in HDFs but exacerbated apoptosis in A549 cells.
- p53 knockdown abrogated ROS-induced senescence in HDFs.
Conclusions:
- Canonical NF-κB signaling, driven by IKKβ, plays distinct roles in ROS-mediated DDR.
- NF-κB protects normal cells from premature senescence by modulating the p53-p21 axis.
- NF-κB protects cancer cells from apoptosis during ROS-induced DDR.
- Differential NF-κB activity contributes to distinct cellular fates in normal vs. tumor cells facing DNA damage.
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