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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Regulation of reactive oxygen species by p53: implications for nitric oxide-mediated apoptosis
Daniel A Popowich1, Ashley K Vavra, Christopher P Walsh
1Division of Vascular Surgery, Northwestern Univ., 676 N. St. Clair, no. 650, Chicago, IL 60611, USA.
Abstract:
Nitric oxide (NO) induces vascular smooth muscle cell (VSMC) apoptosis in part through activation of p53. Traditionally, p53 has been thought of as the gatekeeper, determining if a cell should undergo arrest and repair or apoptosis following exposure to DNA-damaging agents, depending on the severity of the damage. However, our laboratory previously demonstrated that NO induces apoptosis to a much greater extent in p53(-/-) compared with p53(+/+) VSMC. Increased reactive oxygen species (ROS) within VSMC has been shown to induce VSMC apoptosis, and recently it was found that the absence of, or lack of, functional p53 leads to increased ROS and oxidative stress within different cell types. This study investigated the differences in intracellular ROS levels between p53(-/-) and p53(+/+) VSMC and examined if these differences were responsible for the increased susceptibility to NO-induced apoptosis observed in p53(-/-) VSMC. We found that p53 actually protects VSMC from NO-induced apoptosis by increasing antioxidant protein expression [i.e., peroxiredoxin-3 (PRx-3)], thereby reducing ROS levels and cellular oxidative stress. We also observed that the NO-induced apoptosis in p53(-/-) VSMC was largely abrogated by pretreatment with catalase. Furthermore, when the antioxidant protein PRx-3 and its specific electron acceptor thioredoxin-2 were silenced within p53(+/+) VSMC with small-interfering RNA, not only did these cells exhibit greater ROS production, but they also exhibited increased NO-induced apoptosis similar to that observed in p53(-/-) VSMC. These findings suggest that ROS mediate NO-induced VSMC apoptosis and that p53 protects VSMC from NO-induced apoptosis by decreasing intracellular ROS. This research demonstrates that p53 has antioxidant functions in stressed cells and also suggests that p53 has antiapoptotic properties.
Insights
The tumor suppressor p53 protects vascular smooth muscle cells from nitric oxide-induced apoptosis by reducing reactive oxygen species (ROS). Loss of p53 increases ROS and cell death, highlighting p53's antioxidant and antiapoptotic roles.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Nitric oxide (NO) induces vascular smooth muscle cell (VSMC) apoptosis, partly via p53 activation.
- The role of p53 in NO-induced VSMC apoptosis and its relationship with reactive oxygen species (ROS) remain unclear.
- Previous studies indicated higher NO-induced apoptosis in p53-deficient VSMC and a link between p53 absence and increased ROS.
Purpose of the Study:
- To investigate the role of intracellular ROS in p53-mediated protection against NO-induced VSMC apoptosis.
- To determine if differences in ROS levels account for the increased susceptibility of p53(-/-) VSMC to NO.
Main Methods:
- Comparison of intracellular ROS levels in p53(-/-) and p53(+/+) VSMC.
- Assessment of NO-induced apoptosis in VSMC with and without p53.
- Evaluation of the effect of catalase pretreatment on NO-induced apoptosis in p53(-/-) VSMC.
- Silencing of peroxiredoxin-3 (PRx-3) and thioredoxin-2 in p53(+/+) VSMC using small-interfering RNA.
Main Results:
- p53 protects VSMC from NO-induced apoptosis by upregulating antioxidant protein expression, such as peroxiredoxin-3 (PRx-3), thus lowering ROS and oxidative stress.
- NO-induced apoptosis in p53(-/-) VSMC was significantly reduced by catalase treatment.
- Silencing PRx-3 and thioredoxin-2 in p53(+/+) VSMC led to increased ROS production and heightened sensitivity to NO-induced apoptosis.
Conclusions:
- ROS mediate NO-induced VSMC apoptosis.
- p53 protects VSMC from NO-induced apoptosis by decreasing intracellular ROS, demonstrating antioxidant and antiapoptotic functions.
- The p53-mediated antioxidant defense involves increasing expression of proteins like PRx-3.
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