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.

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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