cIAP1 and TAK1 protect cells from TNF-induced necrosis by preventing RIP1/RIP3-dependent reactive oxygen species

N Vanlangenakker1, T Vanden Berghe, P Bogaert

  • 1Department for Molecular Biomedical Research, VIB, Technologiepark 927, Zwijnaarde-Ghent 9052, Belgium.

Insights

Cellular inhibitor of apoptosis proteins (cIAPs) and TAK1 kinase prevent tumor necrosis factor (TNF)-induced necrosis. Depleting cIAP1 sensitizes cells to TNF, promoting RIP1/RIP3-dependent reactive oxygen species production.

Area of Science:

  • Cellular biology
  • Molecular mechanisms of cell death
  • Apoptosis and Necrosis pathways

Background:

  • Inhibitor of Apoptosis Proteins (IAPs) regulate cell death.
  • Cellular inhibitor of apoptosis proteins-1/-2 (cIAP1/cIAP2) function as E3 ligases for RIP1 and caspases.
  • RIP1 is a key regulator of both apoptosis and necrosis.

Purpose of the Study:

  • To investigate the role of IAPs in TNF-induced necrosis.
  • To elucidate the molecular mechanisms by which cIAP1 regulates TNF-induced necrosis.
  • To identify key signaling molecules involved in IAP-mediated protection against necrosis.

Main Methods:

  • RNA interference (RNAi) to deplete IAPs, TAK1, or CYLD.
  • Treatment with IAP antagonist BV6.
  • Analysis of cell death sensitivity to various death stimuli (TNF, anti-Fas, poly(I:C), oxidative stress).
  • Assessment of RIP1 kinase activity, necrosome formation, and reactive oxygen species (ROS) production.

Main Results:

  • Depletion of IAPs, particularly cIAP1, sensitized cells to TNF-induced necrosis.
  • Lowering TAK1 levels or inhibiting its activity also sensitized cells to TNF-induced necrosis.
  • Repression of CYLD conferred resistance to TNF-induced necrosis.
  • Sensitization to TNF-induced necrosis correlated with increased RIP1 kinase activity, necrosome formation, and ROS production.

Conclusions:

  • cIAP1 and TAK1 are crucial negative regulators of TNF-induced necrosis.
  • These proteins protect cells by inhibiting RIP1 kinase activity and subsequent ROS production.
  • The findings reveal a novel mechanism of IAP-mediated protection against programmed necrosis.

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