The role of RIP2 in p38 MAPK activation in the stressed heart

Sebastien Jacquet1, Yasuhiro Nishino, Sarawut Kumphune

  • 1Cardiovascular Division, King's College London, The Rayne Institute, St. Thomas' Hospital, London SE1 7EH, United Kingdom.

Insights

Receptor-interacting protein 2 (RIP2) does not mediate p38 MAPK activation during cardiac ischemia. However, RIP2 influences p38 MAPK activation and cardiac function in response to endotoxins.

Area of Science:

  • Cardiovascular Biology
  • Molecular Signaling
  • Myocardial Ischemia

Background:

  • p38 MAPK dual phosphorylation exacerbates myocardial ischemic injury.
  • Receptor-interacting protein 2 (RIP2) is implicated upstream of p38 MAPK in non-cardiac tissues.
  • SB203580 inhibits p38 MAPK and is sensitive to RIP2.

Purpose of the Study:

  • To investigate the role of the RIP2-p38 MAPK signaling axis in the heart.
  • To determine if RIP2 mediates p38 MAPK activation during myocardial ischemia.

Main Methods:

  • Adenovirus-mediated RIP2 expression in adult rat ventricular myocytes.
  • Simulated ischemia and pharmacological inhibition (SB203580).
  • Assessment of p38 MAPK activation, MKK3/4/6 phosphorylation, and myocardial infarction size in wild-type and RIP2 null mice.

Main Results:

  • RIP2 overexpression induced SB203580-sensitive p38 MAPK activation in myocytes.
  • RIP2 did not mediate p38 MAPK activation during simulated or true ischemia.
  • RIP2 deficiency attenuated p38 MAPK activation and contractile depression by muramyl dipeptide.

Conclusions:

  • RIP2 is not responsible for the p38 MAPK activation pattern during cardiac ischemia.
  • RIP2 plays a role in p38 MAPK-mediated responses to endotoxins in the heart.

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