H2O2 alters rat cardiac sarcomere function and protein phosphorylation through redox signaling

Benjamin S Avner1, Aaron C Hinken, Chao Yuan

  • 1Department of Physiology and Biophysics and Center for Cardiovascular Research, College of Medicine, University of Illinois, Chicago, Illinois 60612-7342, USA.

Insights

Hydrogen peroxide (H2O2) alters cardiac myofilament function through protein modification via protein kinase C (PKC) signaling. This redox signaling impacts cardiac contractility and protein phosphorylation.

Area of Science:

  • Cardiovascular Physiology
  • Biochemistry
  • Cell Signaling

Background:

  • Reactive oxygen species (ROS), including hydrogen peroxide (H2O2), are implicated in cardiac pathophysiology.
  • Elevated ROS levels are associated with detrimental changes in heart function.

Purpose of the Study:

  • To investigate if H2O2 induces alterations in cardiac myofilament function.
  • To determine if these alterations occur via posttranslational modification of sarcomeric proteins through protein kinase C (PKC) signaling.

Main Methods:

  • In vitro assessment of actomyosin Mg(2+)-ATPase activity in myofibrillar fractions.
  • Functional experiments on rat cardiac trabeculae.
  • Biochemical analysis of myocardial samples for protein phosphorylation.
  • Utilized PKC inhibitors and activators.

Main Results:

  • H2O2 treatment before isolation blunted ATP consumption in relaxed myofibrils, indicating redox signaling effects.
  • Cardiac trabeculae showed increased Ca(2+) sensitivity and faster force redevelopment after H2O2 treatment.
  • Increased phosphorylation of cardiac troponin I and myosin-binding protein-C was observed, dependent on PKC.
  • PKC inhibition abolished H2O2-induced phosphorylation changes.

Conclusions:

  • PKC-dependent redox signaling significantly affects cardiac myofilament function.
  • Specific sarcomeric proteins are modified through this signaling pathway, impacting cardiac contractility.
  • H2O2-induced cardiac dysfunction involves intricate PKC-mediated posttranslational modifications.