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Use of Enzymatic Biosensors to Quantify Endogenous ATP or H2O2 in the Kidney
Published on: October 12, 2015
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.
Abstract:
ROS, such as H(2)O(2), are a component of pathological conditions in many organ systems and have been reported to be elevated in cardiac pathophysiology. The experiments presented here test the hypothesis that H(2)O(2) induces alterations in cardiac myofilament function by the posttranslational modification of sarcomeric proteins indirectly through PKC signaling. In vitro assessment of actomyosin Mg(2+)-ATPase activity of myofibrillar fractions showed blunted relative ATP consumption in the relaxed state (pCa 8.0) in response to treatment with 0.5 mM H(2)O(2) before myofilament isolation. The effect was attributable to downstream "redox signaling," inasmuch as the direct application of H(2)O(2) to isolated myofibrils did not alter Mg(2+)-ATPase activity. Ca(2+)-ATPase activity, which was used as a measure of myofibrillar myosin function, was unaffected by H(2)O(2). Functional experiments using rat cardiac trabeculae treated with 0.5 or 5 mM H(2)O(2) followed by detergent extraction of membranes demonstrated increased Ca(2+) sensitivity of force production, a faster rate of force redevelopment, and (for 5 mM) decreased maximum tension. Biochemical analysis of myocardial samples treated with 0.5 mM H(2)O(2) demonstrated increased phosphorylation of two sarcomeric proteins: cardiac troponin I and myosin-binding protein-C. These changes were eliminated by a general PKC inhibitor. However, H(2)O(2) and the general PKC activator PMA induced different phosphorylation patterns in cardiomyocytes in which PKC-delta was elevated by viral infection. These data provide evidence that PKC-dependent redox signaling affects the function of cardiac myofilaments and indicate modification of specific proteins through this signaling mechanism.
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.

