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Published on: December 21, 2011
NOX2-derived reactive oxygen species are crucial for CD29-induced pro-survival signalling in cardiomyocytes
Berit I Rosc-Schlüter1, Stéphanie P Häuselmann, Vera Lorenz
1Myocardial Research, Department of Biomedicine, University and University Hospital Basel, Hebelstrasse 20, 4031 Basel, Switzerland.
Insights
CD29 (β(1)-integrin) activates NADPH oxidase 2 (NOX2) to produce reactive oxygen species (ROS) that promote cardiomyocyte survival. This NOX2-derived ROS signaling is essential for CD29-induced pro-survival pathways in the heart.
Area of Science:
- Cardiovascular Biology
- Cell Signaling
- Oxidative Stress
Background:
- CD29 (β(1)-integrin) is a vital cell adhesion receptor for cardiomyocyte growth and survival.
- Dysfunctional CD29 signaling contributes to severe heart disease.
- The precise mechanisms of CD29-induced signaling in cardiomyocytes, particularly the role of reactive oxygen species (ROS), remain incompletely understood.
Purpose of the Study:
- To investigate the role of ROS and NADPH oxidase (NOX) in CD29-induced survival signaling in cardiomyocytes.
- To elucidate the contribution of NOX2-derived ROS to CD29-mediated pro-survival pathways.
Main Methods:
- Utilized neonatal rat ventricular myocytes and mouse cardiomyocytes.
- Assessed ROS production using dichlorodihydrofluorescein diacetate and flow cytometry.
- Measured NOX activity via lucigenin-enhanced chemiluminescence.
- Investigated signaling pathways including MEK/ERK and PI3K/Akt.
- Employed NOX inhibitors (apocynin, diphenylene iodonium) and ROS scavengers (MnTMPyP, superoxide dismutase, catalase).
- Examined cardiomyocytes deficient in NOX2 or p47(phox).
Main Results:
- CD29 activation triggered an oxidative burst and enhanced NOX activity in cardiomyocytes.
- CD29 signaling activated pro-survival pathways (MEK/ERK, PI3K/Akt) and inhibited glycogen synthase kinase-3β.
- ROS scavengers and NOX inhibitors blocked CD29-induced pro-survival signaling.
- Cardiomyocytes lacking NOX2 or p47(phox) failed to activate CD29-induced protective pathways.
- CD29 signaling improved cardiomyocyte viability under oxidative stress.
Conclusions:
- p47(phox)-dependent, NOX2-derived ROS are indispensable for CD29-induced pro-survival signaling in cardiomyocytes.
- These findings highlight a beneficial role for ROS in cellular function.
- NOX2-derived ROS play a critical role in cardiomyocyte survival.
Aims:
The highly expressed cell adhesion receptor CD29 (β(1)-integrin) is essential for cardiomyocyte growth and survival, and its loss of function causes severe heart disease. However, CD29-induced signalling in cardiomyocytes is ill defined and may involve reactive oxygen species (ROS). A decisive source of cardiac ROS is the abundant NADPH oxidase (NOX) isoform NOX2. Because understanding of NOX-derived ROS in the heart is still poor, we sought to test the role of ROS and NOX in CD29-induced survival signalling in cardiomyocytes.
Methods And Results:
In neonatal rat ventricular myocytes, CD29 activation induced intracellular ROS formation (oxidative burst) as assessed by flow cytometry using the redox-sensitive fluorescent dye dichlorodihydrofluorescein diacetate. This burst was inhibited by apocynin and diphenylene iodonium. Further, activation of CD29 enhanced NOX activity (lucigenin-enhanced chemiluminescence) and activated the MEK/ERK and PI3K/Akt survival pathways. CD29 also induced phosphorylation of the inhibitory Ser9 on the pro-apoptotic kinase glycogen synthase kinase-3β in a PI3K/Akt- and MEK-dependent manner, and improved cardiomyocyte viability under conditions of oxidative stress. The ROS scavenger MnTMPyP or adenoviral co-overexpression of the antioxidant enzymes superoxide dismutase and catalase inhibited CD29-induced pro-survival signalling. Further, CD29-induced protective pathways were lost in mouse cardiomyocytes deficient for NOX2 or functional p47(phox), a regulatory subunit of NOX.
Conclusion:
p47(phox)-dependent, NOX2-derived ROS are mandatory for CD29-induced pro-survival signalling in cardiomyocytes. These findings go in line with a growing body of evidence suggesting that ROS can be beneficial to the cell and support a crucial role for NOX2-derived ROS in cell survival in the heart.
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