Proteomic mapping of proteins released during necrosis and apoptosis from cultured neonatal cardiac myocytes

Author:

Marshall Kurt D.1,Edwards Michelle A.2,Krenz Maike23,Davis J. Wade45,Baines Christopher P.123

Affiliation:

1. Department of Biomedical Sciences, University of Missouri-Columbia, Columbia, Missouri;

2. Dalton Cardiovascular Research Center, University of Missouri-Columbia, Columbia, Missouri;

3. Department of Medical Pharmacology and Physiology, University of Missouri-Columbia, Columbia, Missouri;

4. Department of Health Management and Informatics, University of Missouri-Columbia, Columbia, Missouri; and

5. Department of Statistics, University of Missouri-Columbia, Columbia, Missouri

Abstract

Cardiac injury induces myocyte apoptosis and necrosis, resulting in the secretion and/or release of intracellular proteins. Currently, myocardial injury can be detected by analysis of a limited number of biomarkers in blood or coronary artery perfusate. However, the complete proteomic signature of protein release from necrotic cardiac myocytes is unknown. Therefore, we undertook a proteomic-based study of proteins released from cultured neonatal rat cardiac myocytes in response to H2O2 (necrosis) or staurosporine (apoptosis) to identify novel specific markers of cardiac myocyte cell death. Necrosis and apoptosis resulted in the identification of 147 and 79 proteins, respectively. Necrosis resulted in a relative increase in the amount of many proteins including the classical necrotic markers lactate dehydrogenase (LDH), high-mobility group B1 (HMGB1), myoglobin, enolase, and 14-3-3 proteins. Additionally, we identified several novel markers of necrosis including HSP90, α-actinin, and Trim72, many of which were elevated over control levels earlier than classical markers of necrotic injury. In contrast, the majority of identified proteins remained at low levels during apoptotic cell death, resulting in no candidate markers for apoptosis being identified. Blotting for a selection of these proteins confirmed their release during necrosis but not apoptosis. We were able to confirm the presence of classical necrotic markers in the extracellular milieu of necrotic myocytes. We also were able to identify novel markers of necrotic cell death with relatively early release profiles compared with classical protein markers of necrosis. These results have implications for the discovery of novel biomarkers of necrotic myocyte injury, especially in the context of ischemia-reperfusion injury.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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