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Acetylation of muscle creatine kinase negatively impacts high-energy phosphotransfer in heart failure
Matthew A. Walker, Juan Chavez, Outi Villet, Xiaoting Tang, Andrew Keller, James E. Bruce, Rong Tian
Matthew A. Walker, Juan Chavez, Outi Villet, Xiaoting Tang, Andrew Keller, James E. Bruce, Rong Tian
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Research Article Cardiology

Acetylation of muscle creatine kinase negatively impacts high-energy phosphotransfer in heart failure

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Abstract

A hallmark of impaired myocardial energetics in failing hearts is the downregulation of the creatine kinase (CK) system. In heart failure patients and animal models, myocardial phosphocreatine content and the flux of the CK reaction are negatively correlated with the outcome of heart failure. While decreased CK activity is highly reproducible in failing hearts, the underlying mechanisms remains elusive. Here, we report an inverse relationship between the activity and acetylation of CK muscle form (CKM) in human and mouse failing hearts. Hyperacetylation of recombinant CKM disrupted MM homodimer formation and reduced enzymatic activity, which could be reversed by sirtuin 2 treatment. Mass spectrometry analysis identified multiple lysine residues on the MM dimer interface, which were hyperacetylated in the failing hearts. Molecular modeling of CK MM homodimer suggested that hyperacetylation prevented dimer formation through interfering salt bridges within and between the 2 monomers. Deacetylation by sirtuin 2 reduced acetylation of the critical lysine residues, improved dimer formation, and restored CKM activity from failing heart tissue. These findings reveal a potentially novel mechanism in the regulation of CK activity and provide a potential target for improving high-energy phosphoryl transfer in heart failure.

Authors

Matthew A. Walker, Juan Chavez, Outi Villet, Xiaoting Tang, Andrew Keller, James E. Bruce, Rong Tian

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Figure 1

Lysine acetylation level on creatine kinase negatively correlates with its activity in heart failure.

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Lysine acetylation level on creatine kinase negatively correlates with i...
(A and B) Activity of CK isoforms were determined in myocardial samples from sham and TAC murine hearts (A) or from heart tissue from nonfailing and failing human hearts (B); n = 5 per group. (C) Representative immunoblots of total protein content and acetylation level of CKM in murine and human failing heart. (D) The ratio of acetylated CKM to total CKM protein content in murine and human failing hearts; n = 5 for all groups. (E) Correlation curve between the activity level of CKM isozyme and its acetylation level in murine and human heart failure samples. A linear regression analysis was used; n = 5 per group. (F) The ratio of acetylated MtCK normalized to total MtCK protein level in failing hearts; n = 5 per group. (G and H) Graphs showing the relation between the activity of MtCK and its acetylation level in mouse (G) and human (H) heart failure samples. A linear regression analysis was used; n = 5 per group. (I) Acetylation level of murine CKM and MtCK were compared using an anti–acetyl-lysine–specific antibody; n = 6 per group. All data presented as mean ± SEM. P value calculated by one-way ANOVA followed by Tukey post hoc analysis (A, B, D, and F) or by Student’s t test (I). *P < 0.05 versus sham, #P < 0.05 versus nonfailing, $P < 0.05 versus CKM.

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ISSN 2379-3708

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