Titin-Based Cardiac Myocyte Stiffening Contributes to Early Adaptive Ventricular Remodeling After Myocardial Infarction

Author:

Kötter Sebastian1,Kazmierowska Malgorzata1,Andresen Christian1,Bottermann Katharina1,Grandoch Maria1,Gorressen Simone1,Heinen Andre1,Moll Jens M.1,Scheller Jürgen1,Gödecke Axel1,Fischer Jens W.1,Schmitt Joachim P.1,Krüger Martina1

Affiliation:

1. From the Department of Cardiovascular Physiology (S.K., M.K., C.A., K.B., A.H., A.G., M.K.), Department of Pharmacology and Clinical Pharmacology (M.G., S.G., J.W.F., J.P.S.), and Institute of Biochemistry and Molecular Biology II (J.M.M., J.S.), Medical Faculty, Heinrich-Heine University Düsseldorf, Germany.

Abstract

Rationale: Myocardial infarction (MI) increases the wall stress in the viable myocardium and initiates early adaptive remodeling in the left ventricle to maintain cardiac output. Later remodeling processes include fibrotic reorganization that eventually leads to cardiac failure. Understanding the mechanisms that support cardiac function in the early phase post MI and identifying the processes that initiate transition to maladaptive remodeling are of major clinical interest. Objective: To characterize MI-induced changes in titin-based cardiac myocyte stiffness and to elucidate the role of titin in ventricular remodeling of remote myocardium in the early phase after MI. Methods and Results: Titin properties were analyzed in Langendorff-perfused mouse hearts after 20-minute ischemia/60-minute reperfusion (I/R), and mouse hearts that underwent ligature of the left anterior descending coronary artery for 3 or 10 days. Cardiac myocyte passive tension was significantly increased 1 hour after ischemia/reperfusion and 3 and 10 days after left anterior descending coronary artery ligature. The increased passive tension was caused by hypophosphorylation of the titin N2-B unique sequence and hyperphosphorylation of the PEVK (titin domain rich in proline, glutamate, valine, and lysine) region of titin. Blocking of interleukine-6 before left anterior descending coronary artery ligature restored titin-based myocyte tension after MI, suggesting that MI-induced titin stiffening is mediated by elevated levels of the cytokine interleukine-6. We further demonstrate that the early remodeling processes 3 days after MI involve accelerated titin turnover by the ubiquitin–proteasome system. Conclusions: We conclude that titin-based cardiac myocyte stiffening acutely after MI is partly mediated by interleukine-6 and is an important mechanism of remote myocardium to adapt to the increased mechanical demands after myocardial injury.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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1. The Role of Titin Phosphorylation in Changes in Myocardial Stiffness in Cardiomyopathies;Российский физиологический журнал им  И  М  Сеченова;2024-09-01

2. Modulation of Titin and Contraction-Regulating Proteins in a Rat Model of Heart Failure with Preserved Ejection Fraction: Limb vs. Diaphragmatic Muscle;International Journal of Molecular Sciences;2024-06-16

3. Myocardial Infarction Suppresses Protein Synthesis and Causes Decoupling of Transcription and Translation;JACC: Basic to Translational Science;2024-06

4. Role of Titin Phosphorylation in Myocardial Stiffness Changes during Cardiomyopathies;Journal of Evolutionary Biochemistry and Physiology;2024-03

5. The origin of myocardial passive stiffness: more than the sum of its parts?;Pflügers Archiv - European Journal of Physiology;2024-02-29

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