Titin-based myofilament stiffness is largely modulated by phosphorylation of its elastic I-band regions N2-Bus (decreases passive stiffness, PT) and PEVK (increases PT). Here, we tested the hypothesis that acute exercise changes titin phosphorylation and modifies myofilament stiffness. Adult rats were exercised on a treadmill for 15 min, untrained animals served as controls. Titin phosphorylation was determined by Western blot analysis using phosphospecific antibodies to Ser4099 and Ser4010 in the N2-Bus region (PKG and PKA-dependent. respectively), and to Ser11878 and Ser 12022 in the PEVK region (PKCα and CaMKIIδ-dependent, respectively). Passive tension was determined by step-wise stretching of isolated skinned cardiomyocytes to sarcomer...
Cardiac titin is the main determinant of sarcomere stiffness during diastolic relaxation. To explore...
Stretch of myocardium, such as occurs upon increased filling of the cardiac chamber, induces two dis...
Linke WA, Ivemeyer M, Labeit S, Hinssen H, Ruegg JC, Gautel M. Actin-titin interaction in cardiac my...
Long-term exercise induces physiological cardiac adaptation, a condition referred to as athlete’s he...
The giant sarcomeric protein titin spans the length of the half sarcomere and contains an I-band spa...
Diastolic performance is regulated by net myocardial stiffness, which is determined by the mechano-s...
Rationale: Protein kinase C (PKC) regulates contractility of cardiac muscle cells by phosphorylating...
Protein Kinase C-alpha (PKCalpha) was recently reported to increase myocardial stiffness, an effect ...
The giant protein titin performs structure-preserving functions in the sarcomere and is important fo...
The myofilament protein, cardiac troponin I (cTnI), is a critical regulatory protein in the contract...
AbstractThe giant protein titin is responsible for the elasticity of nonactivated muscle sarcomeres....
Muscles sense internally generated and externally applied forces, responding to these in a coordinat...
Objective: Regular exercise enhances cardiac function and modulates myocyte growth in healthy indivi...
In the first half of this work, titin's role in cardiac function was studied using intact cardiac my...
Contains fulltext : 140996.pdf (publisher's version ) (Open Access)Cardiac titin i...
Cardiac titin is the main determinant of sarcomere stiffness during diastolic relaxation. To explore...
Stretch of myocardium, such as occurs upon increased filling of the cardiac chamber, induces two dis...
Linke WA, Ivemeyer M, Labeit S, Hinssen H, Ruegg JC, Gautel M. Actin-titin interaction in cardiac my...
Long-term exercise induces physiological cardiac adaptation, a condition referred to as athlete’s he...
The giant sarcomeric protein titin spans the length of the half sarcomere and contains an I-band spa...
Diastolic performance is regulated by net myocardial stiffness, which is determined by the mechano-s...
Rationale: Protein kinase C (PKC) regulates contractility of cardiac muscle cells by phosphorylating...
Protein Kinase C-alpha (PKCalpha) was recently reported to increase myocardial stiffness, an effect ...
The giant protein titin performs structure-preserving functions in the sarcomere and is important fo...
The myofilament protein, cardiac troponin I (cTnI), is a critical regulatory protein in the contract...
AbstractThe giant protein titin is responsible for the elasticity of nonactivated muscle sarcomeres....
Muscles sense internally generated and externally applied forces, responding to these in a coordinat...
Objective: Regular exercise enhances cardiac function and modulates myocyte growth in healthy indivi...
In the first half of this work, titin's role in cardiac function was studied using intact cardiac my...
Contains fulltext : 140996.pdf (publisher's version ) (Open Access)Cardiac titin i...
Cardiac titin is the main determinant of sarcomere stiffness during diastolic relaxation. To explore...
Stretch of myocardium, such as occurs upon increased filling of the cardiac chamber, induces two dis...
Linke WA, Ivemeyer M, Labeit S, Hinssen H, Ruegg JC, Gautel M. Actin-titin interaction in cardiac my...