Key result
Static tension was present in psoas and soleus myofibrils but not in ventricle myofibrils, suggesting it is directly associated with Ca(2+)-dependent changes in titin properties.
The increase in static tension upon calcium activation is directly associated with calcium-dependent changes in titin properties, which vary by titin isoform and are absent in ventricular myofibrils.
May inform titin isoform targeting in skeletal muscle; leaves open cardiac relevance pending human studies.
Skeletal muscles present a non-cross-bridge increase in sarcomere stiffness and tension on Ca(2+) activation, referred to as static stiffness and static tension, respectively. It has been hypothesized that this increase in tension is caused by Ca(2+)-dependent changes in the properties of titin molecules. To verify this hypothesis, we investigated the static tension in muscles containing different titin isoforms. Permeabilized myofibrils were isolated from the psoas, soleus, and heart ventricle from the rabbit, and tested in pCa 9.0 and pCa 4.5, before and after extraction of troponin C, thin filaments, and treatment with the actomyosin inhibitor blebbistatin. The myofibrils were tested with stretches of different amplitudes in sarcomere lengths varying between 1.93 and 3.37 μm for the psoas, 2.68 and 4.21 μm for the soleus, and 1.51 and 2.86 μm for the ventricle. Using gel electrophoresis, we confirmed that the three muscles tested have different titin isoforms. The static tension was present in psoas and soleus myofibrils, but not in ventricle myofibrils, and higher in psoas myofibrils than in soleus myofibrils. These results suggest that the increase in the static tension is directly associated with Ca(2+)-dependent change in titin properties and not associated with changes in titin-actin interactions.
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Cornachione et al. (2016) studied this question. Stretches of different amplitudes in varying sarcomere lengths vs. Different muscle types (psoas, soleus, ventricle) and different pCa levels was evaluated on Static tension. Static tension was present in psoas and soleus myofibrils but not in ventricle myofibrils, suggesting it is directly associated with Ca(2+)-dependent changes in titin properties.
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