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May 25, 2001Circulation Research255 citationsOpen Access

Titin-Based Modulation of Calcium Sensitivity of Active Tension in Mouse Skinned Cardiac Myocytes

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OCOlivier CazorlaYWYiming WuTIThomas C. Irving

Key Points

  • This research investigates how titin-based passive force affects calcium sensitivity and tension generation in cardiac myocytes.
  • Measured force-pCa relations at varying sarcomere lengths (2.0 and 2.3 microm) with adjusted passive tension levels.

Structured PICO

P
Population
Mouse skinned cardiac myocytes and mouse left ventricular wall muscle
I
Intervention
Variation of passive tension at 2.3 microm sarcomere length (from ~1 to ~10 mN/mm2) and reduced interfilament lattice spacing with dextran
C
Comparator
Sarcomere length of 2.0 microm and low passive tension
O
Outcome
Force-pCa relations (calcium sensitivity of active tension, pCa50)surrogate

Titin-based passive tension modulates calcium sensitivity of active tension in cardiac myocytes by altering interfilament lattice spacing, suggesting a role for titin in systolic force generation.

Abstract

We studied the effect of titin-based passive force on the length dependence of activation of cardiac myocytes to explore whether titin may play a role in the generation of systolic force. Force-pCa relations were measured at sarcomere lengths (SLs) of 2.0 and 2.3 microm. Passive tension at 2.3 microm SL was varied from approximately 1 to approximately 10 mN/mm(2) by adjusting the characteristics of the stretch imposed on the passive cell before activation. Relative to 2.0 microm SL, the force-pCa curve at 2.3 microm SL and low passive tension showed a leftward shift (pCa(50) change in pCa at half-maximal activation) of 0.09+/-0.02 pCa units while at 2.3 microm SL and high passive tension the shift was increased to 0.25+/-0.03 pCa units. Passive tension also increased pCa(50) at reduced interfilament lattice spacing achieved with dextran. We tested whether titin-based passive tension influences the interfilament lattice spacing by measuring the width of the myocyte and by using small-angle x-ray diffraction of mouse left ventricular wall muscle. Cell width and interfilament lattice spacing varied inversely with passive tension, in the presence and absence of dextran. The passive tension effect on length-dependent activation may therefore result from a radial titin-based force that modulates the interfilament lattice spacing.

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Cite This Study

Cazorla et al. (2001) studied this question.

synapsesocial.com/papers/6a19b00fa2165c1276dee774https://doi.org/10.1161/hh1001.090876
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Comparison between the sarcomere length-force relations of intact and skinned trabeculae from rat right ventricle. Influence of calcium concentrations on these relations.1986 · 397 citations
  2. 2Length, force, and Ca(2+)-troponin C affinity in cardiac and slow skeletal muscle1994 · 207 citations
  3. 3Structural and Functional Responses of Mammalian Thick Filaments to Alterations in Myosin Regulatory Light Chains1998 · 82 citations
  4. 4Myofilament lattice spacing as a function of sarcomere length in isolated rat myocardium2000 · 156 citations
  5. 5Actin removal from cardiac myocytes shows that near Z line titin attaches to actin while under tension1997 · 88 citations