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January 24, 2003The Journal of Physiology136 citationsOpen Access

Troponin I in the murine myocardium: influence on length-dependent activation and interfilament spacing

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JKJohn P. KonhilasTIThomas C. IrvingBWBeata M. Wolska

Key Result

PKA-dependent phosphorylation enhances length-dependent activation in non-transgenic hearts, while replacement of native TnI with ssTnI increases Ca2+ sensitivity but reduces length-dependent activation.

Key Points

  • The research aims to clarify how PKA-dependent phosphorylation of troponin I affects length-dependent activation and calcium sensitivity in cardiac muscle.
  • Examined length-dependent activation in skinned myocytes from non-transgenic and transgenic murine models.
  • Measured interfilament spacing through X-ray diffraction as a function of sarcomere length in cardiac trabeculae before and after PKA treatment.
  • Compared the effects of PKA treatment on calcium sensitivity and lattice spacing in both murine models.
  • In non-transgenic myocytes, PKA treatment decreased calcium sensitivity but enhanced length-dependent activation at all sarcomere lengths.
  • Transgenic myocytes with slow skeletal troponin I showed increased calcium sensitivity but reduced length-dependent activation, with PKA treatment having no effect.
  • PKA treatment increased lattice spacing in non-transgenic models while leading to decreased lattice spacing in transgenic models.

Structured PICO

P
Population
Skinned myocytes and skinned cardiac trabeculae from a non-transgenic (NTG) and a transgenic murine model (ssTnI-TG) in which the native cardiac isoform (cTnI) was completely replaced by the slow skeletal isoform of TnI
I
Intervention
Cyclic AMP-dependent protein kinase (PKA) treatment
C
Comparator
Before PKA treatment and non-transgenic (NTG) murine model
O
Outcome
Length-dependent activation (LDA), Ca2+ sensitivity, and interfilament spacing measured by X-ray diffractionsurrogate

This preclinical study demonstrates that PKA-dependent phosphorylation enhances length-dependent activation in the heart, a mechanism that cannot be entirely explained by alterations in myofilament lattice spacing.

Abstract

Cyclic AMP-dependent protein kinase (PKA) targets contractile proteins, troponin-I (TnI) and myosin binding protein C (MyBP-C) in the heart and induces a decrease in myofilament Ca2+ sensitivity. Yet, the effect of sarcomere length (SL) change on Ca2+ sensitivity (length-dependent activation: LDA) following PKA-dependent phosphorylation is not clear. To clarify the role of PKA-dependent phosphorylation of TnI and MyBP-C on LDA in the heart, we examined LDA in skinned myocytes from a non-transgenic (NTG) and a transgenic murine model in which the native cardiac isoform (cTnI) was completely replaced by the slow skeletal isoform of TnI (ssTnI-TG) lacking the phosphorylation sites for PKA, while retaining PKA sites on MyBP-C. In NTG myocytes, PKA treatment decreased Ca2+ sensitivity at each SL, but enhanced the impact of SL change on Ca2+ sensitivity. Despite a greater sensitivity to Ca2+ and a reduction in LDA, neither Ca2+ responsiveness nor LDA was affected by PKA treatment in ssTnI-TG myocytes. To determine whether the above observations could be explained by the lateral separation between thick and thin filaments, as suggested by others, we measured interfilament spacing by X-ray diffraction as a function of SL in skinned cardiac trabeculae in the passive state from both NTG and ssTnI-TG models before and following treatment with PKA. Phosphorylation by PKA increased lattice spacing at every SL in NTG trabeculae. However, the relationship between SL and myofilament lattice spacing in ssTnI-TG was markedly shifted downward to an overall decreased myofilament lattice spacing following PKA treatment. We conclude: (1) PKA-dependent phosphorylation enhances length-dependent activation in NTG hearts; (2) replacement of native TnI with ssTnI increases Ca2+ sensitivity of tension but reduces length-dependent activation; (3) MyBP-C phosphorylation by PKA does not alter calcium responsiveness and induces a decrease in myofilament lattice spacing at all sarcomere lengths and (4) length-dependent activation in the heart cannot be entirely explained by alterations in myofilament lattice spacing.

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Cite This Study

Konhilas et al. (2003) studied Myocardial length-dependent activation. PKA treatment vs. Before PKA treatment / NTG vs ssTnI-TG was evaluated on Length-dependent activation (Ca2+ sensitivity) and interfilament spacing. PKA-dependent phosphorylation enhances length-dependent activation in non-transgenic hearts, while replacement of native TnI with ssTnI increases Ca2+ sensitivity but reduces length-dependent activation.

synapsesocial.com/papers/6a0f592534fbf15957ed26bchttps://doi.org/10.1113/jphysiol.2002.038117
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