Key result
Pseudo-phosphorylated cTnI(S23D/S24D/T144E) induced a much lower Hill coefficient than wild type or single-site mutants, depressing cooperative activation of thin filaments.
Combined pseudo-phosphorylation of cardiac troponin I at Ser-23, Ser-24, and Thr-144 significantly depresses cooperative activation of thin filaments, providing insight into cardiac regulation mechanisms.
Multi-site cTnI pseudo-phosphorylation depresses thin filament cooperativity in vitro; extends mechanistic insights but leaves open relevance to human cardiac function.
There is evidence for PKC-dependent multisite phosphorylation of cardiac troponin I (cTnI) at Ser-23 and Ser-24 (also PKA sites) in the cardiac-specific N-terminal extension and at Thr-144, a unique residue in the inhibitory region. The functional effect of these phosphorylations in combination is of interest in view of data indicating intramolecular interaction between the N-terminal extension and the inhibitory region of cTnI. To determine the role of PKC-dependent phosphorylation of cTnI on sarcomeric function, we measured contractile regulation at multiple levels of complexity. Ca(2+) binding to thin filaments reconstituted with either cTnI(wild-type) or pseudo-phosphorylated cTnI(S23D/S24D), cTnI(T144E), and cTnI(S23D/S24D/T144E) was determined. Compared with controls regulated by cTnI(wild-type), thin filaments with cTnI(S23D/S24D) and cTnI(S23D/S24D/T144E) exhibited decreased Ca(2+) sensitivity. In contrast, there was no significant difference between Ca(2+) binding to thin filaments with cTnI(wild-type) and with cTnI(T144E). Studies of the pCa-force relations in skinned papillary fibers regulated by these forms of cTnI yielded similar results. However, in both the Ca(2+) binding measurements and the skinned fiber tension measurements, the presence of cTnI(S23D/S24D/T144E) induced a much lower Hill coefficient than either wild type, S23D/S24D, or T144E. These data highlight the importance of thin filament-based cooperative mechanisms in cardiac regulation, with implications for mechanisms of control of function in normal and pathological hearts.
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Lu et al. (2010) studied Cardiac sarcomeric function. Pseudo-phosphorylated cTnI(S23D/S24D/T144E) vs. cTnI(wild-type) was evaluated on Ca(2+) binding to thin filaments and pCa-force relations (Hill coefficient). Pseudo-phosphorylated cTnI(S23D/S24D/T144E) induced a much lower Hill coefficient than wild type or single-site mutants, depressing cooperative activation of thin filaments.
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