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June 11, 1999Circulation Research85 citationsOpen Access

Effects of Myosin Heavy Chain Isoform Switching on Ca 2+ -Activated Tension Development in Single Adult Cardiac Myocytes

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JMJoseph M. MetzgerPWPhilip A. WahrDMDaniel E. Michele

Key Result

Chemical induction of the hypothyroid state to express exclusively beta-MHC in adult rat ventricular myocytes significantly desensitized the Ca2+ sensitivity of tension development (pCa50 5.51 vs 5.68).

Structured PICO

Does myosin heavy chain isoform switching alter the Ca2+ sensitivity of tension development in adult cardiac myocytes?

P
Population
Adult rats treated chemically to induce a hypothyroid state and cause a transition in ventricular cardiac MHC isoform expression.
I
Intervention
Chemical treatment to induce hypothyroid state (causing transition from predominantly alpha-MHC to exclusively beta-MHC isoform)
C
Comparator
Predominantly alpha-MHC-expressing myocytes (control)
O
Outcome
Ca2+ sensitivity of isometric tension development (pCa50)surrogate

Myosin heavy chain isoform switching from alpha to beta in adult cardiac myocytes alters the Ca2+ sensitivity of stiffness and tension development, highlighting its role in defining cardiac contractile function.

Main Result

Absolute Event Rate: 5.51% vs 5.68%

Abstract

Cardiac myosin heavy chain (MHC) isoforms are known to play a key role in defining the dynamic contractile behavior of the heart during development. It remains unclear, however, whether cardiac MHC isoforms influence other important features of cardiac contractility, including the Ca2+ sensitivity of isometric tension development. To address this question, adult rats were treated chemically to induce the hypothyroid state and cause a transition in the ventricular cardiac MHC isoform expression pattern from predominantly the alpha-MHC isoform to exclusively the beta-MHC isoform. We found a significant desensitization in the Ca2+ sensitivity of tension development in beta-MHC-expressing ventricular myocytes (pCa50=5. 51+/-0.03, where pCa is -logCa2+, and pCa50 is pCa at which tension is one-half maximal) compared with that in predominantly alpha-MHC-expressing myocytes (pCa50=5.68+/-0.05). No differences between the 2 groups were observed in the steepness of the tension-pCa relationship or in the maximum isometric force generated. Instantaneous stiffness measurements were made that provide a relative measure of changes in the numbers of myosin crossbridges attached to actin during Ca2+ activation. Results showed that the relative stiffness-pCa relationship was shifted to the right in beta-MHC-expressing myocytes compared with the alpha-MHC-expressing cardiac myocytes (pCa50=5.47+/-0.05 versus 5.76+/-0.05, respectively). We conclude that MHC isoform switching in adult cardiac myocytes alters the Ca2+ sensitivity of stiffness and tension development. These results suggest that the activation properties of the thin filament are in part MHC isoform dependent in cardiac muscle, indicating an additional role for MHC isoforms in defining cardiac contractile function.

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Cite This Study

Metzger et al. (1999) studied Hypothyroid state / MHC isoform switching. Chemical induction of hypothyroid state (beta-MHC isoform expression) vs. Predominantly alpha-MHC-expressing myocytes was evaluated on Ca2+ sensitivity of tension development (pCa50). Chemical induction of the hypothyroid state to express exclusively beta-MHC in adult rat ventricular myocytes significantly desensitized the Ca2+ sensitivity of tension development (pCa50 5.51 vs 5.68).

synapsesocial.com/papers/6a64b13a7661d0b8adcfbc63https://doi.org/10.1161/01.res.84.11.1310
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