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Updated: Nov 3, 2025

Rodent Working Heart Model for the Study of Myocardial Performance and Oxygen Consumption
Published on: August 16, 2016
A reverse stroke characterizes the force generation of cardiac myofilaments, leading to an understanding of heart
Yongtae Hwang1, Takumi Washio2,3, Toshiaki Hisada2
1Department of Physics, Graduate School of Science, University of Tokyo, 113-0033 Tokyo, Japan.
Insights
Cardiac myosin
Area of Science:
- Biophysics
- Molecular Biology
- Cardiovascular Physiology
Background:
- Cardiac myosin's molecular properties influence interactions with actin, driving cardiac contraction and relaxation.
- The collective behavior of myosin molecules in cardiac myofilaments and their impact on force production remain incompletely understood.
Purpose of the Study:
- To investigate the unique collective behaviors of cardiac myosin molecules.
- To determine how individual myosin molecule properties affect force production in cardiac contractility.
Main Methods:
- Optical tweezers were used to measure the force production of cardiac myofilaments.
- Single cardiac and fast skeletal myosin molecules interacting with actin filaments were evaluated under load.
- A simulation model integrated single-molecule and myofilament experimental results.
Main Results:
- Cardiac myofilaments exhibited stepwise force generation with a higher frequency of backward steps at lower loads and higher stall forces compared to fast skeletal myofilaments.
- Cardiac myosin molecules dynamically switched among three conformational positions, unlike fast skeletal myosin, which remained mostly in the post-power stroke position.
- Cardiac myosin was observed to execute the reverse stroke more frequently than fast skeletal myosin.
Conclusions:
- The reversal of the cardiac myosin power stroke may be crucial for characterizing the force output of cardiac myosin ensembles.
- This power stroke reversal might play a key role in facilitating heart contractions and overall cardiac function.
Abstract:
Changes in the molecular properties of cardiac myosin strongly affect the interactions of myosin with actin that result in cardiac contraction and relaxation. However, it remains unclear how myosin molecules work together in cardiac myofilaments and which properties of the individual myosin molecules impact force production to drive cardiac contractility. Here, we measured the force production of cardiac myofilaments using optical tweezers. The measurements revealed that stepwise force generation was associated with a higher frequency of backward steps at lower loads and higher stall forces than those of fast skeletal myofilaments. To understand these unique collective behaviors of cardiac myosin, the dynamic responses of single cardiac and fast skeletal myosin molecules, interacting with actin filaments, were evaluated under load. The cardiac myosin molecules switched among three distinct conformational positions, ranging from pre- to post-power stroke positions, in 1 mM ADP and 0 to 10 mM phosphate solution. In contrast to cardiac myosin, fast skeletal myosin stayed primarily in the post-power stroke position, suggesting that cardiac myosin executes the reverse stroke more frequently than fast skeletal myosin. To elucidate how the reverse stroke affects the force production of myofilaments and possibly heart function, a simulation model was developed that combines the results from the single-molecule and myofilament experiments. The results of this model suggest that the reversal of the cardiac myosin power stroke may be key to characterizing the force output of cardiac myosin ensembles and possibly to facilitating heart contractions.
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