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.

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