The cardiomyocyte origins of diastolic dysfunction: cellular components of myocardial "stiffness"

Johannes V Janssens1, Antonia J A Raaijmakers1, Kate L Weeks1,2,3

  • 1Department of Anatomy and Physiology, University of Melbourne, Melbourne, Victoria, Australia.

Insights

This review clarifies cardiomyocyte stiffness, a key factor in diastolic dysfunction. Understanding its molecular and cellular origins can aid in developing new treatments for heart failure.

Area of Science:

  • Cardiovascular Physiology
  • Molecular Biology
  • Biophysics

Background:

  • Diastolic dysfunction, often termed "stiffness," impairs heart relaxation.
  • The quantitative, molecular basis of cardiac "stiffness" requires deeper exploration.

Purpose of the Study:

  • To characterize cardiomyocyte stiffness at cellular and molecular levels.
  • To link cardiomyocyte stiffness to cardiac function and structure.
  • To interpret stiffness-attributable terminology in cardiac pathophysiology.

Main Methods:

  • Review of existing literature on cardiomyocyte stiffness.
  • Analysis of molecular and biophysical determinants of stiffness.
  • Discussion of cross-bridge and non-cross-bridge contributions to stiffness.

Main Results:

  • Cardiomyocyte stiffness arises from cross-bridge interactions (myofilament activation, relaxation impairment) and non-cross-bridge elements (titin, cytoskeletal proteins).
  • Calcium (Ca2+) flux, troponin-tropomyosin complex, myosin ADP dissociation, and myosin binding protein C influence diastolic stiffness.
  • Titin, microtubules, intermediate filaments, and extracellular matrix interactions contribute to non-cross-bridge stiffness.

Conclusions:

  • A sophisticated understanding of cardiomyocyte stiffness determinants is crucial for advancing diastolic heart failure research.
  • Elucidating molecular and cellular stiffness mechanisms can inform the development of novel diagnostic and therapeutic tools.

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