Mechanical loading reveals an intrinsic cardiomyocyte stiffness contribution to diastolic dysfunction in murine

Johannes V Janssens1,2, Antonia J A Raaijmakers1, Parisa Koutsifeli3

  • 1Department of Anatomy & Physiology, University of Melbourne, Melbourne, Australia.

The Journal of Physiology
|December 4, 2024
PubMed

Insights

Cardiometabolic disease causes diastolic dysfunction due to increased cardiomyocyte stiffness. This stiffness, linked to calcium handling, impacts heart function and cannot be detected by unloaded shortening measurements.

Area of Science:

  • Cardiology
  • Physiology
  • Biochemistry

Background:

  • Cardiometabolic diseases like diabetes and obesity are linked to heart failure with diastolic dysfunction.
  • Current treatments for diastolic dysfunction offer limited efficacy, highlighting the need for new therapeutic targets.
  • Understanding the cellular mechanisms of diastolic dysfunction is crucial for developing novel treatments.

Purpose of the Study:

  • To experimentally determine the in vitro stiffness properties of cardiomyocytes from rodent hearts with diet-induced cardiometabolic disease and diastolic dysfunction.
  • To correlate in vitro cardiomyocyte stiffness with in vivo measures of diastolic dysfunction.

Main Methods:

  • Male mice were fed a high-fat/sugar diet (HFSD) or control diet, and diastolic dysfunction was assessed via echocardiography (E/e' Doppler ratio).
  • Isolated cardiomyocytes were functionally evaluated under non-loaded, loaded, and stretched conditions during pacing.
  • Cardiomyocyte stiffness (stress/strain) was measured, along with sarcomere lengthening rate, Ca2+ transient decay, and diastolic Ca2+ levels.

Main Results:

  • HFSD mice exhibited diastolic dysfunction (elevated E/e') and significantly higher cardiomyocyte stiffness (70% increase) compared to controls.
  • A strong correlation was found between in vitro cardiomyocyte stiffness and in vivo diastolic dysfunction severity.
  • HFSD cardiomyocytes showed more pronounced decrements in maximal sarcomere lengthening under load, prolonged Ca2+ transient decay with stretch, and attenuated diastolic Ca2+ elevation with increased pacing.

Conclusions:

  • Cardiomyocyte stiffness is a significant contributor to diastolic dysfunction in cardiometabolic disease.
  • Standard assessment of non-loaded cardiomyocyte shortening is insufficient to detect mechanical dysfunction.
  • Altered myofilament-calcium interactions, particularly stretch-dependent responses, contribute to intrinsic cardiomyocyte stiffness and diastolic dysfunction in this disease model.