Related Experiment Video
Updated: Jul 6, 2025

In Vitro Assessment of Cardiac Function Using Skinned Cardiomyocytes
Published on: June 22, 2020
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.
Abstract:
The impaired ability of the heart to relax and stretch to accommodate venous return is generally understood to represent a state of "diastolic dysfunction" and often described using the all-purpose noun "stiffness." Despite the now common qualitative usage of this term in fields of cardiac patho/physiology, the specific quantitative concept of stiffness as a molecular and biophysical entity with real practical interpretation in healthy and diseased hearts is sometimes obscure. The focus of this review is to characterize the concept of cardiomyocyte stiffness and to develop interpretation of "stiffness" attributes at the cellular and molecular levels. Here, we consider "stiffness"-related terminology interpretation and make links between cardiomyocyte stiffness and aspects of functional and structural cardiac performance. We discuss cross bridge-derived stiffness sources, considering the contributions of diastolic myofilament activation and impaired relaxation. This includes commentary relating to the role of cardiomyocyte Ca2+ flux and Ca2+ levels in diastole, the troponin-tropomyosin complex role as a Ca2+ effector in diastole, the myosin ADP dissociation rate as a modulator of cross bridge attachment and regulation of cross-bridge attachment by myosin binding protein C. We also discuss non-cross bridge-derived stiffness sources, including the titin sarcomeric spring protein, microtubule and intermediate filaments, and cytoskeletal extracellular matrix interactions. As the prevalence of conditions involving diastolic heart failure has escalated, a more sophisticated understanding of the molecular, cellular, and tissue determinants of cardiomyocyte stiffness offers potential to develop imaging and molecular intervention tools.
Related Concept Videos
Structure of Cardiac Muscles
Compared to skeletal muscles, cardiac muscle cells are small and mostly have a single nucleus. Additionally, they are usually...
Specialized Characteristics of Cardiac Muscles
Cardiac muscle cells are smaller than skeletal muscles, averaging 10–20 mm in diameter and 50–100 mm in length. However, they have large energy demands for continuous contraction and relaxation. This energy is almost exclusively derived from aerobic metabolism of energy...
Pathophysiology of Heart Failure
Pathophysiology of Cardiac Performance
Imbalances in Cardiac Output
CHF can occur due to the failure of either side of the heart. Left-side failure leads to pulmonary congestion—the right side continues to send...

