Related Experiment Video
Updated: Jan 30, 2026

Tachycardia-Induced Cardiomyopathy As a Chronic Heart Failure Model in Swine
Published on: February 17, 2018
Dilated cardiomyopathy-mediated heart failure induces a unique skeletal muscle myopathy with inflammation
Taejeong Song1, Palanikumar Manoharan2, Douglas P Millay3,4
1Heart Lung Vascular Institute, Division of Cardiology, University of Cincinnati, Cincinnati, OH, 45267, USA.
Insights
Dilated cardiomyopathy-induced heart failure causes skeletal muscle weakness, atrophy, and impaired regeneration. This myopathy worsens exercise intolerance in heart failure patients.
Area of Science:
- Cardiovascular Research
- Skeletal Muscle Physiology
- Heart Failure Pathophysiology
Background:
- Skeletal muscle myopathy and exercise intolerance are key indicators of heart failure (HF).
- Molecular mechanisms underlying skeletal muscle adaptations in dilated cardiomyopathy (DCM)-mediated HF require further elucidation.
Purpose of the Study:
- To investigate skeletal muscle structure and function in a mouse model of DCM-induced HF.
- To compare muscle adaptations, inflammatory status, and regenerative capacity between wild-type and DCM model mice.
Main Methods:
- Echocardiography assessed cardiac function in wild-type (WT) and cardiac myosin binding protein-C null (t/t) mice.
- Treadmill tests measured exercise tolerance, while in vivo tests assessed hindlimb muscle strength.
- Gastrocnemius muscles were analyzed for inflammatory markers, immune cells, fiber size, and regeneration post-injury.
Main Results:
- DCM mice (t/t) exhibited profound exercise intolerance, cardiac hypertrophy, and reduced fractional shortening.
- Skeletal muscles in t/t mice showed weakness, smaller oxidative fiber diameters, central nuclei, and impaired regeneration.
- Inflammation and ongoing damage were observed in the gastrocnemius muscles of t/t mice.
Conclusions:
- DCM-induced HF results in a distinct skeletal myopathy with reduced strength, oxidative fiber atrophy, inflammation, and impaired regeneration.
- This skeletal myopathy significantly contributes to and exacerbates exercise intolerance in DCM-induced HF.
- Therapeutic strategies targeting skeletal myopathy are warranted for DCM-induced HF management.
Background:
Skeletal muscle myopathy and exercise intolerance are diagnostic hallmarks of heart failure (HF). However, the molecular adaptations of skeletal muscles during dilated cardiomyopathy (DCM)-mediated HF are not completely understood.
Methods:
Skeletal muscle structure and function were compared in wild-type (WT) and cardiac myosin binding protein-C null mice (t/t), which develop DCM-induced HF. Cardiac function was examined by echocardiography. Exercise tolerance was measured using a graded maximum treadmill running test. Hindlimb muscle function was assessed in vivo from measurements of plantar flexor strength. Inflammatory status was evaluated from the expression of inflammatory markers and the presence of specific immune cell types in gastrocnemius muscles. Muscle regenerative capacityat days 3, 7, and 14 after eccentric contraction-induced injury was determined from the number of phenotypically new and adult fibers in the gastrocnemius, and functional recovery of plantar flexion torque.
Results:
t/t mice developed DCM-induced HF in association with profound exercise intolerance, consistent with previous reports. Compared to WT, t/t mouse hearts show significant hypertrophy of the atria and ventricles and reduced fractional shortening, both systolic and diastolic. In parallel, the skeletal muscles of t/t mice exhibit weakness and myopathy. Compared to WT, plantar flexor muscles of t/t null mice produce less peak isometric plantar torque (Po), develop torque more slowly (+ dF/dt), and relax more slowly (- dF/dt, longer half-relaxation times,1/2RT). Gastrocnemius muscles of t/t mice have a greater number of fibers with smaller diameters and central nuclei. Oxidative fibers, both type I and type IIa, show significantly smaller cross-sectional areas and more central nuclei. These fiber phenotypes suggest ongoing repair and regeneration under homeostatic conditions. In addition, the ability of muscles to recover and regenerate after acute injury is impaired in t/t mice.
Conclusions:
Our studies concluded that DCM-induced HF induces a unique skeletal myopathy characterized by decreased muscle strength, atrophy of oxidative fiber types, ongoing inflammation and damage under homeostasis, and impaired regeneration after acute muscle injury. Furthermore, this unique myopathy in DCM-induced HF likely contributes to and exacerbates exercise intolerance. Therefore, efforts to develop therapeutic interventions to treat skeletal myopathy during DCM-induced HF should be considered.
Related Concept Videos
Cardiomyopathy II: Dilated Cardiomyopathy
Classification of Skeletal Muscle Fibers
Slow-Twitch Muscle Fibers
Slow oxidative, muscle fibers appear red due to large numbers of capillaries and high levels of...
Heart Failure II: Pathophysiology
Pathophysiology of Heart Failure
Heart Failure I: Introduction
Overview of Skeletal Muscle

