Increased Chamber Resting Tone Is a Key Determinant of Left Ventricular Diastolic Dysfunction
María Tamargo1, Pablo Martínez-Legazpi1,2, M Ángeles Espinosa1
1Department of Cardiology, Hospital General Universitario Gregorio Marañón, Facultad de Medicina, Universidad Complutense de Madrid, Instituto de Investigación Sanitaria Gregorio Marañón, and CIBERCV, Spain (M.T., P.M.-L., M.A.E., I.M., E.G.-I., A.I.F., R.P.-A., A.G.-M., T.M., R.S.-R., J.E., R.Y., F.F.-A., J.B.).
Insights
Twitch-independent tension, termed resting tone (RT), significantly contributes to diastolic dysfunction in heart failure with preserved ejection fraction and hypertrophic cardiomyopathy. This finding suggests antimyosin agents as a potential treatment for heart failure.
Area of Science:
- Cardiology
- Physiology
- Biomedical Engineering
Background:
- Twitch-independent tension in cardiomyocytes is known, but its role in heart failure (HF) remains unclear.
- Diastolic dysfunction in HF is multifactorial, involving impaired relaxation, stiffness, and potentially chamber resting tone (RT).
Purpose of the Study:
- To investigate the role of twitch-independent tension, specifically chamber resting tone (RT), as a cause of diastolic dysfunction in heart failure.
- To differentiate the contribution of RT from impaired relaxation and stiffness in diastolic dysfunction.
Main Methods:
- Invasive pressure-volume data were collected during cardiopulmonary exercise in patients with hypertrophic cardiomyopathy, HF with preserved ejection fraction, and controls.
- A novel method was developed and validated in a computational model to measure RT from continuous pressure-volume measurements.
Main Results:
- Resting tone (RT) was significantly elevated in hypertrophic cardiomyopathy and HF with preserved ejection fraction patients, increasing further with exercise.
- RT accounted for a substantial portion of end-diastolic pressure during peak exercise in hypertrophic cardiomyopathy (64%).
- RT correlated with NT-proBNP and pulmonary wedge pressure, and in silico models showed RT increased with loss of cMyBP-C function.
Conclusions:
- Augmented RT is a primary driver of left ventricular diastolic dysfunction in hypertrophic cardiomyopathy and HF with preserved ejection fraction.
- RT transients have a greater impact on diastolic pressures, pulmonary pressures, and functional capacity than relaxation or stiffness abnormalities.
- These findings support the investigation of antimyosin agents for the treatment of heart failure.
Background:
Twitch-independent tension has been demonstrated in cardiomyocytes, but its role in heart failure (HF) is unclear. We aimed to address twitch-independent tension as a source of diastolic dysfunction by isolating the effects of chamber resting tone (RT) from impaired relaxation and stiffness.
Methods:
We invasively monitored pressure-volume data during cardiopulmonary exercise in 20 patients with hypertrophic cardiomyopathy, 17 control subjects, and 35 patients with HF with preserved ejection fraction. To measure RT, we developed a new method to fit continuous pressure-volume measurements, and first validated it in a computational model of loss of cMyBP-C (myosin binding protein-C).
Results:
In hypertrophic cardiomyopathy, RT (estimated marginal mean [95% CI]) was 3.4 (0.4-6.4) mm Hg, increasing to 18.5 (15.5-21.5) mm Hg with exercise (P<0.001). At peak exercise, RT was responsible for 64% (53%-76%) of end-diastolic pressure, whereas incomplete relaxation and stiffness accounted for the rest. RT correlated with the levels of NT-proBNP (N-terminal pro-B-type natriuretic peptide; R=0.57; P=0.02) and with pulmonary wedge pressure but following different slopes at rest and during exercise (R2=0.49; P<0.001). In controls, RT was 0.0 mm Hg and 1.2 (0.3-2.8) mm Hg in HF with preserved ejection fraction patients and was also exacerbated by exercise. In silico, RT increased in parallel to the loss of cMyBP-C function and correlated with twitch-independent myofilament tension (R=0.997).
Conclusions:
Augmented RT is the major cause of LV diastolic chamber dysfunction in hypertrophic cardiomyopathy and HF with preserved ejection fraction. RT transients determine diastolic pressures, pulmonary pressures, and functional capacity to a greater extent than relaxation and stiffness abnormalities. These findings support antimyosin agents for treating HF.
Related Concept Videos
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...
Regulation of Stroke Volume
Preload refers to the degree of stretch on the heart before it contracts. It's analogous to the stretching of a rubber band; the more it's stretched, the more forcefully it snaps back. This concept is encapsulated in the Frank-Starling law of the...
Pathophysiology of Cardiac Performance
Pathophysiology of Heart Failure
Cardiovascular System Abnormal Findings II: Auscultation
Abnormal Heart Sounds
Gallops:


