Related Experiment Video
Updated: Jun 20, 2026

Measuring Ascending Aortic Stiffness In Vivo in Mice Using Ultrasound
Published on: December 2, 2014
Central aortic stiffness is increased in patients with heart failure and preserved ejection fraction
Akshay S Desai1, Gary F Mitchell, James C Fang
1Cardiovascular Division, Brigham and Women's Hospital, Boston, MA 02115, USA. adesai@partners.org
Insights
Increased central aortic stiffness, not diastolic dysfunction, contributes to heart failure with preserved ejection fraction in hypertensive patients. This highlights abnormal ventricular-vascular coupling as a key factor.
Area of Science:
- Cardiology
- Vascular Physiology
- Hypertension Research
Background:
- Hypertension is a major risk factor for heart failure with preserved ejection fraction (HFpEF).
- Noncardiac factors, particularly vascular changes, may play a role in HFpEF development in hypertensive individuals.
Purpose of the Study:
- To investigate arterial stiffness and diastolic function in patients with HFpEF and hypertension.
- To compare these parameters with hypertensive individuals without HFpEF and healthy controls.
Main Methods:
- Arterial tonometry and Doppler echocardiography were used in 53 participants.
- Groups included: healthy controls, hypertensive patients without HFpEF, and hypertensive patients with HFpEF.
Main Results:
- Patients with HFpEF showed higher blood pressure, BMI, creatinine, and left ventricular mass.
- Central aortic stiffness measures (e.g., pulse wave velocity) increased progressively from healthy to hypertensive to HFpEF groups.
- Peripheral arterial stiffness and diastolic function did not differ significantly across groups.
Conclusions:
- HFpEF patients exhibit elevated central aortic stiffness compared to controls and hypertensive individuals without HFpEF.
- These vascular changes are more pronounced than diastolic dysfunction, suggesting abnormal ventricular-vascular coupling in HFpEF pathophysiology.
Background:
Hypertension is an important risk factor for the development of heart failure with preserved ejection fraction. Although heart failure in hypertensive patients is usually ascribed to intrinsic myocardial abnormalities, noncardiac factors may contribute.
Methods And Results:
Using arterial tonometry and Doppler echocardiography, we assessed arterial stiffness and cardiac diastolic function in 53 individuals with ejection fraction >or=0.50, including 23 with hypertension but no heart failure, 16 with hypertension and heart failure, and 14 healthy, normotensive controls. Relative to healthy controls and hypertensives, subjects with heart failure had higher systolic blood pressure, body mass index, creatinine, and left ventricular mass. Diastolic function, as estimated by myocardial relaxation velocity, was not different among the 3 groups. Peripheral arterial stiffness was similar across all groups, but key measures of central aortic stiffness (carotid-femoral pulse wave velocity, characteristic impedance, forward wave amplitude) steadily increased with progression from healthy to hypertensive to heart failure despite adjustment for body mass index, systolic blood pressure, and renal function and were positively correlated with both left ventricular mass and filling pressure.
Conclusions:
We conclude that patients with heart failure and preserved ejection fraction have increased central aortic stiffness relative to age-matched healthy and hypertensive subjects without heart failure. These changes exceed differences in diastolic function and suggest that abnormal ventricular-vascular coupling may contribute to the pathophysiology of heart failure with preserved ejection fraction.
Related Concept Videos
Pathophysiology of Heart Failure
Heart Failure II: Pathophysiology
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 blood...
Aortic Regurgitation II: Clinical Features and Diagnostic Tests
Heart Failure IV: Classification and Diagnostic Evaluation
Mitral Stenosis I: Introduction
