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Diastolic dysfunction in hypertensive heart disease is associated with altered myocardial metabolism
H J Lamb1, H P Beyerbacht, A van der Laarse
1Department of Radiology and Cardiology, University Medical Center, Leiden The Netherlands. Lamb@RULLF2.Medfac.Leidenuniv.nl
Insights
Hypertension alters myocardial high-energy phosphate metabolism in patients with hypertensive heart disease. This metabolic change is linked to impaired left ventricular diastolic function, highlighting a critical connection in cardiac health.
Area of Science:
- Cardiology
- Biochemistry
- Medical Imaging
Background:
- Hypertension is a prevalent clinical issue often leading to left ventricular (LV) hypertrophy and dysfunction.
- The impact of hypertensive heart disease on myocardial high-energy phosphate (HEP) metabolism and its association with LV dysfunction remains unclear.
Purpose of the Study:
- To investigate alterations in myocardial HEP metabolism in human hypertensive heart disease.
- To determine the relationship between altered myocardial HEP metabolism and LV dysfunction in hypertensive patients.
Main Methods:
- Utilized magnetic resonance imaging (MRI) and phosphorus-31 magnetic resonance spectroscopy (31P-MRS) in 11 hypertensive patients and 13 healthy controls.
- Assessed LV mass, diastolic function parameters (e.g., peak rate of wall thinning, E/A ratio), and myocardial phosphocreatine (PCr)/ATP ratio at rest and during stress.
Main Results:
- Hypertensive patients exhibited increased LV mass and impaired LV diastolic function compared to controls.
- Myocardial PCr/ATP ratio was significantly lower in hypertensive patients, both at rest and during stress.
- The PCr/ATP ratio correlated with measures of diastolic function and cardiac workload.
Conclusions:
- Myocardial HEP metabolism is altered in patients with hypertensive heart disease.
- Impaired LV diastolic function in hypertensive patients is associated with altered myocardial HEP metabolism.
- Myocardial PCr/ATP levels appear to be influenced by cardiac workload.
Background:
Hypertension is an important clinical problem and is often accompanied by left ventricular (LV) hypertrophy and dysfunction. Whether the myocardial high-energy phosphate (HEP) metabolism is altered in human hypertensive heart disease and whether this is associated with LV dysfunction is not known.
Methods And Results:
Eleven patients with hypertension and 13 age-matched healthy subjects were studied with magnetic resonance imaging at rest and with phosphorus-31 magnetic resonance spectroscopy at rest and during high-dose atropine-dobutamine stress. Hypertensive patients showed higher LV mass (98+/-28 g/m2) than healthy control subjects (73+/-13 g/m2, P<0.01). LV filling was impaired in patients, reflected by a decreased peak rate of wall thinning (PRWThn), E/A ratio, early peak filling rate, and early deceleration peak (all P<0. 05), whereas systolic function was still normal. The myocardial phosphocreatine (PCr)/ATP ratio determined in patients at rest (1. 20+/-0.18) and during stress (0.95+/-0.25) was lower than corresponding values obtained from healthy control subjects at rest (1.39+/-0.17, P<0.05) and during stress (1.16+/-0.18, P<0.05). The PCr/ATP ratio correlated significantly with PRWThn (r=-0.55, P<0.01), early deceleration peak (r=-0.56, P<0.01), and with the rate-pressure product (r=-0.53, P<0.001).
Conclusions:
Myocardial HEP metabolism is altered in patients with hypertensive heart disease. In addition, there is an association between impaired LV diastolic function and altered myocardial HEP metabolism in humans. The level of myocardial PCr/ATP is most likely determined by the level of cardiac work load.
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