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March 1, 1992Circulation73 citations

Energy conversion efficiency in human left ventricle.

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TKT KameyamaHAHidetsugu AsanoiSIShinji Ishizaka

Structured PICO

Does pressure loading alter left ventricular mechanical efficiency in patients with different contractile states?

P
Population
11 patients with different contractile states
I
Intervention
Pressure loading
C
Comparator
Baseline
O
Outcome
Left ventricular mechanical efficiency, PVA/MVO2 efficiency, and work efficiencysurrogate

Left ventricular mechanical efficiency remains constant during pressure loading due to opposite directional changes in work efficiency and PVA/MVO2 efficiency.

Abstract

BACKGROUND: Left ventricular mechanical efficiency is one of the most important measures of left ventricular pump performance. Several clinical studies, however, have shown that mechanical efficiency does not fall substantially as the heart fails. To clarify the insensitivity of mechanical efficiency to the change in pump performance, we analyzed human left ventricular mechanical efficiency, applying the concept of left ventricular systolic pressure-volume area (PVA). METHODS AND RESULTS: PVA correlates linearly with myocardial oxygen consumption per beat (MVO2): MVO2 = a.PVA+b, and represents the total mechanical energy of contraction. We determined MVO2-PVA relation and external work in 11 patients with different contractile states. We also calculated the energy transfer from MVO2 to PVA (PVA/MVO2 efficiency), that from PVA to external work (work efficiency), and mechanical efficiency (external work/MVO2). Left ventricular pressure-volume loops were constructed by plotting the instantaneous left ventricular pressure against the left ventricular volume at baseline and during pressure loading. The contractile properties of the ventricle were defined by the slope of the end-systolic pressure-volume relation (Ees). Pressure elevation raised external work by 41.4%, PVA by 71.2%, and MVO2 by 54.5%. These changes were associated with a decrease in work efficiency and an increase in PVA/MVO2 efficiency. The opposite directional changes in these two efficiencies rendered the mechanical efficiency constant. The slope, a, of the relation between MVO2 and PVA was relatively constant (2.46 +/- 0.33) over the range of 0.8-8.8 mm Hg/ml of Ees, but the oxygen axis intercept, b, tended to decrease with the reduction in Ees. PVA/MVO2 efficiency correlated inversely (r = -0.66, p less than 0.05) with Ees, whereas work efficiency correlated linearly with Ees (r = 0.91, p less than 0.01). CONCLUSIONS: Mechanical efficiency is not appreciably affected by changes in loading and inotropic conditions as long as the left ventricular contractility is not severely depressed.

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Cite This Study

Kameyama et al. (1992) studied this question.

synapsesocial.com/papers/6a2124b5f69db56553c3bd42https://doi.org/10.1161/01.cir.85.3.988
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Constant mechanical efficiency of contractile machinery of canine left ventricle under different loading and inotropic conditions.1984 · 15 citations
  2. 2Left ventricular mechanical efficiency in man with heart disease.1977 · 41 citations
  3. 3Evaluation of Left Ventricular Mechanical Efficiency in the Human Heart by Echocardiography1995
  4. 4Effect of exercise on left ventricular mechanical efficiency in conscious dogs.1994 · 37 citations
  5. 5Efficiency of energy transfer from pressure-volume area to external mechanical work increases with contractile state and decreases with afterload in the left ventricle of the anesthetized closed-chest dog.1988 · 123 citations