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January 20, 2006AJP Heart and Circulatory Physiology301 citations

Single-beat estimation of end-diastolic pressure-volume relationship: a novel method with potential for noninvasive application

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SKStefan KlotzIHIlan HayMDMarc L. Dickstein

Structured PICO

Can a single-beat approach accurately estimate the entire end-diastolic pressure-volume relationship compared to direct measurements?

P
Population
80 ex vivo human hearts of different etiologies (normal, congestive heart failure, left ventricular assist device support), 36 in vivo human, 12 acute and 14 chronic canine, and 80 in vivo and ex vivo rat studies
I
Intervention
Single-beat approach to estimate the whole end-diastolic pressure-volume relationship (EDPVR) from one measured volume-pressure point
C
Comparator
Directly measured EDPVRs
O
Outcome
Root-mean-square error (RMSE) in pressure between measured and predicted EDPVRs over the range of 0-40 mmHgsurrogate

A novel single-beat method can accurately estimate the entire end-diastolic pressure-volume relationship across different species and etiologies, offering potential for noninvasive application.

Limitations

  • The results are most accurate when applied to groups of hearts rather than to individual hearts.

Abstract

Whereas end-systolic and end-diastolic pressure-volume relations (ESPVR, EDPVR) characterize left ventricular (LV) pump properties, clinical utility of these relations has been hampered by the need for invasive measurements over a range of pressure and volumes. We propose a single-beat approach to estimate the whole EDPVR from one measured volume-pressure (Vm and Pm) point. Ex vivo EDPVRs were measured from 80 human hearts of different etiologies (normal, congestive heart failure, left ventricular assist device support). Independent of etiology, when EDPVRs were normalized (EDPVRn) by appropriate scaling of LV volumes, EDPVRns were nearly identical and were optimally described by the relation EDP = An.EDV (Bn), with An = 28.2 mmHg and Bn = 2.79. V0 (the volume at the pressure of approximately 0 mmHg) was predicted by using the relation V0 = Vm.(0.6 - 0.006.Pm) and V30 by V30 = V0 + (Vm,n - V0)/(Pm/An) (1/Bn). The entire EDPVR of an individual heart was then predicted by forcing the curve through Vm, Pm, and the predicted V0 and V30. This technique was applied prospectively to the ex vivo human EDPVRs not used in determining optimal An and Bn values and to 36 in vivo human, 12 acute and 14 chronic canine, and 80 in vivo and ex vivo rat studies. The root-mean-square error (RMSE) in pressure between measured and predicted EDPVRs over the range of 0-40 mmHg was < 3 mmHg of measured EDPVR in all settings, indicating a good predictive value of this approach. Volume-normalized EDPVRs have a common shape, despite different etiology and species. This allows the entire curve to be predicted by a new method with a potential for noninvasive application. The results are most accurate when applied to groups of hearts rather than to individual hearts.

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Cite This Study

Klotz et al. (2006) studied this question.

synapsesocial.com/papers/69f29cb11b51e2fbf01871bdhttps://doi.org/10.1152/ajpheart.01240.2005
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Also Consider

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

  1. 1Influence of the velocity of changes in end-diastolic volume on the starling mechanism of isolated left ventricles1983 · 10 citations
  2. 2Accurate Noninvasive Estimation of Left Ventricular End-Diastolic Pressure: Comparison with Catheterization1998 · 12 citations
  3. 3Assessment of passive elastic stiffness of cardiac muscle: Mathematical concepts, physiologic and clinical considerations, directions of future research1976 · 277 citations
  4. 4Continuous measurement of left ventricular volume in animals and humans by conductance catheter.1984 · 905 citations
  5. 5Effects of long-term enalapril therapy on left ventricular diastolic properties in patients with depressed ejection fraction. SOLVD Investigators.1993 · 81 citations