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Doppler echo evaluation of pulmonary venous-left atrial pressure gradients: human and numerical model studiesThe simplified Bernoulli equation relates fluid convective energy derived from flow velocities to a pressure gradient and is commonly used in clinical echocardiography to determine pressure differences across stenotic orifices. Its application to pulmonary venous flow has not been described in humans. Twelve patients undergoing cardiac surgery had simultaneous high-fidelity pulmonary venous and left atrial pressure measurements and pulmonary venous pulsed Doppler echocardiography performed. Convective gradients for the systolic (S), diastolic (D), and atrial reversal (AR) phases of pulmonary venous flow were determined using the simplified Bernoulli equation and correlated with measured actual pressure differences. A linear relationship was observed between the convective (y) and actual (x) pressure differences for the S (y = 0.23x + 0.0074, r = 0.82) and D (y = 0.22x + 0.092, r = 0.81) waves, but not for the AR wave (y = 0. 030x + 0.13, r = 0.10). Numerical modeling resulted in similar slopes for the S (y = 0.200x - 0.127, r = 0.97), D (y = 0.247x - 0. 354, r = 0.99), and AR (y = 0.087x - 0.083, r = 0.96) waves. Consistent with numerical modeling, the convective term strongly correlates with but significantly underestimates actual gradient because of large inertial forces.
Document ID
20040141463
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Firstenberg, M. S.
(The Cleveland Clinic Foundation Cleveland, Ohio 44195, United States)
Greenberg, N. L.
Smedira, N. G.
Prior, D. L.
Scalia, G. M.
Thomas, J. D.
Garcia, M. J.
Date Acquired
August 22, 2013
Publication Date
August 1, 2000
Publication Information
Publication: American journal of physiology. Heart and circulatory physiology
Volume: 279
Issue: 2
ISSN: 0363-6135
Subject Category
Life Sciences (General)
Funding Number(s)
CONTRACT_GRANT: 1RO1HL56688-01A1
Distribution Limits
Public
Copyright
Other
Keywords
Non-NASA Center
NASA Discipline Cardiopulmonary

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