|
|
||||||||
AJP - Heart and Circulatory Physiology, Vol 260, Issue 5 1718-H1731, Copyright © 1991 by American Physiological Society
ARTICLES |
J. D. Thomas, J. B. Newell, C. Y. Choong and A. E. Weyman
Noninvasive Cardiac Laboratory, Massachusetts General Hospital, Harvard Medical School, Boston 02114.
The Doppler transmitral velocity curve is commonly used to assess left ventricular diastolic function. Recent investigations, however, relating Doppler mitral indexes to ventricular compliance, relaxation, and preload have been inconclusive and at times contradictory. We used a mathematical formulation to study the physical and physiological determinants of the transmitral velocity pattern for exponential chamber pressure-volume relationships with active ventricular relaxation (2,187 combinations investigated). We showed that transmitral velocity is fundamentally affected by two principal physical determinants, the transmitral pressure difference and the net atrioventricular compliance, as well as the impedance characteristics of the mitral valve. These physical determinants in turn are specified by the compliance and relaxation parameters of physiological interest. We found that the peak mitral velocity is most strongly related to initial left atrial pressure but lowered by prolonged relaxation, low atrial and ventricular compliance, and systolic dysfunction. Peak acceleration varies directly with atrial pressure and inversely with the time constant of isovolumic relaxation, with little influence of compliance, whereas the mitral deceleration rate is approximately valve area divided by atrioventricular compliance. We then used these data to suggest possible strategies for improved analysis of noninvasive data (Doppler indexes, planimetered valve area, and isovolumic relaxation time) to estimate ventricular compliance and relaxation and atrial pressure.
This article has been cited by other articles:
![]() |
Y. Wu and S. J. Kovacs Frequency-based analysis of the early rapid filling pressure-flow relation elucidates diastolic efficiency mechanisms Am J Physiol Heart Circ Physiol, December 1, 2006; 291(6): H2942 - H2949. [Abstract] [Full Text] [PDF] |
||||
![]() |
Z. B. Popovic, A. Prasad, M. J. Garcia, A. Arbab-Zadeh, A. Borowski, E. Dijk, N. L. Greenberg, B. D. Levine, and J. D. Thomas Relationship among diastolic intraventricular pressure gradients, relaxation, and preload: impact of age and fitness Am J Physiol Heart Circ Physiol, April 1, 2006; 290(4): H1454 - H1459. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. S. Chung, D. M. Ajo, and S. J. Kovacs Isovolumic pressure-to-early rapid filling decay rate relation: model-based derivation and validation via simultaneous catheterization echocardiography J Appl Physiol, February 1, 2006; 100(2): 528 - 534. [Abstract] [Full Text] [PDF] |
||||
![]() |
F. Prunier, R. Gaertner, L. Louedec, J.-B. Michel, J.-J. Mercadier, and B. Escoubet Doppler echocardiographic estimation of left ventricular end-diastolic pressure after MI in rats Am J Physiol Heart Circ Physiol, July 1, 2002; 283(1): H346 - H352. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. B. Lisauskas, J. Singh, A. W. Bowman, and S. J. Kovacs Chamber properties from transmitral flow: prediction of average and passive left ventricular diastolic stiffness J Appl Physiol, July 1, 2001; 91(1): 154 - 162. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Nakatani, M. S. Firstenberg, N. L. Greenberg, P. M. Vandervoort, N. G. Smedira, P. M. McCarthy, and J. D. Thomas Mitral inertance in humans: critical factor in Doppler estimation of transvalvular pressure gradients Am J Physiol Heart Circ Physiol, March 1, 2001; 280(3): H1340 - H1345. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. Schwammenthal, Z. Vered, O. Agranat, E. Kaplinsky, B. Rabinowitz, and M. S. Feinberg Impact of Atrioventricular Compliance on Pulmonary Artery Pressure in Mitral Stenosis : An Exercise Echocardiographic Study Circulation, November 7, 2000; 102(19): 2378 - 2384. [Abstract] [Full Text] [PDF] |
||||
![]() |
T. Nitta, Y. Ishii, H. Ogasawara, S. Sakamoto, Y. Miyagi, K. Yamada, S. Kanno, and S. Tanaka Initial experience with the radial incision approach for atrial fibrillation Ann. Thorac. Surg., September 1, 1999; 68(3): 805 - 810. [Abstract] [Full Text] [PDF] |
||||
![]() |
T. Nitta, R. Lee, H. Watanabe, K. M. Harris, J. M. Erikson, R. B. Schuessler, J. P. Boineau, and J. L. Cox Radial approach: a new concept in surgical treatment for atrial fibrillation. II. Electrophysiologic effects and atrial contribution to ventricular filling Ann. Thorac. Surg., January 1, 1999; 67(1): 36 - 50. [Abstract] [Full Text] [PDF] |
||||
![]() |
G. M. Scalia, N. L. Greenberg, P. M. McCarthy, J. D. Thomas, and P. M. Vandervoort Noninvasive Assessment of the Ventricular Relaxation Time Constant ({tau}) in Humans by Doppler Echocardiography Circulation, January 7, 1997; 95(1): 151 - 155. [Abstract] [Full Text] |
||||
![]() |
S. E. Litwin, S. E. Katz, E. O. Weinberg, B. H. Lorell, G. P. Aurigemma, and P. S. Douglas Serial Echocardiographic-Doppler Assessment of Left Ventricular Geometry and Function in Rats With Pressure-Overload Hypertrophy : Chronic Angiotensin-Converting Enzyme Inhibition Attenuates the Transition to Heart Failure Circulation, May 15, 1995; 91(10): 2642 - 2654. [Abstract] [Full Text] |
||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |
| Visit Other APS Journals Online |