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Ares D Pasipoularides

Publications and source records attributed to Ares D Pasipoularides.

2 recordsLinked to original sources

RV functional imaging: 3-D echo-derived dynamic geometry and flow field simulations.

We describe a novel functional imaging approach for quantitative analysis of right ventricular (RV) blood flow patterns in specific experimental animals (or humans) using real-time, three-dimensional (3-D) echocardiography (RT3D). The method is independent of the digital imaging modality used. It comprises three parts. First, a semiautomated segmentation aided by intraluminal contrast medium locates the RV endocardial surface. Second, a geometric scheme for dynamic RV chamber reconstruction applies a time interpolation procedure to the RT3D data to quantify wall geometry and motion at 400 Hz. A volumetric prism method validated the dynamic geometric reconstruction against simultaneous sonomicrometric canine measurements. Finally, the RV endocardial border motion information is used for mesh generation on a computational fluid dynamics solver to simulate development of the early RV diastolic inflow field. Boundary conditions (tessellated endocardial surface nodal velocities) for the solver are directly derived from the endocardial geometry and motion information. The new functional imaging approach may yield important kinematic information on the distribution of instantaneous velocities in the RV diastolic flow field of specific normal or diseased hearts.

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Right ventricular diastolic relaxation in conscious dog models of pressure overload, volume overload, and ischemia.

OBJECTIVE: Limitations in clinical understanding of right ventricular relaxation can be attributed to the paucity of information from basic studies in animal models of right ventricular disease. This study examined, in the conscious state, right ventricular relaxation dynamics under normal conditions (n = 15) and in subacute (2-5 weeks) canine models of right ventricular pressure overload (n = 6), volume overload (n = 7), and free wall ischemia (n = 7). METHODS: Right-heart micromanometric measurements were obtained by using multisensor catheters. A new algorithm was developed to obtain representative ensemble averages of hemodynamic waveform data sets. Right ventricular relaxation was analyzed by using an exponential model with 3 parameters: P(0), tau, and P(b). Significant changes versus control values were determined by means of analysis of variance and the Student unpaired t test with Bonferroni's adjustment. RESULTS: In the state of pressure overload, right ventricular pressure decay exhibits an increased P(0) (56.2 +/- 19.1 vs 13.1 +/- 5.1 mm Hg [mean +/- SD]) and prolonged tau (57.1 +/- 2.8 vs 27.8 +/- 3.9 ms); there is also a decreased P(b) (-7.9 +/- 1.5 vs 0.28 +/- 1.8 mm Hg). The only significant change in volume overload is an increased asymptote, P(b) (5.3 +/- 2.9 mm Hg). In right ventricular ischemia, prolongation of tau (41.4 +/- 13.0 ms) and decreased P(b) (-1.95 +/- 1.1 mm Hg) attain high significance. CONCLUSIONS: Distinctive abnormalities in right ventricular relaxation dynamics accompany pressure overload, volume overload, and ischemia and may contribute to clinical right ventricular dysfunction.

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