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June 24, 2006AJP Heart and Circulatory Physiology30 citations

A 2D FE model of the heart demonstrates the role of the pericardium in ventricular deformation

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CKCarol A. Gibbons KroekerSASamer AdeebJTJohn V. Tyberg

Key Result

In 8 open-chest anesthetized dogs, finite element analysis demonstrated that the pericardium significantly influences the structural behavior and deformation of the septum and ventricular free walls.

Structured PICO

P
Population
8 open-chest anesthetized dogs (experimental model of acute right ventricular pressure overload)
I
Intervention
Pulmonary artery constriction (PAC) with pericardium open or closed
C
Comparator
Control conditions (baseline pressures)
O
Outcome
Ventricular deformation and stresses (septum, LV, and RV free walls)surrogate

This finite element modeling study demonstrates that the pericardium plays a critical role in determining ventricular deformation and stress distribution during acute right ventricular pressure overload.

Abstract

During pulmonary artery constriction (PAC), an experimental model of acute right ventricular (RV) pressure overload, the interventricular septum flattens and inverts. Finite element (FE) analysis has shown that the septum is subject to axial compression and bending when so deformed. This study examines the effects of acute PAC on the left ventricular (LV) free wall and the role the pericardium may play in these effects. In eight open-chest anesthetized dogs, LV, RV, aortic, and pericardial pressures were recorded under control conditions and with PAC. Model dimensions were derived from two-dimensional echocardiography minor-axis images of the heart. At control (pericardium closed), FE analysis showed that the septum was concave to the LV; stresses in the LV, RV, and septum were low; and the pericardium was subject to circumferential tension. With PAC, RV end-diastolic pressure exceeded LV pressure and the septum inverted. Compressive stresses developed circumferentially in the septum out to the RV insertion points, forming an arch-like pattern. Sharp bending occurred near the insertion points, accompanied by flattening of the LV free wall. With the pericardium open, the deformations and stresses were different. The RV became much larger, especially with PAC. With PAC, the arch-like circumferential stresses still developed in the septum, but their magnitudes were reduced, compared with the pericardium-closed case. There was no free wall inversion and flattening was less. From these FE results, the pericardium has a significant influence on the structural behavior of the septum and the LV and RV free walls. Furthermore, the deformation of the heart is dependent on whether the pericardium is open or closed.

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Cite This Study

Kroeker et al. (2006) studied Acute right ventricular pressure overload (n=8). Pulmonary artery constriction (PAC) vs. Control conditions (pericardium closed vs open) was evaluated on Ventricular deformation and stresses. In 8 open-chest anesthetized dogs, finite element analysis demonstrated that the pericardium significantly influences the structural behavior and deformation of the septum and ventricular free walls.

synapsesocial.com/papers/6a1667d8a8d6c30f74623d49https://doi.org/10.1152/ajpheart.00077.2006
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