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December 30, 2016AJP Heart and Circulatory Physiology48 citations

Why septal motion is a marker of right ventricular failure in pulmonary arterial hypertension: mechanistic analysis using a computer model

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GPGeorgina Palau-CaballeroJWJohn WalmsleyVEVanessa van Empel

Structured PICO

What is the mechanism underlying rapid leftward septal motion in pulmonary arterial hypertension?

P
Population
CircAdapt computational model simulating healthy circulation and mild, moderate, and severe pulmonary arterial hypertension (PAH)
I
Intervention
Simulated mild, moderate, and severe PAH, with and without coexisting right ventricular (RV) or left ventricular (LV) contractile dysfunction
C
Comparator
Simulated healthy circulation
O
Outcome
Mechanism underlying rapid leftward septal motion (RLSM), including interventricular relaxation dyssynchrony and transseptal pressure gradientsurrogate

Rapid leftward septal motion in pulmonary arterial hypertension is driven by interventricular relaxation dyssynchrony rather than solely by a negative transseptal pressure gradient, serving as a marker of RV failure or altered RV-LV interplay.

Abstract

Rapid leftward septal motion (RLSM) during early left ventricular (LV) diastole is observed in patients with pulmonary arterial hypertension (PAH). RLSM exacerbates right ventricular (RV) systolic dysfunction and impairs LV filling. Increased RV wall tension caused by increased RV afterload has been suggested to cause interventricular relaxation dyssynchrony and RLSM in PAH. Simulations using the CircAdapt computational model were used to unravel the mechanism underlying RLSM by mechanistically linking myocardial tissue and pump function. Simulations of healthy circulation and mild, moderate, and severe PAH were performed. We also assessed the effects on RLSM when PAH coexists with RV or LV contractile dysfunction. Our results showed prolonged RV shortening in PAH causing interventricular relaxation dyssynchrony and RLSM. RLSM was observed in both moderate and severe PAH. A negative transseptal pressure gradient only occurred in severe PAH, demonstrating that negative pressure gradient does not entirely explain septal motion abnormalities. PAH coexisting with RV contractile dysfunction exacerbated both interventricular relaxation dyssynchrony and RLSM. LV contractile dysfunction reduced both interventricular relaxation dyssynchrony and RLSM. In conclusion, dyssynchrony in ventricular relaxation causes RLSM in PAH. Onset of RLSM in patients with PAH appears to indicate a worsening in RV function and hence can be used as a sign of RV failure. However, altered RLSM does not necessarily imply an altered RV afterload, but it can also indicate altered interplay of RV and LV contractile function. Reduction of RLSM can result from either improved RV function or a deterioration of LV function.NEW & NOTEWORTHY A novel approach describes the mechanism underlying abnormal septal dynamics in pulmonary arterial hypertension. Change in motion is not uniquely induced by altered right ventricular afterload, but also by altered ventricular relaxation dyssynchrony. Extension or change in motion is a marker reflecting interplay between right and left ventricular contractility.

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Palau-Caballero et al. (2016) studied this question.

synapsesocial.com/papers/69d56f7575589c71d767d8cdhttps://doi.org/10.1152/ajpheart.00596.2016
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