Ozturk Caglar, Rosalia Luca, Roche Ellen T
Institute for Medical Engineering and Science, Massachusetts Institute of Technology, Cambridge, MA, United States.
Health Sciences and Technology Program, Harvard - Massachusetts Institute of Technology, Cambridge, MA, United States.
Front Physiol. 2022 Jan 25;13:815787. doi: 10.3389/fphys.2022.815787. eCollection 2022.
Mechanical circulatory support (MCS) devices are currently under development to improve the physiology and hemodynamics of patients with heart failure with preserved ejection fraction (HFpEF). Most of these devices, however, are designed to provide continuous-flow support. While it has been shown that pulsatile support may overcome some of the complications hindering the clinical translation of these devices for other heart failure phenotypes, the effects that it may have on the HFpEF physiology are still unknown. Here, we present a multi-domain simulation study of a pulsatile pump device with left atrial cannulation for HFpEF that aims to alleviate left atrial pressure, commonly elevated in HFpEF. We leverage lumped-parameter modeling to optimize the design of the pulsatile pump, computational fluid dynamic simulations to characterize hydraulic and hemolytic performance, and finite element modeling on the Living Heart Model to evaluate effects on arterial, left atrial, and left ventricular hemodynamics and biomechanics. The findings reported in this study suggest that pulsatile-flow support can successfully reduce pressures and associated wall stresses in the left heart, while yielding more physiologic arterial hemodynamics compared to continuous-flow support. This work therefore supports further development and evaluation of pulsatile support MCS devices for HFpEF.
目前正在开发机械循环支持(MCS)设备,以改善射血分数保留的心力衰竭(HFpEF)患者的生理机能和血液动力学。然而,这些设备大多设计用于提供连续流支持。虽然已经表明搏动性支持可能克服一些阻碍这些设备用于其他心力衰竭表型临床转化的并发症,但其对HFpEF生理机能可能产生的影响仍然未知。在此,我们展示了一项针对HFpEF的采用左心房插管的搏动泵设备的多领域模拟研究,该研究旨在缓解HFpEF中通常升高的左心房压力。我们利用集总参数建模来优化搏动泵的设计,通过计算流体动力学模拟来表征水力和溶血性能,并在活体心脏模型上进行有限元建模,以评估对动脉、左心房和左心室血液动力学及生物力学的影响。本研究报告的结果表明,与连续流支持相比,搏动流支持能够成功降低左心压力及相关壁应力,同时产生更符合生理的动脉血液动力学。因此,这项工作支持对用于HFpEF的搏动性支持MCS设备进行进一步开发和评估。