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左心室辅助装置速度调制与心动周期时间同步对室内血液动力学影响的计算研究。

A Computational Investigation of the Effects of Temporal Synchronization of Left Ventricular Assist Device Speed Modulation with the Cardiac Cycle on Intraventricular Hemodynamics.

机构信息

Department of Mechanical Engineering, University of Washington, Seattle, WA, USA.

INSERM U1059 Sainboise, Mines Saint-Étienne, Saint-Étienne, France.

出版信息

Ann Biomed Eng. 2024 Jun;52(6):1763-1778. doi: 10.1007/s10439-024-03489-x. Epub 2024 Mar 22.

Abstract

Patients with advanced heart failure are implanted with a left ventricular assist device (LVAD) as a bridge-to-transplantation or destination therapy. Despite advances in pump design, the risk of stroke remains high. LVAD implantation significantly alters intraventricular hemodynamics, where regions of stagnation or elevated shear stresses promote thrombus formation. Third generation pumps incorporate a pulsatility mode that modulates rotational speed of the pump to enhance in-pump washout. We investigated how the timing of the pulsatility mode with the cardiac cycle affects intraventricular hemodynamic factors linked to thrombus formation. Computational fluid dynamics simulations with Lagrangian particle tracking to model platelet behavior in a patient-specific left ventricle captured altered intraventricular hemodynamics due to LVAD implantation. HeartMate 3 incorporates a pulsatility mode that modulates the speed of the pump every two seconds. Four different timings of this pulsatility mode with respect to the cardiac cycle were investigated. A strong jet formed between the mitral valve and inflow cannula. Blood stagnated in the left ventricular outflow tract beneath a closed aortic valve, in the near-wall regions off-axis of the jet, and in a large counterrotating vortex near the anterior wall. Computational results showed good agreement with particle image velocimetry results. Synchronization of the pulsatility mode with peak systole decreased stasis, reflected in the intraventricular washout of virtual contrast and Lagrangian particles over time. Temporal synchronization of HeartMate 3 pulsatility with the cardiac cycle reduces intraventricular stasis and could be beneficial for decreasing thrombogenicity.

摘要

患有晚期心力衰竭的患者会植入左心室辅助装置(LVAD)作为移植桥或目的地治疗。尽管在泵设计方面取得了进展,但中风的风险仍然很高。LVAD 植入会显著改变室内血流动力学,其中停滞或升高的剪切力区域会促进血栓形成。第三代泵采用脉动模式,调节泵的转速以增强泵内冲洗。我们研究了脉动模式与心动周期的时机如何影响与血栓形成相关的室内血流动力学因素。使用拉格朗日粒子跟踪对特定于患者的左心室中的血小板行为进行建模的计算流体动力学模拟,捕获了由于 LVAD 植入而导致的室内血流动力学改变。HeartMate 3 采用脉动模式,每两秒钟调节泵的速度。研究了这种脉动模式相对于心动周期的四种不同定时。在二尖瓣和流入套管之间形成了一个强烈的射流。在主动脉瓣关闭时,左心室流出道下方的血液停滞,在射流的近壁区域,以及在前壁附近的一个大反向旋转涡流中停滞。计算结果与粒子图像测速结果吻合良好。脉动模式与收缩期峰值的同步化减少了停滞,反映在虚拟对比度和拉格朗日粒子随时间的室内冲洗。HeartMate 3 脉动与心动周期的时间同步化减少了室内停滞,可能有助于降低血栓形成性。

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