Pugovkin Alexander A, Markov Aleksandr G, Selishchev Sergey V, Korn Leonie, Walter Marian, Leonhardt Steffen, Bockeria Leo A, Bockeria Olga L, Telyshev Dmitry V
Institute for Biomedical Systems, National Research University of Electronic Technology, Zelenograd 124498, Moscow, Russia.
Institute for Bionic Technologies and Engineering, I. M. Sechenov First Moscow State Medical University, 119991 Moscow, Russia.
Cardiol Res Pract. 2019 Nov 15;2019:4593174. doi: 10.1155/2019/4593174. eCollection 2019.
The need to simulate the operating conditions of the human body is a key factor in every study and engineering process of a bioengineering device developed for implantation. In the present paper, we describe in detail the interaction between the left ventricle (LV) and our Sputnik left ventricular assist devices (LVADs). This research aims to evaluate the influence of different rotary blood pumps (RBPs) on the LV depending on the degree of heart failure (HF), in order to investigate energetic characteristics of the LV-LVAD interaction and to estimate main parameters of left ventricular unloading. We investigate energetic characteristics of adult Sputnik 1 and Sputnik 2 LVADs connected to a hybrid adult mock circulation (HAMC) and also for the Sputnik pediatric rotary blood pump (PRBP) connected to a pediatric mock circulation (PMC). A major improvement of the LV unloading is observed during all simulations for each particular heart failure state when connected to the LVAD, with sequential pump speed increased within 5000-10000 rpm for adult LVADs and 6000-13000 rpm for PRBP with 200 rpm step. Additionally, it was found that depending on the degree of heart failure, LVADs influence the LV in different ways and a significant support level cannot be achieved without the aortic valve closure. Furthermore, this study expands the information on LV-LVAD interaction, which leads to the optimization of the RBP speed rate control in clinics for adult and pediatric patients suffering from heart failure. Finally, we show that the implementation of control algorithms using the modulation of the RBP speed in order to open the aortic valve and unload the LV more efficiently is necessary and will be content of further research.
模拟人体运行条件的需求是为植入而开发的生物工程设备的每项研究和工程过程中的关键因素。在本文中,我们详细描述了左心室(LV)与我们的人造卫星左心室辅助装置(LVAD)之间的相互作用。本研究旨在评估不同旋转血泵(RBP)根据心力衰竭(HF)程度对左心室的影响,以研究左心室与LVAD相互作用的能量特性,并估计左心室卸载的主要参数。我们研究了连接到混合成人模拟循环(HAMC)的成人型人造卫星1和人造卫星2 LVAD以及连接到儿科模拟循环(PMC)的人造卫星儿科旋转血泵(PRBP)的能量特性。在与LVAD连接的每种特定心力衰竭状态的所有模拟过程中,当成人LVAD的泵速以5000 - 10000转/分钟、PRBP以6000 - 13000转/分钟且步长为200转/分钟依次增加时,观察到左心室卸载有显著改善。此外,发现根据心力衰竭程度,LVAD以不同方式影响左心室,并且在主动脉瓣未关闭的情况下无法达到显著的支持水平。此外,本研究扩展了关于左心室与LVAD相互作用的信息,这导致在临床上针对患有心力衰竭的成人和儿科患者优化RBP速度控制。最后,我们表明使用RBP速度调制来打开主动脉瓣并更有效地卸载左心室的控制算法的实施是必要的,并且将是进一步研究的内容。