Literature DB >> 21615427

Electrocardiogram-synchronized rotational speed change mode in rotary pumps could improve pulsatility.

Masahiko Ando1, Takashi Nishimura, Yoshiaki Takewa, Kenji Yamazaki, Shunei Kyo, Minoru Ono, Tomonori Tsukiya, Toshihide Mizuno, Yoshiyuki Taenaka, Eisuke Tatsumi.   

Abstract

Continuous-flow left ventricular assist devices (LVADs) have greatly improved the prognosis of patients with end-stage heart failure, even if continuous flow is different from physiological flow in that it has less pulsatility. A novel pump controller of continuous-flow LVADs has been developed, which can change its rotational speed (RS) in synchronization with the native cardiac cycle, and we speculated that pulsatile mode, which increases RS just in the systolic phase, can create more pulsatility than the current system with constant RS does. The purpose of the present study is to evaluate the effect of this pulsatile mode of continuous-flow LVADs on pulsatility in in vivo settings. Experiments were performed on eight adult goats (61.7 ± 7.5 kg). A centrifugal pump, EVAHEART (Sun Medical Technology Research Corporation, Nagano, Japan), was installed by the apex drainage and the descending aortic perfusion. A pacing lead for the detection of ventricular electrocardiogram was sutured on the anterior wall of the right ventricle. In the present study, we compared pulse pressure or other parameters in the following three conditions, including Circuit-Clamp (i.e., no pump support), Continuous mode (constant RS), and Pulsatile mode (increase RS in systole). Assist rate was calculated by dividing pump flow (PF) by the sum of PF and ascending aortic flow (AoF). In continuous and pulsatile modes, these assist rates were adjusted around 80-90%. The following three parameters were used to evaluate pulsatility, including pulse pressure, dp/dt of aortic pressure (AoP), and energy equivalent pulse pressure (EEP = (∫PF*AoP dt)/(∫PF dt), mm Hg). The percent difference between EEP and mean AoP is used as an indicator of pulsatility, and normally it is around 10% of mean AoP in physiological pulse. Both pulse pressure and mean dp/dt max were decreased in continuous mode compared with clamp condition, while those were regained by pulsatile mode nearly to clamp condition (pulse pressure, clamp/continuous/pulsatile, 25.0 ± 7.6/11.7 ± 6.4/22.6 ± 9.8 mm Hg, mean dp/dt max, 481.9 ± 207.6/75.6 ± 36.2/351.1 ± 137.8 mm Hg/s, respectively). In clamp condition, %EEP was 10% higher than mean AoP (P = 0.0078), while in continuous mode, %EEP was nearly equivalent to mean AoP (N.S.). In pulsatile mode, %EEP was 9% higher than mean AoP (P = 0.038). Our newly developed pulsatile mode of continuous-flow LVADs can produce pulsatility comparable to physiological pulsatile flow. Further investigation on the effect of this novel drive mode on organ perfusion is currently ongoing.
© 2011, Copyright the Authors. Artificial Organs © 2011, International Center for Artificial Organs and Transplantation and Wiley Periodicals, Inc.

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Year:  2011        PMID: 21615427     DOI: 10.1111/j.1525-1594.2011.01205.x

Source DB:  PubMed          Journal:  Artif Organs        ISSN: 0160-564X            Impact factor:   3.094


  13 in total

1.  Alteration of LV end-diastolic volume by controlling the power of the continuous-flow LVAD, so it is synchronized with cardiac beat: development of a native heart load control system (NHLCS).

Authors:  Akihide Umeki; Takashi Nishimura; Masahiko Ando; Yoshiaki Takewa; Kenji Yamazaki; Shunei Kyo; Minoru Ono; Tomonori Tsukiya; Toshihide Mizuno; Yoshiyuki Taenaka; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2011-11-12       Impact factor: 1.731

2.  Pulsatile support using a rotary left ventricular assist device with an electrocardiography-synchronized rotational speed control mode for tracking heart rate variability.

Authors:  Mamoru Arakawa; Takashi Nishimura; Yoshiaki Takewa; Akihide Umeki; Masahiko Ando; Yuichiro Kishimoto; Satoru Kishimoto; Yutaka Fujii; Kazuma Date; Shunei Kyo; Hideo Adachi; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2015-11-25       Impact factor: 1.731

3.  Novel control system to prevent right ventricular failure induced by rotary blood pump.

Authors:  Mamoru Arakawa; Takashi Nishimura; Yoshiaki Takewa; Akihide Umeki; Masahiko Ando; Yuichiro Kishimoto; Yutaka Fujii; Shunei Kyo; Hideo Adachi; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2014-02-07       Impact factor: 1.731

4.  Influence of a novel electrocardiogram-synchronized rotational-speed-change system of an implantable continuous-flow left ventricular assist device (EVAHEART) on hemolytic performance.

Authors:  Satoru Kishimoto; Kazuma Date; Mamoru Arakawa; Yoshiaki Takewa; Takashi Nishimura; Tomonori Tsukiya; Toshihide Mizuno; Nobumasa Katagiri; Yukihide Kakuta; Daisuke Ogawa; Motonobu Nishimura; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2014-09-02       Impact factor: 1.731

5.  Changing pulsatility by delaying the rotational speed phasing of a rotary left ventricular assist device.

Authors:  Kazuma Date; Takashi Nishimura; Mamoru Arakawa; Yoshiaki Takewa; Satoru Kishimoto; Akihide Umeki; Masahiko Ando; Toshihide Mizuno; Tomonori Tsukiya; Minoru Ono; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2016-07-19       Impact factor: 1.731

6.  Shifting the pulsatility by increasing the change in rotational speed for a rotary LVAD using a native heart load control system.

Authors:  Kazuma Date; Takashi Nishimura; Yoshiaki Takewa; Satoru Kishimoto; Mamoru Arakawa; Akihide Umeki; Masahiko Ando; Toshihide Mizuno; Tomonori Tsukiya; Minoru Ono; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2016-05-14       Impact factor: 1.731

7.  Change in myocardial oxygen consumption employing continuous-flow LVAD with cardiac beat synchronizing system, in acute ischemic heart failure models.

Authors:  Akihide Umeki; Takashi Nishimura; Yoshiaki Takewa; Masahiko Ando; Mamoru Arakawa; Yuichiro Kishimoto; Tomonori Tsukiya; Toshihide Mizuno; Shunei Kyo; Minoru Ono; Yoshiyuki Taenaka; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2013-01-17       Impact factor: 1.731

8.  Development of a novel drive mode to prevent aortic insufficiency during continuous-flow LVAD support by synchronizing rotational speed with heartbeat.

Authors:  Yuichiro Kishimoto; Yoshiaki Takewa; Mamoru Arakawa; Akihide Umeki; Masahiko Ando; Takashi Nishimura; Yutaka Fujii; Toshihide Mizuno; Motonobu Nishimura; Eisuke Tatsumi
Journal:  J Artif Organs       Date:  2013-01-23       Impact factor: 1.731

9.  Wave Intensity Analysis of Right Ventricular Function during Pulsed Operation of Rotary Left Ventricular Assist Devices.

Authors:  J Christopher Bouwmeester; Jiheum Park; John Valdovinos; Pramod Bonde
Journal:  ASAIO J       Date:  2019-07       Impact factor: 2.872

10.  Enhancement of Arterial Pressure Pulsatility by Controlling Continuous-Flow Left Ventricular Assist Device Flow Rate in Mock Circulatory System.

Authors:  Selim Bozkurt; Frans N van de Vosse; Marcel C M Rutten
Journal:  J Med Biol Eng       Date:  2016-06-25       Impact factor: 1.553

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