Székely Marcell, Székely László, C Dénes Mónika, Radovits Tamás, Merkely Béla, Hartyánszky István
Department of Cardiothoracic and Vascular Surgery, Central Hospital of Northern Pest - Military Hospital, Budapest, Hungary.
Heart and Vascular Center, Semmelweis University, Budapest, Hungary.
Eur J Cardiothorac Surg. 2025 Jun 3;67(6). doi: 10.1093/ejcts/ezaf173.
Cardiogenic shock is still a major clinical challenge, despite the available devices. We developed a minimally invasive, transapical dual-lumened cannula, which can provide antegrade circulatory support and unloading for the left ventricle (LV). After using 3D printing technology, we wanted to test whether our prototypes are haemodynamically competent and implantable in an experimental large porcine model as a proof of concept study.
We implanted our cannula prototypes to 7 healthy porcines via median sternotomy (n = 6) and via minimally invasive access (n = 1), transapically, under fluoroscopic control, off-pump. The cannulas were connected to a heart-lung machine, and we went from 2.5, to 3.5, 4, 4.5, 5 and 5.5 l/min flow with 15-15 min intervals on each flow to ensure LV support. Different metabolic and haemodynamic parameters were continuously monitored.
Implantation time was 14 ± 5 min. The cardiac output of the right ventricle elevated with the LV and roller pump performance from baseline of 4.81 ± 2.09 to 6.17 ± 1.02 l/min at 5.5 l/min pump flow. Mean arterial pressure and central venous pressure changed from 68.9 ± 9.4 and 9.2 ± 2.4 mmHg, to 72.8 ± 11.3 and 9.8 ± 3 mmHg, respectively. Serum lactic acid and other metabolic parameters were not changed significantly.
We have successfully proved in a large animal study that our prototypes are implantable and can provide up to 5.5 l/min cardiac output. They could assist, then fully replace the function of the LV using a roller pump during our study. Further investigations are planned in the future using centrifugal pumps for longer-term support.
尽管有可用的设备,但心源性休克仍是一项重大的临床挑战。我们研发了一种微创经心尖双腔插管,其可为左心室(LV)提供顺行循环支持和负荷卸载。在使用3D打印技术后,我们想测试我们的原型在实验性大型猪模型中是否具有血流动力学功能且可植入,以此作为概念验证研究。
我们在透视控制下,通过正中胸骨切开术(n = 6)和微创入路(n = 1),经心尖,在非体外循环下,将我们的插管原型植入7头健康猪体内。插管连接到心肺机,我们以2.5、3.5、4、4.5、5和5.5升/分钟的流量,每次流量间隔15分钟,以确保左心室得到支持。持续监测不同的代谢和血流动力学参数。
植入时间为14±5分钟。在泵流量为5.5升/分钟时,右心室心输出量随着左心室和滚压泵性能从基线的4.81±2.09升高到6.17±1.02升/分钟。平均动脉压和中心静脉压分别从68.9±9.4和9.2±2.4毫米汞柱变为72.8±11.3和9.8±3毫米汞柱。血清乳酸和其他代谢参数没有明显变化。
我们在一项大型动物研究中成功证明,我们的原型可植入,且能提供高达5.5升/分钟的心输出量。在我们的研究中,它们可以辅助,然后使用滚压泵完全替代左心室的功能。未来计划使用离心泵进行进一步的长期支持研究。