Amine Benouhiba, Silje Ekroll Jahren, Armando Walter, Francesco Clavica, Paul Philipp Heinisch, Jürgen Hörer, Thierry Carrel, Dominik Obrist, Yoan Civet, Yves Perriard
Cardiac assist devices based on dielectric elastomer actuators (DEAs) offer a promising alternative to conventional mechanical circulatory support by providing soft and adaptive mechanical assistance. However, existing DEA-based systems face significant limitations in energy efficiency and effective hemodynamic modulation. This study presents a novel vacuum-enhanced DEA-based counterpulsation device and evaluates its performance in a porcine in-vivo model. We investigated two distinct implementation configurations: a direct attachment to the descending aorta and an integration into a bypass circuit mimicking an ascending aortic attachment. The device was actuated in synchronization with the cardiac cycle to provide real-time mechanical unloading. The results demonstrate that the vacuum-enhanced DEA system significantly improved diastolic augmentation (Mean: 39.1 ± 11.7%; Range: 29.2 to 55.0%) and achieved superior left ventricular unloading, marked by a remarkable reduction in end-diastolic pressure (Mean: −126.1 ± 65.6%; Range: −188.3 to −67.1%). Furthermore, the device reduced stroke work (Mean: −12.3 ± 14.0%; Range: −24.2 to 4.4%) and increased stroke volume (Mean: 3.9 ± 2.2%; Range: 2.5 to 7.1%) compared to baseline (device off). These findings establish vacuum-enhanced DEA actuation as a highly viable and impactful approach for next-generation cardiac assist devices, paving the way for further clinical optimization and application. • Evaluation of a vacuum-enhanced DEA for cardiac support in pigs. • Two configurations tested: direct aorta attachment or via a bypass circuit. • Device synchronized with heartbeat improved diastolic augmentation 39.1% ±11.7%. • Reduced end-diastolic pressure 126.1% ±65.6% and LV workload 12.3% ±14.0%. • Stroke volume rose by 3.9% ±2.2% from baseline. • Results show potential of device as a soft, adaptive cardiac assist system.