A patient-specific echogenic soft robotic left ventricle embedded into a closed-loop cardiovascular simulator for advanced device testing

Author:

Rocchi Maria1ORCID,Papangelopoulou Konstantina1ORCID,Ingram Marcus1ORCID,Bekhuis Youri123ORCID,Claessen Guido134ORCID,Claus Piet1ORCID,D'hooge Jan1ORCID,Donker Dirk W.56ORCID,Meyns Bart17ORCID,Fresiello Libera15ORCID

Affiliation:

1. Department of Cardiovascular Sciences, KU Leuven 1 , Leuven, Belgium

2. Department of Cardiovascular Diseases, University Hospitals 2 Leuven, Belgium

3. Faculty of Medicine and Life Sciences, LCRC, UHasselt, Biomedical Research Institute 3 , Diepenbeek, Belgium

4. Hartcentrum Hasselt, Jessa Ziekenhuis 4 , Belgium

5. Cardiovascular and Respiratory Physiology, University of Twente 5 , Enschede, The Netherlands

6. Intensive Care Center, University Medical Center Utrecht 6 , Utrecht, the Netherlands

7. Department of Cardiac Surgery, University Hospitals Leuven 7 , Leuven, Belgium

Abstract

Cardiovascular medical devices undergo a large number of pre- and post-market tests before their approval for clinical practice use. Sophisticated cardiovascular simulators can significantly expedite the evaluation process by providing a safe and controlled environment and representing clinically relevant case scenarios. The complex nature of the cardiovascular system affected by severe pathologies and the inherently intricate patient–device interaction creates a need for high-fidelity test benches able to reproduce intra- and inter-patient variability of disease states. Therefore, we propose an innovative cardiovascular simulator that combines in silico and in vitro modeling techniques with a soft robotic left ventricle. The simulator leverages patient-specific and echogenic soft robotic phantoms used to recreate the intracardiac pressure and volume waveforms, combined with an in silico lumped parameter model of the remaining cardiovascular system. Three different patient-specific profiles were recreated, to assess the capability of the simulator to represent a variety of working conditions and mechanical properties of the left ventricle. The simulator is shown to provide a realistic physiological and anatomical representation thanks to the use of soft robotics combined with in silico modeling. This tool proves valuable for optimizing and validating medical devices and delineating specific indications and boundary conditions.

Funder

Fonds Wetenschappelijk Onderzoek

KU Leuven

International Society of Mechanical Circulatory Support system

Publisher

AIP Publishing

Reference41 articles.

1. Preclinical evaluation;Gregory,2017

2. verview in the Office of Science and Engineering Laboratories (OSEL),2021

3. Advancing regulatory science with computational modeling for medical devices at the FDA's Office of Science and Engineering Laboratories;Front. Med.,2018

4. FDA.gov, see https://www.fda.gov/MedicalDevices/ScienceandResearch/MedicalDeviceDevelopmentToolsMDDT/default.htm for “ Qualification of Medical Device Development Tools Guidance for Industry, Tool Developers, and Food and Drug Administration Staff” (2017).

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