In Vitro and In Vivo Testing of Stereolithography (SLA)-Manufactured Haemocompatible Photopolymers for Blood Pump

Author:

Major Roman1ORCID,Gawlikowski Maciej23ORCID,Surmiak Marcin4ORCID,Janiczak Karolina2,Więcek Justyna1ORCID,Kurtyka Przemysław1ORCID,Schwentenwein Martin5ORCID,Jasek-Gajda Ewa6ORCID,Kopernik Magdalena7ORCID,Lackner Juergen M.8

Affiliation:

1. Institute of Metallurgy and Materials Science, Polish Academy of Sciences, 25 Reymonta St., 30-059 Cracow, Poland

2. Foundation of Cardiac Surgery Development, Institute of Heart Prostheses, 345A Wolności St., 41-800 Zabrze, Poland

3. Faculty of Biomedical Engineering, Silesian University of Technology, Roosevelt St. 40, 41-800 Zabrze, Poland

4. Department of Internal Medicine, Jagiellonian University Medical College, 8 Skawińska St., 31-066 Cracow, Poland

5. Lithoz GmbH, Mollardgasse 85a/2/64-69, 1060 Vienna, Austria

6. Department of Histology, Faculty of Medicine, Jagiellonian University Medical College, 7 Kopernika St., 31-034 Cracow, Poland

7. AGH University of Krakow, 30 Mickiewicza St., 30-059 Cracow, Poland

8. Institute for Sensors, Photonics and Manufacturing Technologies, Laser and Plasma Processing, Joanneum Research Forschungsgesellschaft m.b.H., Leobner Straße 94a, 8712 Niklasdorf, Austria

Abstract

A major medical problem of state-of-the-art heart ventricular assist devices (LVADs) is device-induced thrombus formation due to inadequate blood-flow dynamics generated by the blood pump rotor. The latter is a highly complex device, with difficulties during conventional manufacturing through milling or casting. Therefore, the additive manufacturing technology relying on stereo-lithography (SLA) capable of producing parts of significantly increased freedom for a blood-flow-compatible, thrombus-risk-free design was chosen as novel and flexible technology for that type of application. However, as yet state-of-the-art SLA is not suitable to produce fully safe blood-contacting devices. Therefore, the present experiment covered chemical, mechanical, rheological, tribological, and complex biocompatibility characterization in accordance with i.a. ISO 10993 standards, including hemolysis and an acute thrombogenicity blood test on fresh animal blood (both as innovative laboratory tests to avoid animal usage in preclinical studies) with a special focus on testing demonstrators of miniaturized blood pump rotors. The conducted tests indicated acceptable biocompatibility of the material and a slight improvement in biocompatibility with surface modification. Additionally, a high biocompatibility of the tested materials was confirmed. Based on studies and simulations, stereolithography (SLA) as an additive manufacturing technology with significantly increased freedom for a blood-flow-compatible, thrombus-risk-free design was chosen as a novel and flexible technology basis in the 4DbloodROT project to enable future manufacturing of rotors with exceptional biomimetic complexity.

Funder

Polish National Centre of Research and Development

Austrian Research and Promotion Agency

Polish Ministry of Infrastructure and Development

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference45 articles.

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2. (2023, November 17). Eurotransplant International Foundation, Annual Report 2011. Available online: https://www.eurotransplant.org/wp-content/uploads/2019/12/ar_2011.pdf.

3. Medicaid Expansion and Ventricular Assist Device Implantation: An Analysis of the INTERMACS Registry;Khatana;J. Am. Coll. Cardiol.,2020

4. Surface Coatings for Rotary Ventricular Assist Devices: A Systematic Review;Zhang;ASAIO J.,2022

5. Caution with Conclusions and Context of Mechanical Circulatory Devices-Reply;Miller;JAMA Intern. Med.,2023

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