Laser-Treated Surfaces for VADs: From Inert Titanium to Potential Biofunctional Materials

Author:

Bock Eduardo12ORCID,Pfleging Wilhelm3ORCID,Tada Dayane4,Macedo Erenilda4ORCID,Premazzi Nathalia1,Sá Rosa25,Solheid Juliana3,Besser Heino3,Andrade Aron2

Affiliation:

1. Laboratory of Bioengineering and Biomaterials, Federal Institute of Technology in Sao Paulo (IFSP), Sao PauloBrazil

2. Center of Engineering in Circulatory Assistance, Institute Dante Pazzanese of Cardiology (IDPC), Sao Paulo, Brazil

3. Institute for Applied Materials-Applied Materials Physics, Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany

4. Federal University of Sao Paulo (UNIFESP), Sao Jose dos Campos, Brazil

5. National Institute for Space Research (INPE), Sao Jose dos Campos, Brazil

Abstract

Objective . Laser-treated surfaces for ventricular assist devices. Impact Statement . This work has scientific impact since it proposes a biofunctional surface created with laser processing in bioinert titanium. Introduction . Cardiovascular diseases are the world’s leading cause of death. An especially debilitating heart disease is congestive heart failure. Among the possible therapies, heart transplantation and mechanical circulatory assistance are the main treatments for its severe form at a more advanced stage. The development of biomaterials for ventricular assist devices is still being carried out. Although polished titanium is currently employed in several devices, its performance could be improved by enhancing the bioactivity of its surface. Methods . Aiming to improve the titanium without using coatings that can be detached, this work presents the formation of laser-induced periodic surface structures with a topology suitable for cell adhesion and neointimal tissue formation. The surface was modified by femtosecond laser ablation and cell adhesion was evaluated in vitro by using fibroblast cells. Results . The results indicate the formation of the desired topology, since the cells showed the appropriate adhesion compared to the control group. Scanning electron microscopy showed several positive characteristics in the cells shape and their surface distribution. The in vitro results obtained with different topologies point that the proposed LIPSS would provide enhanced cell adhesion and proliferation. Conclusion . The laser processes studied can create new interactions in biomaterials already known and improve the performance of biomaterials for use in ventricular assist devices.

Funder

MPF

FAJ

TAS

UNIFESP

IFSP

KIT

Fundação de Amparo à Pesquisa do Estado de São Paulo

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

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3. Investigation of MEMS as accelerometer sensor in an implantable centrifugal blood pump prototype;Silva Neto S.;Journal of the Brazilian Society of Mechanical Sciences and Engineering,2020

4. Modification surface in medicine: techniques with plasma in implantable centrifugal blood pump;Sá R.;Sinergia,2017

5. Effect of Q-switched laser surface texturing of titanium on osteoblast cell response;Voisey K. T.;Physics Procedia,2014

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