Double‐Orthogonal Gradient‐Based High‐Throughput Screening Platform for Studying Cell Response Toward Combined Physicochemical Biomaterial Properties

Author:

van der Boon Torben A.B.1,Tromp Lisa E.1,Ge Lu2,Yang Liangliang2,Guimaraes Carlos F.34,Kühn Philipp T.1,Zhou Qihui5,Bank Ruud A.1,van Kooten Theo G.1,van Rijn Patrick1ORCID

Affiliation:

1. Department of Biomedical Engineering FB-40 W.J. Kolff Institute for Biomedical Engineering and Materials Science University of Groningen, University Medical Center Groningen A. Deusinglaan 1 9713 AV Groningen The Netherlands

2. School of Pharmaceutical Science Wenzhou Medical University Wenzhou Zhejiang 325000 China

3. 3B's Research Group - Biomaterials, Biodegradables and Biomimetics, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine University of Minho, AvePark, Parque de Ciência e Tecnologia 4805-017 Barco, Guimarães Portugal

4. ICVS/3Bs Associate Laboratory AvePark, Zona Industrial da Gandra S. Claudio do Barco, Caldas das Taipas 4806-909 Guimarães Portugal

5. School of Rehabilitation Sciences and Engineering University of Health and Rehabilitation Sciences Qingdao 266071 China

Abstract

Implant‐associated complications arise due to non‐optimized cell–biomaterial interactions. It is well known that cells respond to their physicochemical microenvironment on 2D interfaces and 3D networks. Attempts to manipulate this interaction target surface parameters such as wettability (W), stiffness (S), and topography (T) to influence cell differentiation, adhesion, and morphology, due to induction of gene activation and protein expression. Investigating the combinatorial influence of all three mentioned parameters simultaneously remains challenging, though most realistic, since all three parameters are inherently present on a surface. Herein, a novel high‐throughput screening technology, which allows investigating the cell response of human bone‐marrow‐derived mesenchymal stem cells toward three varying biomaterial surface parameters simultaneously, is presented. The platform provides efficient screening and cell response readout to a vast amount of combined biomaterial surface properties, in a single‐cell experiment. Surface gradients of aligned wrinkle T, S, and W are orthogonally combined giving four combinatorial surfaces. The screening outcome is validated by translating interesting regions to homogeneous surfaces. Cells are found to behave similar to the screening in terms of adhesion, spreading, and vimentin expression. The technology tremendously supports the identification of optimal surface parameter combinations and potentially addressing many of the current implant‐associated complications.

Funder

China Sponsorship Council

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

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