Impact of In-Process Crystallinity of Biodegradable Scaffolds Fabricated by Material Extrusion on the Micro- and Nanosurface Topography, Viability, Proliferation, and Differentiation of Human Mesenchymal Stromal Cells

Author:

Lužanin Ognjan1ORCID,Gudurić Vera2ORCID,Bernhardt Anne2ORCID,Movrin Dejan1ORCID,Damjanović-Vasilić Ljiljana3ORCID,Terek Pal1ORCID,Ostojić Gordana1ORCID,Stankovski Stevan1ORCID

Affiliation:

1. Faculty of Technical Sciences, University of Novi Sad, 21000 Novi Sad, Serbia

2. Centre for Translational Bone, Joint and Soft Tissue Research, Faculty of Medicine Carl Gustav Carus, Technical University Dresden, 01307 Dresden, Germany

3. Faculty of Physical Chemistry, University of Belgrade, 11000 Belgrade, Serbia

Abstract

Due to affordability, and the ability to parametrically control the vital processing parameters, material extrusion is a widely accepted technology in tissue engineering. Material extrusion offers sufficient control over pore size, geometry, and spatial distribution, and can also yield different levels of in-process crystallinity in the resulting matrix. In this study, an empirical model based on four process parameters—extruder temperature, extrusion speed, layer thickness, and build plate temperature—was used to control the level of in-process crystallinity of polylactic acid (PLA) scaffolds. Two sets of scaffolds were fabricated, with low- and high-crystallinity content, and subsequently seeded with human mesenchymal stromal cells (hMSC). The biochemical activity of hMSC cells was tested by examining the DNA content, lactate dehydrogenase (LDH) activity, and alkaline phosphatase (ALP) tests. The results of this 21-day in vitro experiment showed that high level crystallinity scaffolds performed significantly better in terms of cell response. Follow-up tests revealed that the two types of scaffolds were equivalent in terms of hydrophobicity, and module of elasticity. However, detailed examination of their micro- and nanosurface topographic features revealed that the higher crystallinity scaffolds featured pronounced nonuniformity and a larger number of summits per sampling area, which was the main contributor to a significantly better cell response.

Funder

Ministry of Science, Technological Development and Innovation

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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