4.8 Article

Gelatin-based 3D conduits for transdifferentiation of mesenchymal stem cells into Schwann cell-like phenotypes

Journal

ACTA BIOMATERIALIA
Volume 53, Issue -, Pages 293-306

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2017.02.018

Keywords

3D gelatin conduits; MSCs; SCs; Transdifferentiation; Nerve regeneration

Funding

  1. US Army Medical Research and Materiel Command [W81XWH-11-1-0700]
  2. Stem Cell Biology Fund
  3. Stanley Endowed Chair

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In this study, gelatin-based 3D conduits with three different microstructures (nanofibrous, macroporous and ladder-like) were fabricated for the first time via combined molding and thermally induced phase separation (TIPS) technique for peripheral nerve regeneration. The effects of conduit microstructure and mechanical properties on the transdifferentiation of bone marrow-derived mesenchymal stem cells (MSCs) into Schwann cell (SC) like phenotypes were examined to help facilitate neuroregeneration and understand material-cell interfaces. Results indicated that 3D macroporous and ladder-like structures enhanced MSC attachment, proliferation and spreading, creating interconnected cellular networks with large numbers of viable cells compared to nanofibrous and 2D-tissue culture plate counterparts. 3D ladder-like conduit structure with complex modulus of similar to 0.4 x 10(6) Pa and pore size of 150 pm provided the most favorable microenvironment for MSC transdifferentiation leading to similar to 85% immunolabeling of all SC markers. On the other hand, the macroporous conduits with complex modulus of 4 x 106 Pa and pore size of 100 pm showed slightly lower (similar to 65% for similar to 75, 75% for S100 and similar to 85% for S100 beta markers) immunolabeling. Transdifferentiated MSCs within 3D-ladder-like conduits secreted significant amounts (similar to 2.5 pg/mL NGF and similar to 0.7 pg/mL GDNF per cell) of neurotrophic factors, while MSCs in macro porous conduits released slightly lower (-1.5 pg/mL NGF and 0.7 pg/mL GDNF per cell) levels. PC12 cells displayed enhanced neurite outgrowth in media conditioned by conduits with transdifferentiated MSCs. Overall, conduits with macroporous and ladder-like 3D structures are promising platforms in transdifferentiation of MSCs for neuroregeneration and should be further tested in vivo. Statement of Significance This manuscript focuses on the effect of microstructure and mechanical properties of gelatin-based 3D conduits on the transdifferentiation of mesenchymal stem cells to Schwann cell-like phenotypes. This work builds on our recently accepted manuscript in Acta Biomaterialia focused on multifunctional 2D films, and focuses on 3D microstructured conduits designed to overcome limitations of current strategies to facilitate peripheral nerve regeneration. The comparison between conduits fabricated with nanofibrous, macroporous and ladder-like microstructures showed that the ladder-like conduits showed the most favorable environment for MSC transdifferentiation to Schwann-cell like phenotypes, as seen by both immunolabeling as well as secretion of neurotrophic factors. This work demonstrates the importance of controlling the 3D microstructure to facilitate tissue engineering strategies involving stem cells that can serve as promising approaches for peripheral nerve regeneration. (C) 2017 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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