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A Self‐Assembled Matrix System for Cell‐Bioengineering Applications in Different Dimensions, Scales, and Geometries

Authors :
Yong Xu
Michelle Patino Gaillez
Kai Zheng
Dagmar Voigt
Meiying Cui
Thomas Kurth
Lingfei Xiao
Rebecca Rothe
Sandra Hauser
Pao‐Wan Lee
Robert Wieduwild
Weilin Lin
Martin Bornhäuser
Jens Pietzsch
Aldo R. Boccaccini
Yixin Zhang
Source :
Small. 18:2104758
Publication Year :
2022
Publisher :
Wiley, 2022.

Abstract

Stem cell bioengineering and therapy require different model systems and materials in different stages of development. If a chemically defined biomatrix system can fulfill most tasks, it can minimize the discrepancy among various setups. By screening biomaterials synthesized through a coacervation-mediated self-assembling mechanism, a biomatrix system optimal for 2D human mesenchymal stromal cell (hMSC) culture and osteogenesis is identified. Its utility for hMSC bioengineering is further demonstrated in coating porous bioactive glass scaffolds and nanoparticle synthesis for esiRNA delivery to knock down the SOX-9 gene with high delivery efficiency. The self-assembled injectable system is further utilized for 3D cell culture, segregated co-culture of hMSC with human umbilical vein endothelial cells (HUVEC) as an angiogenesis model, and 3D bioprinting. Most interestingly, the coating of bioactive glass with the self-assembled biomatrix not only supports the proliferation and osteogenesis of hMSC in the 3D scaffold but also induces the amorphous bioactive glass (BG) scaffold surface to form new apatite crystals resembling bone-shaped plate structures. Thus, the self-assembled biomatrix system can be utilized in various dimensions, scales, and geometries for many different bioengineering applications.

Details

ISSN :
16136829 and 16136810
Volume :
18
Database :
OpenAIRE
Journal :
Small
Accession number :
edsair.doi.dedup.....b406e713fc85dd1184dc62ccb930cc34
Full Text :
https://doi.org/10.1002/smll.202104758