pH-driven continuous stem cell production with enhanced regenerative capacity from polyamide/chitosan surfaces

Adipose-derived stem cells (ASCs) have raised significant interest for their potential therapeutic applications in regenerative medicine. However, ASCs usually suffer from decreased pluripotency and functional plasticity during in vitro expansion. Herein, this study sought to develop a continuous ce...

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Veröffentlicht in:Materials today bio 2023-02, Vol.18, p.100514-100514, Article 100514
Hauptverfasser: Yen, Chia-Hsiang, Cheng, Nai-Chen, Hsieh, Hao-Ying, Tsai, Ching-Wen, Lee, An-Li, Lu, Chien-Yi, Chen, Yin-Tzu, Young, Tai-Horng
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Sprache:eng
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Zusammenfassung:Adipose-derived stem cells (ASCs) have raised significant interest for their potential therapeutic applications in regenerative medicine. However, ASCs usually suffer from decreased pluripotency and functional plasticity during in vitro expansion. Herein, this study sought to develop a continuous cell production system that can mass-produce ASCs with sustained regenerative capacity. The strategy was blending pH-responsive chitosan (CS) with polyamide-66 (PA) to generate combined surface properties with controllable cell growth/detachment ability to achieve a repeated cell production process. From the collected data, all the polymer blends were capable of completing a minimum of four consecutive production cycles, wherein the PA17CS blend (PA:CS = 1:7) outperformed with respect to the working effectiveness (average cell detachment ratio= 88%) and the cell viability. Compared to the trypsin-based method, ASCs harvested from PA17CS exhibited superior stemness characteristics along with SDF-1-mediated CXCR4 chemotactic response for stem cell homing. Moreover, injection of ASCs generated from PA17CS blend could more effectively induce neovascularization and protect skin flaps during an ischemic injury in a rat model. [Display omitted] •Polyamide-66/Chitosan (PA/CS) serves as a continuous cell production platform.•The periodic cell expansion/detachment is driven by the precise pH control.•The harvested stem cells exhibit superior stemness characteristics (in vitro).•The harvested stem cells showed prominent tissue regeneration ability (in vivo).•This platform holds great biological potential depending on the input cell types.
ISSN:2590-0064
2590-0064
DOI:10.1016/j.mtbio.2022.100514