ID | 65045 |
FullText URL | |
Author |
Cao, Danfeng
Sensor and Actuator Systems, Department of Physics, Chemistry and Biology (IFM), Linköping University
Martinez, Jose G.
Sensor and Actuator Systems, Department of Physics, Chemistry and Biology (IFM), Linköping University
Anada, Risa
Advanced Research Center for Oral and Craniofacial Sciences Dental School, Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama University
Hara, Emilio Satoshi
Advanced Research Center for Oral and Craniofacial Sciences Dental School, Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama University
Kamioka, Hiroshi
Department of Orthodontics, Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama University
Kaken ID
publons
researchmap
Jager, Edwin W. H.
Sensor and Actuator Systems, Department of Physics, Chemistry and Biology (IFM), Linköping University
|
Abstract | Controlling stem cell behavior at the material interface is crucial for the development of novel technologies in stem cell biology and regenerative medicine. The composition and presentation of bio-factors on a surface strongly influence the activity of stem cells. Herein, we designed an electroactive surface that mimics the initial process of trabecular bone formation, by immobilizing chondrocyte-derived plasma membrane nanofragments (PMNFs) on its surface for rapid mineralization within 2 days. Moreover, the electroactive surface was based on the conducting polymer polypyrrole (PPy), which enabled dynamic control of the presentation of PMNFs on the surface via electrochemical redox switching, further resulting in the formation of bone minerals with different morphologies. Furthermore, bone minerals with contrasting surface morphologies had differential effects on the differentiation of human bone marrow-derived stem cells (hBMSCs) cultured on the surface. Together, this electroactive surface showed multifunctional characteristics, not only allowing dynamic control of PMNF presentation but also promoting the formation of bone minerals with different morphologies within 2 days. This electroactive substrate could be valuable for more precise control of stem cell growth and differentiation, and further development of more suitable microenvironments containing bone apatite for housing a bone marrow stem cell niche, such as biochips/bone-on-chips.
|
Keywords | Polypyrrole
plasma membrane
redox switching
bone
chip
organ-on-chip
|
Published Date | 2023-03-10
|
Publication Title |
Science and Technology of Advanced Materials
|
Volume | volume24
|
Issue | issue1
|
Publisher | Taylor and Francis
|
Start Page | 2183710
|
ISSN | 1468-6996
|
Content Type |
Journal Article
|
language |
English
|
OAI-PMH Set |
岡山大学
|
Copyright Holders | © 2023 The Author(s).
|
File Version | publisher
|
PubMed ID | |
DOI | |
Web of Science KeyUT | |
Related Url | isVersionOf https://doi.org/10.1080/14686996.2023.2183710
|
License | http://creativecommons.org/licenses/by/4.0/
|