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Photonic control of ligand nanospacing in self-assembly regulates stem cell fate

Title
Photonic control of ligand nanospacing in self-assembly regulates stem cell fate
Authors
ChoiJung YeonHonghwanKimChowonAnJusungJungryunMunKwang RokShinSeungyongZhangKunyuZhaoPengchaoYuriKangNayeonHanSeong-BeomDaheeYoonJiwonMisunJihwanYangLetaoKaramikamkarSolmazJinjooZhuYangzhiNajafabadiAlireza HassaniSongGuoshengDong-HweeKi-BumOhSoong JuJungHyun-DoHyun-CheolJangWoo YoungBianLimingChuZhiqinJuyoungJong SeungYu ShrikeYongjuHo SeongSehoonHeeminLeeSungkyuYooJounghyunBaeGunhyuThangamRamarHeoJeongyunPark
Ewha Authors
윤주영
SCOPUS Author ID
윤주영scopus
Issue Date
2024
Journal Title
Bioactive Materials
ISSN
2452-199XJCR Link
Citation
Bioactive Materials vol. 34, pp. 164 - 180
Keywords
Dynamic self-assemblyIn vivo trackingLigand nanospacingStem cell adhesionStem cell fate
Publisher
KeAi Communications Co.
Indexed
SCIE; SCOPUS scopus
Document Type
Article
Abstract
Extracellular matrix (ECM) undergoes dynamic inflation that dynamically changes ligand nanospacing but has not been explored. Here we utilize ECM-mimicking photocontrolled supramolecular ligand-tunable Azo+ self-assembly composed of azobenzene derivatives (Azo+) stacked via cation-π interactions and stabilized with RGD ligand-bearing poly(acrylic acid). Near-infrared-upconverted-ultraviolet light induces cis-Azo+-mediated inflation that suppresses cation-π interactions, thereby inflating liganded self-assembly. This inflation increases nanospacing of “closely nanospaced” ligands from 1.8 nm to 2.6 nm and the surface area of liganded self-assembly that facilitate stem cell adhesion, mechanosensing, and differentiation both in vitro and in vivo, including the release of loaded molecules by destabilizing water bridges and hydrogen bonds between the Azo+ molecules and loaded molecules. Conversely, visible light induces trans-Azo+ formation that facilitates cation-π interactions, thereby deflating self-assembly with “closely nanospaced” ligands that inhibits stem cell adhesion, mechanosensing, and differentiation. In stark contrast, when ligand nanospacing increases from 8.7 nm to 12.2 nm via the inflation of self-assembly, the surface area of “distantly nanospaced” ligands increases, thereby suppressing stem cell adhesion, mechanosensing, and differentiation. Long-term in vivo stability of self-assembly via real-time tracking and upconversion are verified. This tuning of ligand nanospacing can unravel dynamic ligand-cell interactions for stem cell-regulated tissue regeneration. © 2023 The Authors
DOI
10.1016/j.bioactmat.2023.12.011
Appears in Collections:
자연과학대학 > 화학·나노과학전공 > Journal papers
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