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Dynamic hierarchical ligand anisotropy for competing macrophage regulation in vivo

Authors :
Kanghyeon Kim
Sunhong Min
Ramar Thangam
Kyong-Ryol Tag
Hyun-Jeong Lee
Jeongyun Heo
Hwapyung Jung
Thet Thet Swe
Iman Zare
Guosheng Song
Alireza Hassani Najafabadi
Junmin Lee
Hyun-Do Jung
Jong Seung Kim
Sunghoon Hur
Hyun-Cheol Song
Sung-Gyu Park
Kunyu Zhang
Pengchao Zhao
Liming Bian
Se Hoon Kim
Juyoung Yoon
Jae-Pyoung Ahn
Hong-Kyu Kim
Heemin Kang
Source :
Bioactive Materials, Vol 47, Iss , Pp 121-135 (2025)
Publication Year :
2025
Publisher :
KeAi Communications Co., Ltd., 2025.

Abstract

Diverse connective tissues exhibit hierarchical anisotropic structures that intricately regulate homeostasis and tissue functions for dynamic immune response modulation. In this study, remotely manipulable hierarchical nanostructures are tailored to exhibit multi-scale ligand anisotropy. Hierarchical nanostructure construction involves coupling liganded nanoscale isotropic/anisotropic Au (comparable to few integrin molecules-scale) to the surface of microscale isotropic/anisotropic magnetic Fe3O4 (comparable to integrin cluster-scale) and then elastically tethering them to a substrate. Systematic independent tailoring of nanoscale or microscale ligand isotropy versus anisotropy in four different hierarchical nanostructures with constant liganded surface area demonstrates similar levels of integrin molecule bridging and macrophage adhesion on the nanoscale ligand isotropy versus anisotropy. Conversely, the levels of integrin cluster bridging across hierarchical nanostructures and macrophage adhesion are significantly promoted by microscale ligand anisotropy compared with microscale ligand isotropy. Furthermore, microscale ligand anisotropy dominantly activates the host macrophage adhesion and pro-regenerative M2 polarization in vivo over the nanoscale ligand anisotropy, which can be cyclically reversed by substrate-proximate versus substrate-distant magnetic manipulation. This unprecedented scale-specific regulation of cells can be diversified by unlimited tuning of the scale, anisotropy, dimension, shape, and magnetism of hierarchical structures to decipher scale-specific dynamic cell-material interactions to advance immunoengineering strategies.

Details

Language :
English
ISSN :
2452199X
Volume :
47
Issue :
121-135
Database :
Directory of Open Access Journals
Journal :
Bioactive Materials
Publication Type :
Academic Journal
Accession number :
edsdoj.5be1edc8754485fa476fd9201f605b3
Document Type :
article
Full Text :
https://doi.org/10.1016/j.bioactmat.2025.01.009