微载波
细胞生物学
软骨细胞
机械转化
再生(生物学)
软骨
透明软骨
透明质酸
细胞外基质
软骨发生
材料科学
组织工程
生物物理学
化学
生物医学工程
解剖
间充质干细胞
生物
骨关节炎
细胞
生物化学
关节软骨
病理
医学
替代医学
作者
Shenglong Ding,Xi‐Yuan Zhao,Wei Xiong,Linfeng Ji,Min‐Xuan Jia,Yan‐Yan Liu,Haitao Guo,Feng Qu,Wenguo Cui,Qi Gu,Mingzhu Zhang
标识
DOI:10.1002/adma.202212114
摘要
Abstract Cartilage equivalents from hydrogels containing chondrocytes exhibit excellent potential in hyaline cartilage regeneration, yet current approaches have limited success at reconstituting the architecture to culture nondifferentiated chondrocytes in vitro. In this study, specially designed lacunar hyaluronic acid microcarriers (LHAMCs) with mechanotransductive conditions that rapidly form stable hyaluronic acid (HA) N ‐hydroxy succinimide ester (NHS‐ester) are reported. Specifically, carboxyl‐functionalized HA is linked to collagen type I via amide‐crosslinking, and gas foaming produced by ammonium bicarbonate forms concave surface of the microcarriers. The temporal 3D culture of chondrocytes on LHAMCs uniquely remodels the extracellular matrix to induce hyaline cartilaginous microtissue regeneration and prevents an anaerobic‐to‐aerobic metabolism transition in response to the geometric constraints. Furthermore, by inhibiting the canonical Wnt pathway, LHAMCs prevent β ‐catenin translocation to the nucleus, repressing chondrocyte dedifferentiation. Additionally, the subcutaneous implantation model indicates that LHAMCs display favorable cytocompatibility and drive robust hyaline chondrocyte‐derived neocartilage formation. These findings reveal a novel strategy for regulating chondrocyte dedifferentiation. The current study paves the way for a better understanding of geometrical insight clues into mechanotransduction interaction in regulating cell fate, opening new avenues for advancing tissue engineering.
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