Department of Foot and Ankle Surgery, Beijing Tongren Hospital, Capital Medical University, Beijing, 100730, P. R. China.
State Key Laboratory of Membrane Biology, Institute of Zoology, Chinese Academy of Sciences, Chaoyang District, Beijing, 100101, P. R.China.
Adv Mater. 2023 Jul;35(30):e2212114. doi: 10.1002/adma.202212114. Epub 2023 May 30.
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.
水凝胶中含有的软骨细胞的软骨等效物在透明软骨再生方面表现出了优异的潜力,但目前的方法在重建结构以在体外培养未分化的软骨细胞方面效果有限。在这项研究中,报告了具有机械转导条件的特殊设计的腔隙透明质酸微载体(LHAMC),其可快速形成稳定的透明质酸(HA)N-羟基琥珀酰亚胺酯(NHS-ester)。具体而言,通过酰胺交联将羧基功能化的 HA 与 I 型胶原连接,并且通过碳酸氢铵产生的气体发泡形成微载体的凹面。软骨细胞在 LHAMC 上的时间分辨 3D 培养独特地重塑细胞外基质,以诱导透明软骨微组织再生,并防止由于几何约束而导致的厌氧到需氧代谢转变。此外,通过抑制经典的 Wnt 途径,LHAMC 阻止β-连环蛋白向核内易位,抑制软骨细胞去分化。此外,皮下植入模型表明,LHAMC 表现出良好的细胞相容性,并可驱动强大的透明软骨细胞衍生的新软骨形成。这些发现揭示了一种调节软骨细胞去分化的新策略。本研究为深入了解机械转导在调节细胞命运中的几何洞察力提供了新的思路,为推进组织工程学开辟了新的途径。