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Intensified Stiffness and Photodynamic Provocation in a Collagen‐Based Composite Hydrogel Drive Chondrogenesis

机译:基于胶原的复合水凝胶驱动软骨形成的增强刚度和光动力激发

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摘要

Directed differentiation of bone‐marrow‐derived stem cells (BMSCs) toward chondrogenesis has served as a predominant method for cartilage repair but suffers from poor oriented differentiation tendency and low differentiation efficiency. To overcome these two obstacles, an injectable composite hydrogel that consists of collagen hydrogels serving as the scaffold support to accommodate BMSCs and cadmium selenide (CdSe) quantum dots (QDs) is constructed. The introduction of CdSe QDs considerably strengthens the stiffness of the collagen hydrogels via mutual crosslinking using a natural crosslinker (i.e., genipin), which simultaneously triggers photodynamic provocation (PDP) to produce reactive oxygen species (ROS). Experimental results demonstrate that the intensified stiffness and augmented ROS production can synergistically promote the proliferation of BMSCs, induce cartilage‐specific gene expression and increase secretion of glycosaminoglycan. As a result, this approach can facilitate the directed differentiation of BMSCs toward chondrogenesis and accelerate cartilage regeneration in cartilage defect repair, which routes through activation of the TGF‐β/SMAD and mTOR signaling pathways, respectively. Thus, this synergistic strategy based on increased stiffness and PDP‐mediated ROS production provides a general and instructive approach for developing alternative materials applicable for cartilage repair.
机译:定向定向分化的骨髓干细胞(BMSCs)向软骨形成已成为软骨修复的主要方法,但定向分化趋势差且分化效率低。为了克服这两个障碍,构建了一种由胶原蛋白水凝胶组成的可注射复合水凝胶,该胶原水凝胶用作支撑BMSC和硒化镉(CdSe)量子点(QD)的支架。 CdSe QD的引入通过使用天然交联剂(即genipin)的相互交联大大增强了胶原蛋白水凝胶的刚度,而交联剂同时触发了光动力激发(PDP)以产生活性氧(ROS)。实验结果表明,增强的刚度和增加的ROS产生可以协同促进BMSC的增殖,诱导软骨特异性基因表达并增加糖胺聚糖的分泌。因此,这种方法可以促进BMSCs向软骨形成的定向分化,并加速软骨缺损修复过程中的软骨再生,这分别通过激活TGF-β/ SMAD和mTOR信号传导途径进行。因此,这种基于增加刚度和PDP介导的ROS产生的协同策略为开发适用于软骨修复的替代材料提供了一种通用的指导方法。

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