Gao Chenyuan, Dai Wenli, Liu Dingge, Wang Xinyu, Zhang Tianyun, Yu Bingzheng, Yu Yingjie, Tian Hua, Yang Xiaoping, Cai Qing
State Key Laboratory of Organic-Inorganic Composites, Beijing Laboratory of Biomedical Materials, Beijing University of Chemical Technology, Beijing, 100029, China.
Engineering Research Center of Bone and Joint Precision Medicine, Ministry of Education Department of Orthopaedics, Beijing Key Laboratory of Spinal Disease Research, Peking University Third Hospital, Beijing, 100191, China.
Bioact Mater. 2025 May 28;51:613-633. doi: 10.1016/j.bioactmat.2025.05.018. eCollection 2025 Sep.
Osteoarthritis (OA) is a prevalent chronic joint disease with no currently available cure. Despite the promise of mesenchymal stromal cells (MSCs) in promoting OA management, direct intra-articular administration of MSCs faces several critical challenges, including rapid cell clearance from the joint cavity, limited survival in the hostile inflammatory environment, and insufficient control over their differentiation. In this study, we present a strategy that enhances the functionality of MSCs pre-coordinated with Mg and hypoxia-mimicking agent dimethyloxalylglycine (DMOG) integrated within an adaptive hydrogel for OA treatment. Mg regulates macrophage polarization toward an anti-inflammatory phenotype, inhibits osteoclast activation, and preserves subchondral bone integrity by activating the PI3K-Akt signaling pathway. Concurrently, DMOG, activates the HIF-1α pathway, mimicking hypoxic microenvironment that support chondrocyte repair and stimulate cartilage matrix synthesis. MSCs pre-coordinated with Mg and DMOG exhibit enhanced chondrogenic differentiation and immunomodulatory capacity, thus improving their regenerative potential in OA. To facilitate localized and sustained delivery, a self-healing tissue-adhesive hydrogel composed of phenylboronic acid and methacrylate-modified hyaluronic acid (HAMA-PBA) is synthesized to encapsulate the pre-coordinated MSCs. This hydrogel ensures cellular retention and functionality at the injury site. , the system significantly reduces joint inflammation, enhances cartilage regeneration, and improves joint function. Overall, these findings demonstrate a synergistic and effective stem cell-based therapeutic strategy for OA treatment through biochemical preconditioning and biomaterial-enabled delivery.
骨关节炎(OA)是一种常见的慢性关节疾病,目前尚无治愈方法。尽管间充质基质细胞(MSCs)有望促进OA的治疗,但直接关节内注射MSCs面临着几个关键挑战,包括从关节腔快速清除细胞、在恶劣的炎症环境中存活率有限以及对其分化的控制不足。在本研究中,我们提出了一种策略,通过将与镁和缺氧模拟剂二甲基草酰甘氨酸(DMOG)预协调的MSCs整合到一种适应性水凝胶中,以增强其功能用于OA治疗。镁调节巨噬细胞向抗炎表型极化,抑制破骨细胞活化,并通过激活PI3K-Akt信号通路维持软骨下骨的完整性。同时,DMOG激活HIF-1α通路,模拟支持软骨细胞修复和刺激软骨基质合成的缺氧微环境。与镁和DMOG预协调的MSCs表现出增强的软骨生成分化和免疫调节能力,从而提高其在OA中的再生潜力。为了促进局部和持续递送,合成了一种由苯硼酸和甲基丙烯酸酯修饰的透明质酸(HAMA-PBA)组成的自愈合组织粘附水凝胶,以包裹预协调的MSCs。这种水凝胶确保细胞在损伤部位的保留和功能。该系统显著减轻关节炎症,增强软骨再生,并改善关节功能。总体而言,这些发现证明了一种通过生化预处理和生物材料介导的递送用于OA治疗的基于干细胞的协同有效治疗策略。