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一种阳离子聚合物驱动糖胺聚糖组装和分泌用于临床前骨关节炎治疗。

A cationic polymer drives glycosaminoglycan assembly and secretion for preclinical osteoarthritis therapy.

作者信息

Chen Yishan, Sun Wei, Wen Ya, Wang Xiaozhao, Li Jiachen, Xie Shaofang, Li Rui, Ma Yuanzhu, Wu Hongwei, Zhu Qiuwen, Chen Ziheng, Zhang Xianzhu, Liao Youguo, Lin Junxin, Li Wenyue, Yan Yiyang, Ying Dingchao, He Qiulin, Meng Hongxu, Teng Chong, Zhou Wenyan, Wang Yong, Li Xu, Yin Zi, Wei Wei, Leong Kam W, Ouyang Hongwei

机构信息

Department of Sports Medicine of Second Affiliated Hospital, Liangzhu Laboratory, and Zhejiang University-University of Edinburgh Institute, Zhejiang University School of Medicine, Hangzhou, 310000, China.

Dr. Li Dak Sum & Yip Yio Chin Center for Stem Cells and Regenerative Medicine, Zhejiang University School of Medicine, Hangzhou 310058, China.

出版信息

Sci Transl Med. 2025 Jun 25;17(804):eadl5623. doi: 10.1126/scitranslmed.adl5623.

Abstract

Osteoarthritis (OA) affects nearly 500 million people worldwide and is characterized by an irreversible loss of glycosaminoglycans (GAGs) at articular cartilage surfaces, which are essential in maintaining cartilage mechanical properties and chondrocyte phenotypes. Despite advances, preserving cartilage GAGs and controlling their turnover in living cells remain challenging. On the basis of the hypothesis that GAGs can interact with cationic molecules, we demonstrated a cost-effective strategy to increase human cartilage GAGs using a cationic polymer hexadimethrine bromide (HDMBr). HDMBr promoted chondrogenesis of mesenchymal stem cells by attracting pericellular GAGs and up-regulating vesicle formation, leading to increased matrix secretion. HDMBr also acted like a molecular assembler to promote the assembly of chondroitin sulfate (CS) into highly concentrated condensates during intracellular trafficking, resulting in more efficient GAG secretion. HDMBr was then evaluated as a potential therapeutic in two animal models. In a rabbit model of large cartilage defects, HDMBr promoted the intrinsic regeneration of GAG-rich hyaline-like cartilage and improved tissue integration. In a rat model of OA, low-dose HDMBr treatment increased cartilage thickness, supported cartilage matrix homeostasis, and supported cell-based therapy, reducing OA damage as compared with other tested clinical treatments. Overall, this study introduces a cost-effective GAG manipulation approach to cartilage repair and joint preservation, offering insights into the mechanisms of cell-material interactions.

摘要

骨关节炎(OA)影响着全球近5亿人,其特征是关节软骨表面的糖胺聚糖(GAGs)发生不可逆损失,而这些糖胺聚糖对于维持软骨的机械性能和软骨细胞表型至关重要。尽管取得了进展,但在活细胞中保存软骨GAGs并控制其周转仍然具有挑战性。基于GAGs可与阳离子分子相互作用的假设,我们证明了一种使用阳离子聚合物溴化己二甲铵(HDMBr)来增加人软骨GAGs的经济有效策略。HDMBr通过吸引细胞周围的GAGs并上调囊泡形成来促进间充质干细胞的软骨形成,从而导致基质分泌增加。HDMBr还起到分子组装器的作用,在细胞内运输过程中促进硫酸软骨素(CS)组装成高度浓缩的凝聚物,从而实现更高效的GAG分泌。然后在两种动物模型中评估了HDMBr作为一种潜在治疗方法的效果。在大型软骨缺损的兔模型中,HDMBr促进了富含GAG的透明样软骨的内在再生并改善了组织整合。在OA大鼠模型中,低剂量HDMBr治疗增加了软骨厚度,维持了软骨基质的稳态,并支持基于细胞的治疗,与其他测试的临床治疗相比,减少了OA损伤。总体而言,本研究介绍了一种经济有效的GAG调控方法用于软骨修复和关节保护,为细胞-材料相互作用的机制提供了见解。

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