生物正交化学
间充质干细胞
自愈水凝胶
归巢(生物学)
干细胞
材料科学
再生医学
纳米技术
细胞生物学
生物医学工程
组织工程
细胞
骨髓
人工细胞
化学
从长凳到床边
再生(生物学)
微流控
骨愈合
生物物理学
作者
Renhao Xu,Ning Zhang,Yanni He,H Zhang,Zhengbo Zhu,Wenyi Zheng,Yizhen Huang,X Wang,Li Z,H J LIU,Tianfeng Chen
摘要
Repairing critical-sized bone defects remains a formidable challenge in orthopedics, primarily due to the limitations of current stem cell-based therapies, including poor engraftment, limited real-time monitoring of cell fate, and a lack of spatiotemporal control over therapeutic activity. To address these challenges, in this study, we present a bioorthogonal hydrogel platform engineered for precise stem cell capture and ultrasound-triggered bone regeneration. Bone marrow mesenchymal stem cells (BMSCs) were dual-functionalized with trans-cyclooctene (TCO) and biogenic gas vesicles (GVs) via a metabolic glycoengineering approach. The resulting BMSCs-GV-TCO were efficiently and covalently captured within tetrazine-functionalized hydrogels at the defect site through a rapid inverse electron-demand Diels-Alder reaction. This strategy ensured targeted cell homing and retention. The GVs served as a potent acoustic contrast agent, enabling noninvasive and real-time ultrasound monitoring of cell delivery and localization. Furthermore, the unique ultrasound-responsive property of GVs enabled their on-demand collapse, acting as a remote-controlled switch to precisely upregulate osteogenic transcription factors and enhance bone regeneration, as validated in a rat critical-sized calvarial defect model. This study presents a novel, efficient, and traceable strategy for stem cell-based therapy, with broad potential to advance the treatment of bone defects and the clinical translation of regenerative medicine.
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