Incorporation of small extracellular vesicles in PEG/HA-Bio-Oss hydrogel composite scaffold for bone regeneration.

Wenlong Zheng, Zhanchi Zhu, Jing Hong, Hao Wang, Leisha Cui, Yuanxin Zhai, Jiawei Li, Chen Wang, Zhaojun Wang, Lunshan Xu, Ying Hao, Guosheng Cheng, Sancheng Ma
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Abstract

Stem cell derived small extracellular vesicles (sEVs) have emerged as promising nanomaterials for the repair of bone defects. However, low retention of sEVs affects their therapeutic effects. Clinically used natural substitute inorganic bovine bone mineral (Bio-Oss) bone powder lacks high compactibility and efficient osteo-inductivity that limit its clinical application in repairing large bone defects. In this study, a poly ethylene glycol/hyaluronic acid (PEG/HA) hydrogel was used to stabilize Bio-Oss and incorporate rat bone marrow stem cell-derived sEVs (rBMSCs-sEVs) to engineer a PEG/HA-Bio-Oss (PEG/HA-Bio) composite scaffold. Encapsulation and sustained release of sEVs in hydrogel scaffold can enhance the retention of sEVs in targeted area, achieving long-lasting repair effect. Meanwhile, synergistic administration of sEVs and Bio-Oss in cranial defect can improve therapeutic effects. The PEG/HA-Bio composite scaffold showed good mechanical properties and biocompatibility, supporting the growth of rBMSCs. Furthermore, sEVs enhancedin vitrocell proliferation and osteogenic differentiation of rBMSCs. Implantation of sEVs/PEG/HA-Bio in rat cranial defect model promotedin vivobone regeneration, suggesting the great potential of sEVs/PEG/HA-Bio composite scaffold for bone repair and regeneration. Overall, this work provides a strategy of combining hydrogel composite scaffold systems and stem cell-derived sEVs for the application of tissue engineering repair.

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将细胞外小泡纳入 PEG/HA-Bio-Oss 水凝胶复合支架用于骨再生。
干细胞衍生的小细胞外囊泡(sEVs)已成为修复骨缺损的有前途的纳米材料。然而,细胞外小泡的低保留率影响了其治疗效果。临床使用的天然替代品 Bio-Oss 骨粉缺乏高致密性和高效骨诱导性,限制了其在修复大面积骨缺损方面的临床应用。本研究采用聚乙二醇/透明质酸(PEG/HA)水凝胶来稳定 Bio-Oss,并将大鼠骨髓干细胞衍生的 sEVs(rBMSCs-sEVs)纳入其中,从而设计出 PEG/HA-Bio-Oss (PEG/HA-Bio)复合支架。将 sEVs 包裹在水凝胶支架中并持续释放,可增强 sEVs 在目标区域的存留,从而达到持久的修复效果。同时,在颅骨缺损部位协同使用 sEVs 和 Bio-Oss 还能提高治疗效果。PEG/HA-Bio 复合支架具有良好的机械性能和生物相容性,支持 rBMSCs 的生长。此外,sEVs 还能增强 rBMSCs 的体外细胞增殖和成骨分化。在大鼠颅骨缺损模型中植入 sEVs/PEG/HA-Bio 可促进体内骨再生,这表明 sEVs/PEG/HA-Bio 复合支架在骨修复和再生方面具有巨大潜力。这将为水凝胶复合支架系统与干细胞衍生 sEVs 在应用组织工程修复领域的结合提供一种策略。
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