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载镁 L-苏糖酸钙各向异性微球-水凝胶复合材料促进成骨、血管生成和神经生成修复骨缺损。

Anisotropic Microspheres-Cryogel Composites Loaded with Magnesium l-Threonate Promote Osteogenesis, Angiogenesis, and Neurogenesis for Repairing Bone Defects.

机构信息

Biomaterials Research Center, School of Biomedical Engineering, Southern Medical University, Guangzhou 510515, Guangdong, China.

Division of Orthopaedic Surgery, Department of Orthopaedics, Nanfang Hospital, Southern Medical University, Guangzhou 510515, Guangdong, China.

出版信息

Biomacromolecules. 2023 Jul 10;24(7):3171-3183. doi: 10.1021/acs.biomac.3c00243. Epub 2023 Jun 16.

Abstract

To achieve osteogenesis, angiogenesis, and neurogenesis for repairing bone defects, we constructed an anisotropic microspheres-cryogel composite loaded with magnesium l-threonate (MgT). These composites were prepared by the photo-click reaction of norbornene-modified gelatin (GB) in the presence of MgT-loaded microspheres through the bidirectional freezing method. The composites possessed an anisotropic macroporous (around 100 μm) structure and sustained release of bioactive Mg, which facilitate vascular ingrowth. These composites could significantly promote osteogenic differentiation of bone marrow mesenchymal stem cells, tubular formation of human umbilical vein vessel endothelial cells, and neuronal differentiation in vitro. Additionally, these composites significantly promoted early vascularization and neurogenesis as well as bone regeneration in the rat femoral condyle defects. In conclusion, owing to the anisotropic macroporous microstructure and bioactive MgT, these composites could simultaneously promote bone, blood vessel, and nerve regeneration, showing great potential for bone tissue engineering.

摘要

为了实现修复骨缺损的成骨、血管生成和神经生成,我们构建了一种各向异性的微球-水凝胶复合材料,其中负载了 L-苏糖酸镁(MgT)。这些复合材料是通过在负载 MgT 的微球存在下,通过双向冷冻法,利用 norbornene 修饰的明胶(GB)的光点击反应制备的。复合材料具有各向异性的大孔(约 100μm)结构和生物活性 Mg 的持续释放,有利于血管的长入。这些复合材料在体外能显著促进骨髓间充质干细胞的成骨分化、人脐静脉血管内皮细胞的管状形成和神经元的分化。此外,这些复合材料还能显著促进大鼠股骨髁缺损的早期血管生成和神经生成以及骨再生。总之,由于具有各向异性的大孔微观结构和生物活性 MgT,这些复合材料可以同时促进骨、血管和神经的再生,在骨组织工程中具有很大的应用潜力。

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