Qi Jin, Wang Yili, Chen Liping, Chen Linjie, Wen Feng, Huang Lijiang, Rueben Pfukwa, Zhang Chunwu, Li Huaqiong
Department of Orthopaedics, Joint Centre of Translational Medicine, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, Zhejiang 325035, P. R. China.
Joint Centre of Translational Medicine, Zhejiang Engineering Research Center for Tissue Repair Materials, Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou, Zhejiang 325011, P. R. China.
Regen Biomater. 2023 Jun 21;10:rbad062. doi: 10.1093/rb/rbad062. eCollection 2023.
Large size bone defects affect human health and remain a worldwide health problem that needs to be solved immediately. 3D printing technology has attracted substantial attention for preparing penetrable multifunctional scaffolds to promote bone reconditioning and regeneration. Inspired by the spongy structure of natural bone, novel porous degradable scaffolds have been printed using polymerization of lactide and caprolactone (PLCL) and bioactive glass 45S5 (BG), and polydopamine (PDA) was used to decorate the PLCL/BG scaffolds. The physicochemical properties of the PLCL/BG and PLCL/BG/PDA scaffolds were measured, and their osteogenic and angiogenic effects were characterized through a series of experiments both and . The results show that the PLCL/BG2/PDA scaffold possessed a good compression modulus and brilliant hydrophilicity. The proliferation, adhesion and osteogenesis of hBMSCs were improved in the PDA coating groups, which exhibited the best performance. The results of the SD rat cranium defect model indicate that PLCL/BG2/PDA obviously promoted osteointegration, which was further confirmed through immunohistochemical staining. Therefore, PDA decoration and the sustained release of bioactive ions (Ca, Si, P) from BG in the 3D-printed PLCL/BG2/PDA scaffold could improve surface bioactivity and promote better osteogenesis and angiogenesis, which may provide a valuable basis for customized implants in extensive bone defect repair applications.
大尺寸骨缺损影响人类健康,仍然是一个亟待解决的全球性健康问题。3D打印技术在制备可渗透的多功能支架以促进骨修复和再生方面引起了广泛关注。受天然骨海绵状结构的启发,通过丙交酯和己内酯(PLCL)与生物活性玻璃45S5(BG)的聚合打印出了新型多孔可降解支架,并使用聚多巴胺(PDA)对PLCL/BG支架进行修饰。测定了PLCL/BG和PLCL/BG/PDA支架的物理化学性质,并通过一系列体内和体外实验对其成骨和血管生成作用进行了表征。结果表明,PLCL/BG2/PDA支架具有良好的压缩模量和出色的亲水性。PDA涂层组中hBMSC的增殖、黏附和成骨能力得到改善,表现出最佳性能。SD大鼠颅骨缺损模型的结果表明,PLCL/BG2/PDA明显促进了骨整合,免疫组织化学染色进一步证实了这一点。因此,PDA修饰以及3D打印的PLCL/BG2/PDA支架中BG生物活性离子(Ca、Si、P)的持续释放可以提高表面生物活性,促进更好的成骨和血管生成,这可能为广泛的骨缺损修复应用中的定制植入物提供有价值的基础。