Zheng Chuanchuan, Attarilar Shokouh, Li Kai, Wang Chong, Liu Jia, Wang Liqiang, Yang Junlin, Tang Yujin
Department of Orthopedics, Affiliated Hospital of Youjiang Medical University for Nationalities, Baise, Guangxi, 533000, China.
Department of Pediatric Orthopaedics, Xinhua Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, 200092, China.
Int J Bioprint. 2021 Jan 20;7(1):317. doi: 10.18063/ijb.v7i1.317. eCollection 2021.
In this study, a β-tricalcium phosphate (β-TCP)/poly (lactic-co-glycolic acid) (PLGA) bone tissue scaffold was loaded with osteogenesis-promoting drug HA15 and constructed by three-dimensional (3D) printing technology. This drug delivery system with favorable biomechanical properties, bone conduction function, and local release of osteogenic drugs could provide the basis for the treatment of bone defects. The biomechanical properties of the scaffold were investigated by compressive testing, showing comparable biomechanical properties with cancellous bone tissue. Furthermore, the microstructure, pore morphology, and condition were studied. Moreover, the drug release concentration, the effect of anti-tuberculosis drugs and in rabbit radial defects, and the ability of the scaffold to repair the defects were studied. The results show that the scaffold loaded with HA15 can promote cell differentiation into osteoblasts , targeting HSPA5. The micro-computed tomography scans showed that after 12 weeks of scaffold implantation, the defect of the rabbit radius was repaired and the peripheral blood vessels were regenerated. Thus, HA15 can target HSPA5 to inhibit endoplasmic reticulum stress which finally leads to promotion of osteogenesis, bone regeneration, and angiogenesis in the rabbit bone defect model. Overall, the 3D-printed β-TCP/PLGA-loaded HA15 bone tissue scaffold can be used as a substitute material for the treatment of bone defects because of its unique biomechanical properties and bone conductivity.
在本研究中,一种β-磷酸三钙(β-TCP)/聚乳酸-羟基乙酸共聚物(PLGA)骨组织支架负载了促骨生成药物HA15,并通过三维(3D)打印技术构建而成。这种具有良好生物力学性能、骨传导功能和成骨药物局部释放功能的药物递送系统可为骨缺损的治疗提供依据。通过压缩试验研究了支架的生物力学性能,结果表明其生物力学性能与松质骨组织相当。此外,还研究了支架的微观结构、孔隙形态和状况。而且,研究了药物释放浓度、抗结核药物在兔桡骨缺损中的作用以及支架修复缺损的能力。结果表明,负载HA15的支架可促进细胞分化为成骨细胞,靶向HSPA5。显微计算机断层扫描显示,支架植入12周后,兔桡骨缺损得到修复,外周血管再生。因此,HA15可靶向HSPA5抑制内质网应激,最终促进兔骨缺损模型中的成骨、骨再生和血管生成。总体而言,3D打印的负载HA15的β-TCP/PLGA骨组织支架因其独特的生物力学性能和骨传导性,可作为治疗骨缺损的替代材料。