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具有层次多孔结构的羟基磷灰石杂化支架,结合还原氧化石墨烯,可促进快速的骨长入和修复。

Hierarchically Porous Hydroxyapatite Hybrid Scaffold Incorporated with Reduced Graphene Oxide for Rapid Bone Ingrowth and Repair.

机构信息

Department of Orthopaedics , West China Hospital of Sichuan University , Chengdu 610041 , Sichuan , China.

State Key Laboratory of Biotherapy and Cancer Center, West China Hospital , Sichuan University and Collaborative Innovation Center , Chengdu 610041 , China.

出版信息

ACS Nano. 2019 Aug 27;13(8):9595-9606. doi: 10.1021/acsnano.9b04723. Epub 2019 Aug 7.

Abstract

Hydroxyapatite (HA), the traditional bone tissue replacement material was widely used in the clinical treatment of bone defects because of its excellent biocompatibility. However, the processing difficulty and poor osteoinductive ability greatly limit the application of HA. Although many strategies have been reported to improve the machinability and osteointegration ability, the performance including mechanical strength, porosity, cell adhesion, of material still can not meet the requirements. In this work, a soft template method was developed and a porous scaffold with hierarchical pore structure, nano surface morphology, suitable porosity and pore size, and good biomechanical strength was successfully prepared. The hierarchical pore structure is beneficial for cell adhesion, fluid transfer, and cell ingrowth. Moreover, the loaded reduced graphene oxide (rGO) can improve the adhesion and promote the proliferation and spontaneous osteogenic differentiation bone marrow mesenchymal stem cells. The scaffold is then crushed, degraded and wrapped by the newly formed bone and the newly formed bone gradually replaces the scaffold. The degradation rate of the scaffold well matches the rate of the new bone formation. The hierarchical porous HA/rGO composite scaffolds can greatly accelerate the bone ingrowth in the scaffold and bone repair in critical bone defects, thus providing a clinical potential candidate for large segment bone tissue engineering.

摘要

羟基磷灰石(HA)作为传统的骨组织替代材料,因其具有优异的生物相容性而被广泛应用于骨缺损的临床治疗。然而,其加工难度大、成骨诱导能力差等缺点极大地限制了 HA 的应用。尽管已经报道了许多提高其可加工性和骨整合能力的策略,但材料的性能(包括力学强度、孔隙率、细胞黏附性等)仍无法满足要求。本工作采用软模板法成功制备了一种具有分级孔结构、纳米表面形貌、合适的孔隙率和孔径以及良好的生物力学强度的多孔支架。分级孔结构有利于细胞黏附、流体传递和细胞长入。此外,负载的还原氧化石墨烯(rGO)可以提高细胞黏附性,促进骨髓间充质干细胞的增殖和自发成骨分化。支架随后被新形成的骨逐渐取代并被粉碎、降解和包裹。支架的降解速度与新骨形成的速度相匹配。分级多孔 HA/rGO 复合支架可以极大地促进支架内的骨长入和临界骨缺损的骨修复,从而为大段骨组织工程提供了一种有临床应用潜力的候选材料。

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