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Dual-functional 3D-printed composite scaffold for inhibiting bacterial infection and promoting bone regeneration in infected bone defect models

机译:用于抑制细菌感染和促进感染骨缺损模型的细菌感染和促进骨再生的双功能3D印刷复合型支架

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Infection is one of the pivotal causes of nonunion in large bone defect after trauma or tumor resection. Three-dimensional (3D) composite scaffold with multifunctional-therapeutic properties offer many advantages over allogenic or xenogenic bone grafting for the restoration of challenging infected bone defects. In the previous study, we demonstrated that quaternized chitosan (HACC)-grafted polylactide-co-glycolide (PLGA)/hydroxyapatite (HA) scaffold (PLGA/HA/HACC) via 3D-printing technique exhibited significantly improved antimicrobial and osteoconductive propertyin vitro, together with good biocompatibilityin vivo. Hence, the present study further investigated whether such an innovative bone substitute could effectively inhibit the bacterial biofilm formation and promote bone regenerationin vivo. To evaluate the bone repairing effects of the 3D-printed scaffolds on infected cortical and cancellous bone defects scenarios, eighty female Sprague Dawley rats and thirty-six female New Zealand white rabbits were used to establish infected femoral shaft defect and condyle defect model, respectively. X-ray, micro-CT, microbiological and histopathological analyses were used to assess the anti-infection and bone repairing potential of the dual-functional porous scaffolds. We observed that HACC-grafted PLGA/HA scaffolds exhibited significantly enhanced anti-infection and bone regeneration capability in different infected bone defect models. In addition, the degradation rate of the scaffolds appeared to be closely related to the progress of infection, influencing the bone repairing potential of the scaffolds in infected bone defects models. In general, this investigation is of great significance as it demonstrates promising applications of the 3D-printed dual-functional PLGA/HA/HACC scaffold for repairing different types of bone defect under infection. Statement of SignificanceCurrently, it is clinically urgent to exploit bone substitutes with potential of bacterial inhibition and bone regeneration. However, bone scaffolds with relatively low risks of bacterial resistance and tissue toxicity used for combating infected bone defects remain to be developed. We have reported that quaternized chitosan (HACC)-grafted 3D-printed PLGA/HA composite scaffold had enhancedin vitroantimicrobial and osteoconductive property, and well cytocompatibility in our published study. This continuing study further confirmed that HACC-grafted PLGA/HA scaffolds exhibited significantly enhanced anti-infection and bone regeneration efficacy in both cortical bone defect in rat and cancellous bone defect in rabbit under infection. Meanwhile, we also found that the degradation rate of the scaffolds seemed to be closely related to the progress of infection, influencing the bone repairing potential of the scaffolds in infected bone defects models. In conclusion, this study provides significant opportunities to develop a 3D-printed bone scaffold with dual functions used for infected bone defects in future plastic and orthopaedic surgery.
机译:感染是创伤或肿瘤切除后大骨缺损在大骨缺损中的关键原因之一。具有多功能治疗性质的三维(3D)复合支架具有与同种异体或异叶骨移植的许多优势,以恢复挑战感染的骨缺损。在先前的研究中,我们证明了通过3D印刷技术的季铵化壳聚糖(HACC) - 移植的聚酰胺 - 共乙酰基(PLGA)/羟基磷灰石(HA)支架(PLGA / HA / HACC)显着改善了抗微生物和骨导电性体外的显着改善,与良好的生物相容性一起体内。因此,本研究进一步研究了这种创新的骨代替,是否可以有效地抑制细菌生物膜形成和促进骨再生体体内。为了评估3D印刷支架对感染的皮质和松质骨缺陷的骨骼修复效果,八十雌性Sprague Dawley大鼠和三十六只女性新西兰白兔分别用于建立受感染的股骨轴缺陷和髁状缺陷模型。用于评估双功能多孔支架的抗感染和骨修复潜力的X射线,微型CT,微生物和组织病理学分析。我们观察到HACC接枝的PLGA / HA支架在不同感染的骨缺陷模型中表现出显着提高的抗感染和骨再生能力。此外,支架的降解率似乎与感染的进展密切相关,影响受感染骨缺陷模型中支架的骨修复潜力。通常,这项调查具有重要意义,因为它表明3D印刷的双功能PLGA / HA / HACC支架用于修复感染下的不同类型的骨缺损的应用。临床上迫切地迫切地利用细菌抑制和骨再生的骨替代。然而,仍然仍会开发具有相对低的细菌抗性和用于打击感染骨缺陷的组织毒性风险的骨支架。我们据报道,季铵化壳聚糖(HACC) - 移植的3D印刷PLGA / HA复合支架具有增强型玻璃体植物和骨质变性的性能,以及在我们发表的研究中的细胞致力化。这种持续的研究进一步证实,HACC接枝的PLGA / HA支架在感染下兔子和松质骨缺损的皮质骨缺损中表现出显着增强的抗感染和骨再生效果。同时,我们还发现支架的降解率似乎与感染的进展密切相关,影响感染骨缺陷模型中支架的骨修复潜力。总之,本研究提供了开发3D印刷骨支架的重要机会,其具有用于未来塑料和整形外科手术的受感染骨缺陷的双重功能。

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