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首页> 外文期刊>Acta biomaterialia >Anti-infective efficacy, cytocompatibility and biocompatibility of a 3D-printed osteoconductive composite scaffold functionalized with quaternized chitosan
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Anti-infective efficacy, cytocompatibility and biocompatibility of a 3D-printed osteoconductive composite scaffold functionalized with quaternized chitosan

机译:用季铵化壳聚糖官能化3D印刷骨导电复合支架的抗感染性疗效,细胞组织性和生物相容性

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Contaminated or infected bone defects remain serious challenges in clinical trauma and orthopaedics, and a bone substitute with both osteoconductivity and antibacterial properties represents an improvement for treatment strategy. In this study, quaternized chitosan (hydroxypropyltrimethyl ammonium chloride chitosan, HACC) was grafted to 3D-printed scaffolds composed of polylactide-co-glycolide (PLGA) and hydroxyapatite (HA), in order to design bone engineering scaffolds endowed with antibacterial and osteoconductive properties. We found that both the PLGA/HA/HACC and PLGA/HACC composite scaffolds decreased bacterial adhesion and biofilm formation under in vitro and in vivo conditions. Additionally, ATP leakage assay indicated that immobilizing HACC on the scaffolds could effectively disrupt microbial membranes. Using human bone marrow-derived mesenchymal stem cells (hBMSCs), we demonstrated that HA incorporated scaffolds, including PLGA/HA and PLGA/HA/HACC, favoured cell attachment, proliferation, spreading and osteogenic differentiation compared to HA-free PLGA or PLGA/HACC scaffolds. Finally, an in vivo biocompatibility assay conducted on rats, showed that HA incorporated scaffolds (including PLGA/HA and PLGA/HA/HACC scaffolds) exhibited good neovascularization and tissue integration. Taken together, our findings support the approach for developing porous PLGA/HA/HACC composite scaffold with potential clinical application in the treatment of infected bone.
机译:受污染或感染的骨缺损在临床创伤和骨科中仍然是严重的挑战,并且具有骨导电性和抗菌性能的骨代替代表治疗策略的改善。在该研究中,将季铵化壳聚糖(羟丙基三甲基氯化铵壳聚糖,HACC)接枝到由聚酰胺 - 共乙酰胺(PLGA)和羟基磷灰石(HA)组成的3D印刷支架,以设计赋予耐抗菌和骨导电性能的骨工程支架。我们发现PLGA / HA / HACC和PLGA / HACC复合支架两者均在体外和体内条件下降低了细菌粘附和生物膜形成。另外,ATP泄漏测定表明,固定HACC在支架上可以有效地破坏微生物膜。使用人骨髓衍生的间充质干细胞(HBMSCs),我们证明了HA掺入的支架,包括PLGA / HA和PLGA / HA / HACC,有利于细胞附着,增殖,扩散和成骨分化与HA-Fail PLGA或PLGA / / HACC脚手架。最后,在大鼠进行的体内生物相容性测定中,表明HA掺入支架(包括PLGA / HA和PLGA / HA / HACC支架)表现出良好的新生血管和组织整合。我们的研究结果一起支持具有潜在临床应用的多孔PLGA / HA / HACC复合支架的方法,治疗感染骨。

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