体外和体内评价脱细胞富血小板纤维蛋白负载锶掺杂多孔磷酸镁支架骨再生。

C. M. Tarif, S. Mandal, Bijayashree Chakraborty, K. Sarkar, P. Mukherjee, M. Roy, S. Nandi
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引用次数: 1

摘要

本工作报道了脱细胞富血小板纤维蛋白(dPRF)负载锶(Sr)掺杂多孔磷酸镁(MgP)生物陶瓷对生物相容性、生物降解性和骨再生的影响。从dPRF持续释放生长因子是本文的主要目标,这符合即使在体外降解7天后dPRF在支架表面上的可用性。将掺入dPRF的MgP支架植入兔股骨缺损,并通过放射学检查、组织学检查、荧光染料标记研究和显微CT证实骨再生。μ-CT检查显示,成熟骨在MgP2Sr dPRF样品孔隙中的侵袭性高于MgP2Sr,这表明该组合物具有更好的骨成熟能力。使用土霉素标记的定量评估显示,植入3个月后,MgP2Sr-dPRF样品的新骨组织再生率为73.55±1.12%,而纯MgP2Sr样品为65.47±1.16%。组织学分析显示,与其他样品相比,在负载dPRF的Sr掺杂的MgP样品中存在大量的成骨细胞和破骨细胞。放射学研究也模拟了MgP2Sr-dPRF组的类似结果,该组具有完整的骨膜衬里和显著的桥接骨痂形成。研究结果表明,掺锶磷酸镁生物陶瓷具有良好的生物相容性、成骨能力和适宜的骨再生生物降解性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In vitro and in vivo assessment of decellularized platelet-rich fibrin-loaded strontium doped porous magnesium phosphate scaffolds in bone regeneration.
The present work reports the effect of decellularized platelet-rich fibrin (dPRF) loaded strontium (Sr) doped porous magnesium phosphate (MgP) bioceramics on biocompatibility, biodegradability, and bone regeneration. Sustained release of growth factors from dPRF is a major objective here, which conformed to the availability of dPRF on the scaffold surface even after 7 days of in vitro degradation. dPRF-incorporated MgP scaffolds were implanted in the rabbit femoral bone defect and bone rejuvenation was confirmed by radiological examination, histological examination, fluorochrome labeling study, and micro-CT. μ-CT examination of the regained bone samples exhibited that invasion of mature bone in the pores of the MgP2Sr-dPRF sample was higher than the MgP2Sr which indicated better bone maturation capability of this composition. Quantifiable assessment using oxytetracycline labeling showed 73.55 ± 1.12% new osseous tissue regeneration for MgP2Sr-dPRF samples in contrast to 65.47 ± 1.16% for pure MgP2Sr samples, after 3 months of implantation. Histological analysis depicted the presence of abundant osteoblastic and osteoclastic cells in dPRF-loaded Sr-doped MgP samples as compared to other samples. Radiological studies also mimicked similar results in the MgP2Sr-dPRF group with intact periosteal lining and significant bridging callus formation. The present results indicated that dPRF-loaded Sr-doped magnesium phosphate bioceramics have good biocompatibility, bone-forming ability, and suitable biodegradability in bone regeneration.
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