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Modulating Bioglass Concentration in 3D Printed Poly(propylene fumarate) Scaffolds for Post-Printing Functionalization with Bioactive Functional Groups

机译:调节3D印刷聚(丙烯富马酸酯)支架中的生物胶浓度,用于与生物活性官能团的印刷后官能化

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摘要

Poly(propylene fumarate) (PPF) has shown potential for the treatment of bone defects as it can be 3D printed into scaffolds to suit patient-specific needs with strength comparable to that of bone. However, the lack of specific cell attachment and osteogenic signaling moieties have limited their utility as it is necessary to provide these signals to aid in bone tissue formation. To address this issue and provide a platform for functionalization, Bioglass (similar to 1-2 mu m) microparticles have been incorporated into PPF to create a 3D printable resin with concentrations ranging from 0 to 10 wt %. The zero-shear viscosity of PPF-Bioglass resins increased proportionally from 0 to 2.5 wt % Bioglass, with values of 0.22 and 0.34 Pa-s, respectively. At higher Bioglass concentrations, 5 and 10 wt %, the resin viscosity increased to 0.44 and 1.31 Pa.s, exhibiting a 2- and 6-fold increase from the 0 wt % Bioglass resin. Despite this increase in viscosity, all resins remained printable with no print failures. In addition, the surface available Bioglass can tether catechol containing molecules for postprinting functionalization. Analysis of PPF-Bioglass functionalization using a catechol dye analyte shows functionalization increases with Bioglass concentration, up to 157 nmol/cm(2), and demonstrates it is possible to modulate functionalization. This presents a versatile and highly translationally relevant strategy to functionalize 3D printed scaffolds post printing with a diverse array of functional species.
机译:聚(丙烯富马酸丙酯)(PPF)显示了治疗骨缺损的可能性,因为它可以是3D印刷成支架以适应患者特异性需求,其强度与骨骼相当。然而,缺乏特定的细胞附着和成骨信号传导部分限制了它们的效用,因为提供这些信号以帮助骨组织形成。为了解决该问题并提供功能化平台,将生物胶(类似于1-20μm)的微粒掺入PPF中,以产生3D可印刷树脂,其浓度范围为0至10wt%。 PPF-生物糖钾树脂的零剪切粘度从0-2.5wt%的生物胶增加,分别为0.22和0.34Pa-s的值。在较高的生物氟化物浓度下,5和10wt%,树脂粘度增加至0.44和1.31Pa.s,从0wt%的生物胶树脂增加2倍和6倍。尽管粘度增加,但所有树脂都保持可打印,没有打印故障。此外,表面可用的生物胶可以含有用于施用透扫官能化的儿茶酚的分子。使用儿茶酚染料分析物的PPF-生物胶官能化分析显示官能化随生物氟化物浓度的增加,高达157nmol / cm(2),并证明了可以调节官能化。这提出了一种多功能和高度平移的相关策略来用不同的功能性物种来打印3D印刷脚手架。

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