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Fibrin-loaded porous poly(Ethylene Glycol) hydrogels as scaffold materials for vascularized tissue formation

机译:纤维蛋白负载的多孔聚乙二醇水凝胶作为支架材料用于血管化组织的形成

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Vascular network formation within biomaterial scaffolds is essential for the generation of properly functioning engineered tissues. In this study, a method is described for generating composite hydrogels in which porous poly(ethylene glycol) (PEG) hydrogels serve as scaffolds for mechanical and structural support, and fibrin is loaded within the pores to induce vascularized tissue formation. Porous PEG hydrogels were generated by a salt leaching technique with 100-150-μm pore size and thrombin (Tb) preloaded within the scaffold. Fibrinogen (Fg) was loaded into pores with varying concentrations and polymerized into fibrin due to the presence of Tb, with loading efficiencies ranging from 79.9% to 82.4%. Fibrin was distributed throughout the entire porous hydrogels, lasted for greater than 20 days, and increased hydrogel mechanical stiffness. A rodent subcutaneous implant model was used to evaluate the influence of fibrin loading on in vivo response. At weeks 1, 2, and 3, all hydrogels had significant tissue invasion, but no difference in the depth of invasion was found with the Fg concentration. Hydrogels with fibrin loading induced more vascularization, with a significantly higher vascular density at 20 mg/mL (week 1) and 40 mg/mL (weeks 2 and 3) Fg concentration compared to hydrogels without fibrin. In conclusion, we have developed a composite hydrogel that supports rapid vascularized tissue ingrowth, and thus holds great potential for tissue engineering applications.
机译:生物材料支架内的血管网络形成对于正常运作的工程组织的产生至关重要。在这项研究中,描述了一种生成复合水凝胶的方法,其中多孔聚乙二醇(PEG)水凝胶充当机械和结构支持的支架,并且纤维蛋白负载在孔中以诱导血管化组织的形成。多孔PEG水凝胶是通过盐浸技术生成的,孔径为100-150μm,凝血酶(Tb)预装在支架中。纤维蛋白原(Fg)以不同的浓度加载到孔中,并由于存在Tb而聚合成纤维蛋白,加载效率为79.9%至82.4%。纤维蛋白分布在整个多孔水凝胶中,持续超过20天,并增加了水凝胶的机械刚度。啮齿动物皮下植入物模型用于评估纤维蛋白负荷对体内反应的影响。在第1、2和3周,所有水凝胶均具有明显的组织浸润,但浸入深度与Fg浓度无差异。与没有血纤蛋白的水凝胶相比,具有血纤蛋白负载的水凝胶诱导了更多的血管形成,在20 mg / mL(第1周)和40 mg / mL(第2周和第3周)Fg浓度下,血管密度显着更高。总之,我们开发了一种复合水凝胶,可支持快速血管化的组织向内生长,因此在组织工程应用中具有巨大的潜力。

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