Colloidal-fibrillar composite gels demonstrate structural reinforcement, secondary fibrillar alignment, and improved vascular healing outcomes.

Nina A Moiseiwitsch, Sanika Pandit, Nicole Zwennes, Kimberly Nellenbach, Ana Sheridan, Jessica LeGrand, Eunice Chee, Sarah Ozawa, Brigid Troan, Wen Yih Aw, William Polacheck, Mansoor A Haider, Ashley C Brown
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Abstract

Many biological tissues contain colloids within a fibrillar structure. Here, we develop and characterize colloidal-fibrillar scaffolds through examination of the effects of relative colloid and fiber ratios within a fibrin-based model system composed of fibrin-based nanoparticles (FBNs) within a natural fibrin scaffold. At lower concentrations, FBNs primarily integrate into the fibrillar fibrin matrix, strengthening it. At high concentrations, colloid-colloid interactions dominate and FBNs primarily form a highly aligned secondary structure that does not strengthen the fibrillar matrix. At intermediate concentrations, both reinforcement of the fibrin matrix and colloid-colloid interactions are observed. Our characterization of this colloidal-fibrillar system provides insight into new avenues for wound healing biomaterial development. Using structural and mechanical results, we developed a biomimetic surgical sealant. When applied to a vascular healing model, FBN gel resulted in improved vessel healing. This colloidal-fibrillar composite can greatly improve healing outcomes and should be applied to other tissues.

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胶体-纤维复合凝胶显示结构增强,次级纤维排列,改善血管愈合结果。
许多生物组织在纤维状结构中含有胶体。在这里,我们通过在天然纤维蛋白支架中由纤维蛋白纳米颗粒(fbn)组成的基于纤维蛋白的模型系统中检查相对胶体和纤维比例的影响来开发和表征胶体-纤维支架。在较低浓度下,fbn主要整合到纤维蛋白基质中,增强纤维蛋白基质。在高浓度下,胶体-胶体相互作用占主导地位,fbn主要形成高度排列的二级结构,不会强化纤维基质。在中等浓度下,纤维蛋白基质的增强和胶体-胶体的相互作用都被观察到。我们对这种胶体-纤维系统的描述为伤口愈合生物材料的开发提供了新的途径。利用结构和力学结果,我们开发了一种仿生手术密封剂。当应用于血管愈合模型时,FBN凝胶导致血管愈合改善。这种胶状纤维复合材料可以大大提高愈合效果,并应应用于其他组织。
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