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Fibrinogen nanofibers for guiding endothelial cell behavior

机译:纤维蛋白原纳米纤维指导内皮细胞行为

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This paper describes the biological consequences of presenting electrospun fibrinogen (FBG) to endothelial cells as a spatially organized nanofibrous matrix. Aligned and randomly oriented FBG nanofibers with an average diameter of less than 200 nm were obtained by electrospinning of native FBG solution. Electrophoretic profiling confirmed that the electrospun FBG resembled the native protein structure, and fluorescent tracing of FITC-labeled FBG showed that electrospun fibers withstood immersion in physiological solutions reasonably well for several days. With respect to cellular interactions, the nanofibrous FBG matrix provided better conditions for initial recognition by human umbilical vein endothelial cells compared to pre-adsorbed FBG on a flat surface. Furthermore, the spatial organization of electrospun FBG fibers presented opportunities for guiding the cellular behavior in a way that is not possible when the protein is presented in another form (e.g. adsorbed or soluble). For example, on aligned FBG fibers, cells rapidly oriented themselves along the fibers, and time-lapse recordings revealed pronounced cellular movements restricted to the fiber direction. In great contrast, on randomly deposited fibers, cells acquired a stellate-like morphology and became locally immobilized by the fibers. We also show that the FBG fiber orientation significantly influenced both the cytoskeleton organization in confluent cell layers and the orientation of the extracellular fibronectin matrix secreted by the cells. In conclusion, this study demonstrates that electrospun FBG nanofibers can be a promising tool for guiding endothelial cell behavior for tissue engineering applications.
机译:本文描述了将电纺纤维蛋白原(FBG)作为空间组织的纳米纤维基质呈递给内皮细胞的生物学后果。通过电纺天然FBG溶液获得平均直径小于200 nm的对齐且随机取向的FBG纳米纤维。电泳分析证实,静电纺丝的FBG与天然蛋白质结构相似,FITC标记的FBG的荧光示踪表明,静电纺丝的纤维在生理溶液中浸泡了好几天。关于细胞相互作用,与在平面上预先吸附的FBG相比,纳米纤维FBG基质为人脐静脉内皮细胞的初始识别提供了更好的条件。此外,电纺FBG纤维的空间组织提供了指导细胞行为的机会,这是当蛋白质以另一种形式(例如吸附或可溶)存在时不可能的方式。例如,在对齐的FBG纤维上,细胞会沿着纤维迅速自我定向,而延时记录显示出明显的细胞运动仅限于纤维方向。与之形成鲜明对比的是,在随机沉积的纤维上,细胞获得了星状的形态,并被纤维局部固定。我们还表明,FBG纤维的方向显着影响融合细胞层中的细胞骨架组织以及细胞分泌的细胞外纤连蛋白基质的方向。总之,这项研究表明,电纺FBG纳米纤维可以成为指导组织工程应用中内皮细胞行为的有前途的工具。

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