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Rapid Patterning of 1-D Collagenous Topography as an ECM Protein Fibril Platform for Image Cytometry

机译:一维胶原蛋白地形的快速图案化作为图像细胞仪的ECM蛋白原纤维平台

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摘要

Cellular behavior is strongly influenced by the architecture and pattern of its interfacing extracellular matrix (ECM). For an artificial culture system which could eventually benefit the translation of scientific findings into therapeutic development, the system should capture the key characteristics of a physiological microenvironment. At the same time, it should also enable standardized, high throughput data acquisition. Since an ECM is composed of different fibrous proteins, studying cellular interaction with individual fibrils will be of physiological relevance. In this study, we employ near-field electrospinning to create ordered patterns of collagenous fibrils of gelatin, based on an acetic acid and ethyl acetate aqueous co-solvent system. Tunable conformations of micro-fibrils were directly deposited onto soft polymeric substrates in a single step. We observe that global topographical features of straight lines, beads-on-strings, and curls are dictated by solution conductivity; whereas the finer details such as the fiber cross-sectional profile are tuned by solution viscosity. Using these fibril constructs as cellular assays, we study EA.hy926 endothelial cells' response to ROCK inhibition, because of ROCK's key role in the regulation of cell shape. The fibril array was shown to modulate the cellular morphology towards a pre-capillary cord-like phenotype, which was otherwise not observed on a flat 2-D substrate. Further facilitated by quantitative analysis of morphological parameters, the fibril platform also provides better dissection in the cells' response to a H1152 ROCK inhibitor. In conclusion, the near-field electrospun fibril constructs provide a more physiologically-relevant platform compared to a featureless 2-D surface, and simultaneously permit statistical single-cell image cytometry using conventional microscopy systems. The patterning approach described here is also expected to form the basics for depositing other protein fibrils, seen among potential applications as culture platforms for drug screening.
机译:细胞行为受其界面细胞外基质(ECM)的结构和模式的强烈影响。对于最终可能有益于将科学发现转化为治疗发展的人工培养系统,该系统应捕获生理微环境的关键特征。同时,它还应该实现标准化的高吞吐量数据采集。由于ECM由不同的纤维蛋白组成,因此研究与单个纤维的细胞相互作用将具有生理意义。在这项研究中,我们基于乙酸和乙酸乙酯的水性共溶剂系统,采用近场静电纺丝来创建明胶的胶原原纤维的有序图案。可在一个步骤中将微纤维的可调谐构型直接沉积到柔软的聚合物基材上。我们观察到,溶液的电导率决定了直线,串珠和卷曲的整体地形特征。而更细小的细节(如纤维横截面轮廓)则通过溶液粘度进行调整。使用这些原纤维构建体作为细胞试验,我们研究EA.hy926内皮细胞对ROCK抑制的反应,因为ROCK在调节细胞形状中起关键作用。已表明,原纤维阵列可调节细胞形态,使其趋向于毛细血管前样表型,否则无法在平坦的二维基底上观察到。通过形态学参数的定量分析进一步促进,原纤维平台还提供了对H1152 ROCK抑制剂的细胞反应更好的解剖。总之,与无特征的2D表面相比,近场电纺原纤维构建体提供了更加生理相关的平台,并且同时允许使用常规显微镜系统进行统计单细胞图像细胞分析。有望将此处描述的图案化方法形成沉积其他蛋白质原纤维的基础,这在潜在应用中被视为药物筛选的培养平台。

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