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High-Content Profiling of Cell Responsiveness to Graded Substrates Based on Combinatorially Variant Polymers

机译:基于组合变体聚合物的高响应度对梯度基材的细胞响应性分析

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We have developed a novel approach combining high information and high throughput analysis to characterize cell adhesive responses to biomaterial substrates possessing gradients in surface topography. These gradients were fabricated by subjecting thin film blends of tyrosine-derived polycarbonates, i.e. poly(DTE carbonate) and poly(DTO carbonate) to a gradient temperature annealing protocol. Saos-2 cells engineered with a green fluorescent protein (GFP) reporter for farnesylation (GFP-f) were cultured on the gradient substrates to assess the effects of nanoscale surface topology and roughness that arise during the phase separation process on cell attachment and adhesion strength. The high throughput imaging approach allowed us to rapidly identify the “global” and “high content” structure-property relationships between cell adhesion and biomaterial properties such as polymer chemistry and topography. This study found that cell attachment and spreading increased monotonically with DTE content and were significantly elevated at the position with intermediate regions corresponding to the highest “gradient” of surface roughness, while GFP-f farnesylation intensity descriptors were sensitively altered by surface roughness, even in cells with comparable levels of spreading.
机译:我们已经开发出一种结合高信息量和高通量分析的新颖方法,以表征细胞对具有表面形貌梯度的生物材料基质的细胞粘附反应。这些梯度是通过对酪氨酸衍生的聚碳酸酯(即聚(DTE碳酸酯)和聚(DTO碳酸酯))的薄膜混合物进行梯度温度退火处理而制成的。在梯度基质上培养用绿色荧光蛋白(GFP)报告基因进行法尼基化(GFP-f)改造的Saos-2细胞,以评估相分离过程中出现的纳米级表面拓扑和粗糙度对细胞附着和粘附强度的影响。高通量成像方法使我们能够快速确定细胞粘附力与生物材料特性(如聚合物化学和形貌)之间的“整体”和“高含量”结构-特性关系。这项研究发现,细胞附着和铺展随DTE含量的增加而单调增加,并且在中间区域的位置显着升高,该区域对应于表面粗糙度的最高“梯度”,而GFP-f法呢基化强度描述符却被表面粗糙度敏感地改变,即使在细胞具有可比的扩散水平。

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