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通过表面分子工程在金 - 二氧化硅基底上进行细胞图案化引导

Guided cell patterning on gold-silicon dioxide substrates by surface molecular engineering.

作者信息

Veiseh Mandana, Wickes Bronwyn T, Castner David G, Zhang Miqin

机构信息

Department of Material Science and Engineering, University of Washington, Seattle, WA 98195 2120, USA.

出版信息

Biomaterials. 2004 Jul;25(16):3315-24. doi: 10.1016/j.biomaterials.2003.10.014.

Abstract

We report an effective approach to patterning cells on gold-silicon dioxide substrates with high precision, selectivity, stability, and reproducibility. This technique is based on photolithography and surface molecular engineering and requires no cell positioning or delivery devices, thus significantly reducing the potential damage to cells. The cell patterning was achieved by activating the gold regions of the substrate with functionalized thiols that covalently bind proteins onto the gold regions to guide subsequent cell adhesion while passivating the silicon dioxide background with polyethylene glycol to resist cell adhesion. Fourier transform infrared reflectance spectroscopy verified the successful immobilization of proteins on gold surfaces. Protein patterns were visualized by tagging proteins with Rhodamine fluorescent probes. Time-of-flight secondary ion mass spectrometry was used to characterize the chemistry of both the cell-adhesive and cell-resistant regions of surfaces after each key chemical reaction occurring during the molecular surface engineering. The ability of the engineered surfaces to guide cell adhesion was illustrated by differential interference contrast (DIC) reflectance microscopy. The cell patterning technique introduced in this study is compatible with micro- and photo-electronics, and may have many medical, environmental, and defense applications.

摘要

我们报道了一种在金 - 二氧化硅基底上高精度、高选择性、高稳定性和高重现性地对细胞进行图案化的有效方法。该技术基于光刻和表面分子工程,无需细胞定位或输送装置,从而显著降低了对细胞的潜在损伤。通过用功能化硫醇激活基底的金区域来实现细胞图案化,功能化硫醇将蛋白质共价结合到金区域以引导后续细胞黏附,同时用聚乙二醇使二氧化硅背景钝化以抵抗细胞黏附。傅里叶变换红外反射光谱法验证了蛋白质在金表面的成功固定。通过用罗丹明荧光探针标记蛋白质来观察蛋白质图案。飞行时间二次离子质谱法用于表征分子表面工程过程中每次关键化学反应后表面细胞黏附区域和抗细胞区域的化学性质。通过微分干涉对比(DIC)反射显微镜说明了工程化表面引导细胞黏附的能力。本研究中引入的细胞图案化技术与微电子和光电子兼容,可能具有许多医学、环境和国防应用。

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