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用于传感应用的功能化规整聚(3-己基噻吩)层的生物相容性研究。

Biocompatibility studies of functionalized regioregular poly(3-hexylthiophene) layers for sensing applications.

机构信息

Technische Universität München, Institute for Nanoelectronics, Arcisstrasse 21, D-80333 Munich, Germany.

出版信息

Macromol Biosci. 2010 Apr 8;10(4):378-83. doi: 10.1002/mabi.200900412.

DOI:10.1002/mabi.200900412
PMID:20127671
Abstract

There is a significant medical and biological need for cheap disposable analytical sensing devices, which can be used in clinical settings or medical research. Organic electronics based on polymeric materials, being suitable for large-area, low-cost, flexible, and maybe even disposable electronics, could satisfy this need in a very elegant way. Unfortunately, the ensurance of biocompatibility and biofunctionalization of conducting and semiconducting polymers is still often lacking. In the present study, we concentrate on one of the most promising polymeric materials, regioregular poly(3-hexylthiophene) (P3HT), being both a reasonably conducting and optically active polymer. To overcome biocompatibility problems, protein-based coatings and oxygen-plasma treatments are performed to enable growth of adherent living cells on those modified surfaces. For our studies, the polymer material is spun or casted onto glass substrates under an inert nitrogen atmosphere. The toxic solvents are removed by thermal treatment with subsequent application of the coating or functionalizing materials. Cell-growth studies and adhesion experiments on the modified P3HT thin-film layers are carried out with mouse fibroblasts. This work demonstrates the biocompatibility and biofunctionalization of an active semiconducting organic polymer, hence opening new possibilities in the realization of biomedical test systems based on organic biosensors in life sciences.

摘要

对于廉价一次性分析感应设备存在着重大的医学和生物学需求,这种设备可以用于临床环境或医学研究中。基于聚合材料的有机电子学非常适合大面积、低成本、灵活,甚至可一次性使用的电子学,它可以非常优雅地满足这种需求。不幸的是,对于导电和半导体聚合物的生物兼容性和生物功能化的保证仍然常常缺乏。在本研究中,我们专注于一种最有前途的聚合材料,即规整形聚(3-己基噻吩)(P3HT),它既是一种具有合理导电性又是一种具有光学活性的聚合物。为了克服生物兼容性问题,我们采用蛋白质基涂层和氧等离子体处理来实现在那些改性表面上生长附着的活细胞。对于我们的研究,将聚合物材料在惰性氮气环境下旋转或浇铸到玻璃基底上。通过随后应用涂层或功能化材料的热处理来去除有毒溶剂。在改性的 P3HT 薄膜层上进行细胞生长研究和黏附实验,使用的是小鼠成纤维细胞。这项工作证明了活性半导体有机聚合物的生物兼容性和生物功能化,从而为基于有机生物传感器的生命科学中的生物医学测试系统的实现开辟了新的可能性。

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