首页> 外文会议>Smart Materials IV; Proceedings of SPIE-The International Society for Optical Engineering; vol.6413 >Application of nanostructured biochips for efficient cell transfection microarrays
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Application of nanostructured biochips for efficient cell transfection microarrays

机译:纳米结构生物芯片在高效细胞转染微阵列中的应用

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Microarrays, high-throughput devices for genomic analysis, can be further improved by developing materials that are able to manipulate the interfacial behaviour of biomolecules. This is achieved both spatially and temporally by smart materials possessing both switchable and patterned surface properties. A system had been developed to spatially manipulate both DNA and cell growth based upon the surface modification of highly doped silicon by plasma polymerisation and polyethylene grafting followed by masked laser ablation for formation of a pattered surface with both bioactive and non-fouling regions. This platform has been successfully applied to transfected cell microarray applications with the parallel expression of genes by utilising its ability to direct and limit both DNA and cell attachment to specific sites. One of the greatest advantages of this system is its application to reverse transfection, whereupon by utilising the switchable adsorption and desorption of DNA using a voltage bias, the efficiency of cell transfection can be enhanced. However, it was shown that application of a voltage also reduces the viability of neuroblastoma cells grown on a plasma polymer surface, but not human embryonic kidney cells. This suggests that the application of a voltage may not only result in the desorption of bound DNA but may also affect attached cells. The characterisation of a DNA microarray by contact printing has also been investigated.
机译:通过开发能够操纵生物分子界面行为的材料,可以进一步改善微阵列(用于基因组分析的高通量设备)。这在空间和时间上都可以通过具有可切换和有图案的表面特性的智能材料来实现。已经开发了一种系统,该系统可通过等离子体聚合和聚乙烯接枝对高掺杂硅进行表面修饰,然后通过掩膜激光烧蚀来形成具有生物活性和非污染区域的图案化表面,从而在空间上控制DNA和细胞生长。该平台已利用其指导和限制DNA和细胞附着于特定位点的能力,成功地应用于具有基因平行表达的转染细胞微阵列应用。该系统的最大优点之一是其应用于反向转染,随后通过利用电压偏置利用可切换的DNA吸附和解吸,可以提高细胞转染效率。然而,已经表明,施加电压还降低了在血浆聚合物表面上生长的神经母细胞瘤细胞的活力,但没有降低人胚胎肾细胞的活力。这表明施加电压不仅会导致结合的DNA解吸,而且还会影响附着的细胞。还已经研究了通过接触印刷对DNA微阵列进行表征的方法。

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