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首页> 外文期刊>ACS applied materials & interfaces >Highly Transparent Cyclic Olefin Copolymer Film with a Nanotextured Surface Prepared by One-Step Photografting for High-Density DNA Immobilization
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Highly Transparent Cyclic Olefin Copolymer Film with a Nanotextured Surface Prepared by One-Step Photografting for High-Density DNA Immobilization

机译:高度透明的环烯烃共聚物膜,具有通过一步式摄影制备的纳米夹层表面,用于高密度DNA固定化

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摘要

Compared with conventional glass slides and two-dimensional (2D) planar microarrays, polymer-based support materials and three-dimensional (3D) surface structures have attracted increasing attention in the field of biochips because of their good processability in microfabrication and low cost in mass production, as well as their improved sensitivity and specificity for the detection of biomolecules. In the present study, UV-induced emulsion graft polymerization was carried out on a cyclic olefin copolymer (COC) surface to generate 3D nanotextures composed of loosely stacked nanoparticles with a diameter of approximately 50 nm. The introduction of a hierarchical nanostructure on a COC surface only resulted in a 5% decrease in its transparency at a wavelength of 550 nm but significantly increased the surface area, which markedly improved immobilization density and efficiency of an oligonucleotide probe compared with the functional group and polymer brush modified substrates. The highest immobilization efficiency of the probes reached 93%, and a limit of detection of 75 pM could be obtained. The hybridization experiment demonstrated that the 3D gene chip exhibited excellent sensitivity for target DNA detection and single-nucleotide polymorphism discrimination. This one-step approach to the construction of nanotextured surfaces on the COC has promising applications in the fields of biochips and immunoassays.
机译:与传统的玻璃载玻片和二维(2D)平面微阵列相比,基于聚合物的支撑材料和三维(3D)表面结构由于它们在微型制备和低成本中的良好加工性和低质量成本而引起了生物芯片领域的越来越长生产,以及改善了检测生物分子的敏感性和特异性。在本研究中,在环烯烃共聚物(COC)表面上进行紫外诱导的乳液接枝聚合,以产生由直径为约50nm的松散堆叠的纳米颗粒组成的3D纳米纹理。在COC表面上引入分层纳米结构仅导致550nm的透明度下降5%,但与官能团和少核苷酸探针相比显着提高了寡核苷酸探针的固定密度和效率的透明度降低了5%。聚合物刷改性基材。探针的最高固定效率达到93%,并且可以获得75 PM的检测限。杂交实验表明,3D基因芯片对靶DNA检测和单核苷酸多态性鉴别表现出优异的敏感性。这种一步方法探讨了COC上的纳米纹理表面的施工具有前景的生物芯片和免疫测定领域的应用。

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