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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Oriented and vectorial immobilization of linear M13 dsDNA between interdigitated electrodes - towards single molecule DNA nanostructures
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Oriented and vectorial immobilization of linear M13 dsDNA between interdigitated electrodes - towards single molecule DNA nanostructures

机译:指状电极之间线性M13 dsDNA的定向和矢量固定-朝向单分子DNA纳米结构

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The. ability to. control molecules at a resolution well below that offered by photolithography has gained much interest recently. DNA is a promising candidate for this task since it offers excellent specificity in base-pairing combined with addressability at the nanometer scale. New applications in biosensing, e.g. interaction analysis at the single molecule level, or nanobiotechnology, e.g. ultradense DNA microarravs, have been devised that rely on stretched DNA bridges. The basic technology required is the ability to deposit spatially defined, stretched DNA-bridges between anchoring structures on surfaces. In this paper we present two techniques for spanning 2 pm long dsDNA bridges between neighboring interdigitated electrodes (IDEs). The extended DNA used was linearized M13 dsDNA (M13mp18 7231 bp, ca. 2.5 pm length), either unmodified, or with chemical modifications at both ends. The first approach is based on the dielectrophoretic (DEP) concentration and alignment of linearized wild-type dsDNA. IDEs with 1.7 pm spacing are driven with an AC voltage around I MHz leading to field strengths in the order of I MV m(-1). The dsDNA is polarized and linearized by the force field and accumulates in the gap between two neighboring electrodes. This process is reversible and was visualized by fluorescence staining of M 13 DNA using PicoGreen(TM), as intercalating dye. The resulting dsDNA bridges and their orientation are discernible under the fluorescence microscope using fluorescent particles of different color. The particles are tagged with sequence specific peptide nucleic acid (PNA) probes that bind to the DNA double strand at specific sites. The second approach is based oil asymmetric electrochemical modification of a gold IDE with 2.0 mum spacings followed by spontaneous or stimulated deposition of a chemically modified M13-DNA. One side of the IDE was selectively coated with streptavidin by electropolymerization of a novel hydrophilic conductive polymer in the presence of the binding protein. The second side was modified with gold nanoparticles by reductive plating from aqueous gold chloride solution. An asymmetric double stranded (ds) M 13 DNA carrying a 5'-thiol group at one end and a 5'-biotin at the other end was obtained by polymerase chain reaction (PCR) using, two differently labeled primers. For DNA bridges to form spontaneously the modified IDE was incubated over night with a 50 nM solution of the modified M13 DNA. Potential applications of DNA-bridge formation in biosensing and biotechnology are discussed. (C) 2003 Elsevier Science B.V. All rights reserved. [References: 28]
机译:的。有能力。控制分子的分辨率远低于光刻技术所提供的分辨率,最近引起了人们的极大兴趣。 DNA是这项任务的有前途的候选者,因为它在碱基配对方面具有出色的特异性,并在纳米级上具有寻址能力。生物传感的新应用,例如单分子水平的相互作用分析或纳米生物技术,例如已经设计了依赖于延伸的DNA桥的超致密DNA微缩醛。所需的基本技术是能够在表面的锚固结构之间沉积空间定义的拉伸DNA桥的能力。在本文中,我们介绍了两种在相邻的叉指电极(IDE)之间跨过2 pm长的dsDNA桥的技术。使用的延伸DNA是线性的M13 dsDNA(M13mp18 7231 bp,长度约为2.5 pm),未修饰,或两端均经化学修饰。第一种方法基于介电电泳(DEP)浓度和线性化野生型dsDNA的比对。间距为1.7 pm的IDE由大约1 MHz的AC电压驱动,从而产生的磁场强度约为I MV m(-1)。 dsDNA被力场极化和线性化,并累积在两个相邻电极之间的间隙中。该过程是可逆的,并且通过使用PicoGreen TM作为嵌入染料对M 13 DNA进行荧光染色而可视化。使用不同颜色的荧光颗粒,在荧光显微镜下可以辨别所得的dsDNA桥及其方向。颗粒用序列特异性肽核酸(PNA)探针标记,该探针在特定位点与DNA双链结合。第二种方法是对具有2.0微米间距的金IDE进行油不对称电化学修饰,然后进行化学修饰的M13-DNA的自发或受激沉积。在结合蛋白的存在下,通过新型亲水导电聚合物的电聚合,用抗生蛋白链菌素选择性包裹IDE的一侧。通过从氯化金水溶液中还原镀金,将第二面用金纳米颗粒改性。通过聚合酶链反应(PCR),使用两种不同标记的引物,获得了一个不对称双链(ds)M 13 DNA,该DNA的一端带有5'-巯基,另一端带有5'-生物素。为了自发形成DNA桥,将修饰的IDE与50nM的修饰的M13 DNA溶液孵育过夜。讨论了DNA桥形成在生物传感和生物技术中的潜在应用。 (C)2003 Elsevier Science B.V.保留所有权利。 [参考:28]

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