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DNA nanotech: Expanding the repertoire of DNA for the assembly of nanoscale objects and electrical devices.

机译:DNA纳米技术:扩展DNA的种类,以组装纳米级物体和电气设备。

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摘要

Much recent interest has focused on DNA as a material for the construction of objects and the templating of other materials on the nanometer to micrometer scale. Such constructions have made use of the recognition of “complementary” nucleotide sequence by single-stranded stretches of DNA in the formation of double helices. The ability of DNA double helices to act as a semi-conductor for electron transfer has opened more opportunities for using DNA in nanoscale devices. This work describes several advancements involving structural and functional aspect of DNA based nanotechnologies.; We have developed a new approach to assemble DNA nanostructures in a cation dependent manner. Association is via the formation of guanine quartets from two G-G mismatch domains within a duplex DNA framework. Association can be regulated by the addition or removal of cation species that promote guanine quartet formation (i.e. K+ or Sr2+). We have also demonstrated that these domains can be ‘programmed’ to be self-specific in mixed solutions by patterning the G·G mismatches into distinct domains.; We have evaluated the process of charge transfer through immobile DNA junctions. This work compares anthraquinone- and rhodium-based methods to induce charge transfer through DNA and identifies some pitfalls in one of the prominently used systems.; We have also demonstrated that the conformational transitions of folded DNA structures, more complex than simple double helical DNA, can be utilized in regulating charge transfer. We have successfully constructed ‘electrical on/off switches’ composed of DNA, which are modulated by the presence or absence of particular compounds in solution. Switches that are modulated by the small molecule adenosine and as well as ones modulated by short oligonucleotides have been assembled. The construction and demonstration of their operation now opens a new window of opportunity for the development of DNA detector systems, which could be directly coupled to microchips. Direct detection of molecules and nucleic acids in this fashion would result in techniques where target molecules can be immediately detected with very high sensitivity and specificity.
机译:最近的许多兴趣都集中在DNA作为一种用于构建物体的材料以及其他在纳米到微米级的材料模板上。这样的结构利用了双螺旋形成中单链DNA片段对“互补”核苷酸序列的识别。 DNA双螺旋充当电子转移的半导体的能力为在纳米级设备中使用DNA开辟了更多机会。这项工作描述了涉及基于DNA的纳米技术的结构和功能方面的一些进步。我们已经开发出一种以阳离子依赖性方式组装DNA纳米结构的新方法。缔合是通过在双链DNA框架内由两个G-G错配结构域形成鸟嘌呤四联体而实现的。缔合可以通过添加或去除促进鸟嘌呤四联体形成的阳离子种类(即K + 或Sr 2 + )来调节。我们还证明,通过将G·G不匹配模式化为不同的域,可以将这些域“编程”为在混合解决方案中具有自我特异性。我们已经评估了通过固定DNA连接的电荷转移过程。这项工作比较了基于蒽醌和铑的方法来诱导通过DNA的电荷转移,并确定了其中一种最常用的系统中的一些陷阱。我们还证明了比简单的双螺旋DNA更复杂的折叠DNA结构的构象转变可用于调节电荷转移。我们已经成功构建了由DNA组成的“电子开/关开关”,该开关可以通过溶液中是否存在特定化合物来调节。已经组装了由小分子腺苷调节的开关以及由短寡核苷酸调节的开关。现在,其操作的构建和演示为DNA检测器系统的开发打开了新的机会之窗,该系统可直接与微芯片耦合。以这种方式直接检测分子和核酸将导致能够以非常高的灵敏度和特异性立即检测靶分子的技术。

著录项

  • 作者

    Fahlman, Richard Peter.;

  • 作者单位

    Simon Fraser University (Canada).;

  • 授予单位 Simon Fraser University (Canada).;
  • 学科 Biology Molecular.; Engineering Materials Science.; Biophysics General.; Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 237 p.
  • 总页数 237
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子遗传学;工程材料学;生物物理学;生物化学;
  • 关键词

  • 入库时间 2022-08-17 11:47:17

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