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Localized DNA Computation

机译:局部DNA计算

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摘要

Recently, solution-based systems for DNA computation have demonstrated the enormous potential of DNA nanosystems to do computation at the molecular-scale. These use DNA strands to encode values and use DNA hybridization reactions to perform computations. But most of these prior DNA computation systems relied on the diffusion of DNA strands to transport values during computations. During diffusion, DNA molecules randomly collide and interact in a three-dimensional fluidic space. At low concentrations and temperatures, diffusion can be quite slow and could impede the kinetics of these systems whereas at higher concentrations and temperature, unintended spurious interactions during diffusion can hinder the computations. Hence, increasing the concentration of DNA strands to speed up DNA hybridization reactions has the unfortunate side effect of increasing leaks, which are undesired hybridization reactions in the absence of input strands. Also, diffusion-based systems possess global states encoded via concentration of various species and hence exhibit only limited parallel ability.;To address these challenges, this dissertation describes a novel design for DNA computation called a localized hybridization network, where diffusion of DNA strands does not occur. Instead all of the DNA strands are localized by attaching them to an addressable substrate such as DNA nanotrack and DNA origami. This localization increases the relative concentration of the reacting DNA strands thereby speeding up the kinetics. This dissertation demonstrated a localized hybridization network that executed a chain reaction of five DNA hybridizations which executes faster than non-localized DNA reactions.;Another advantage of this approach is that each copy of the localized hybridization network operates independently of each other, allowing for a high level of parallelism. Localized hybridization networks also allow one to reuse the same DNA sequence to perform different actions at distinct location on the addressable substrate, increasing the scalability of such systems by exploiting the limited sequence space. An advantage of localized hybridization computational circuit is sharper switching behavior as information is encoded over the state of a single molecule. This also eliminates the need for thresholding as computation is performed locally eliminating the need for a global consensus.;There are many applications for localized hybridization networks. These include counting the number of disease marker molecules in a patient, detecting various cancer DNA sequences, and detecting and distinguishing bacteria by their distinguishing DNA. The results from localized DNA hybridization reactions may also be of practical use in performing surface computation on cellular membranes for disease detection and prevention.
机译:最近,用于DNA计算的基于解决方案的系统已经证明了DNA纳米系统在分子规模上进行计算的巨大潜力。它们使用DNA链编码值,并使用DNA杂交反应进行计算。但是,大多数这些现有的DNA计算系统都依赖于DNA链的扩散来在计算过程中传输值。在扩散过程中,DNA分子在三维流体空间中随机碰撞并相互作用。在较低的浓度和温度下,扩散可能会非常缓慢,并且可能会阻碍这些系统的动力学;而在较高的浓度和温度下,扩散期间发生的意外杂散相互作用会阻碍计算。因此,增加DNA链的浓度以加速DNA杂交反应具有增加的泄漏的不幸的副作用,这是在没有输入链的情况下不期望的杂交反应。此外,基于扩散的系统具有通过各种物种的浓度编码的全局状态,因此仅表现出有限的并行能力。为解决这些挑战,本文介绍了一种用于DNA计算的新颖设计,称为局部杂交网络,其中DNA链的扩散确实不会发生。而是通过将所有DNA链附着到可寻址的基质(如DNA纳米轨道和DNA折纸)上来进行定位。这种定位增加了反应的DNA链的相对浓度,从而加快了动力学。本论文证明了一个本地杂交网络,该网络执行了五次DNA杂交的链反应,其执行速度比非本地化DNA反应更快;该方法的另一个优势是,本地化杂交网络的每个副本彼此独立运行,因此高并行度。局部杂交网络还允许人们重复使用相同的DNA序列,以在可寻址基板上的不同位置执行不同的操作,从而通过利用有限的序列空间来提高此类系统的可扩展性。局部杂交计算电路的一个优点是,由于在单个分子的状态上编码信息,因此切换行为更加尖锐。这也消除了对阈值的需要,因为计算是在本地执行的,从而消除了对全局共识的需求。这些包括计数患者中疾病标记分子的数量,检测各种癌症DNA序列以及通过细菌的区分DNA来检测和区分细菌。局部DNA杂交反应的结果也可能在细胞膜上进行表面计算以检测和预防疾病中具有实际用途。

著录项

  • 作者

    Bui, Hieu Trung.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Computer science.;Biochemistry.;Nanoscience.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 199 p.
  • 总页数 199
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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