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元 DNA:通过 DNA 纳米结构和杂交反应的合成生物学。

Meta-DNA: synthetic biology via DNA nanostructures and hybridization reactions.

机构信息

Department of Computer Science, Duke University, Durham, NC, USA.

出版信息

J R Soc Interface. 2012 Jul 7;9(72):1637-53. doi: 10.1098/rsif.2011.0819. Epub 2012 Jan 11.

Abstract

Can a wide range of complex biochemical behaviour arise from repeated applications of a highly reduced class of interactions? In particular, can the range of DNA manipulations achieved by protein enzymes be simulated via simple DNA hybridization chemistry? In this work, we develop a biochemical system which we call meta-DNA (abbreviated as mDNA), based on strands of DNA as the only component molecules. Various enzymatic manipulations of these mDNA molecules are simulated via toehold-mediated DNA strand displacement reactions. We provide a formal model to describe the required properties and operations of our mDNA, and show that our proposed DNA nanostructures and hybridization reactions provide these properties and functionality. Our meta-nucleotides are designed to form flexible linear assemblies (single-stranded mDNA (ssmDNA)) analogous to single-stranded DNA. We describe various isothermal hybridization reactions that manipulate our mDNA in powerful ways analogous to DNA-DNA reactions and the action of various enzymes on DNA. These operations on mDNA include (i) hybridization of ssmDNA into a double-stranded mDNA (dsmDNA) and heat denaturation of a dsmDNA into its component ssmDNA, (ii) strand displacement of one ssmDNA by another, (iii) restriction cuts on the backbones of ssmDNA and dsmDNA, (iv) polymerization reactions that extend ssmDNA on a template to form a complete dsmDNA, (v) synthesis of mDNA sequences via mDNA polymerase chain reaction, (vi) isothermal denaturation of a dsmDNA into its component ssmDNA, and (vii) an isothermal replicator reaction that exponentially amplifies ssmDNA strands and may be modified to allow for mutations.

摘要

大量复杂的生化行为能否通过反复应用高度简化的相互作用类来产生?特别是,蛋白质酶所能实现的 DNA 操作范围能否通过简单的 DNA 杂交化学来模拟?在这项工作中,我们开发了一种生化系统,我们称之为元 DNA(缩写为 mDNA),其基于 DNA 链作为唯一的成分分子。通过引发链置换反应模拟对这些 mDNA 分子的各种酶促操作。我们提供了一个正式的模型来描述我们的 mDNA 的所需特性和操作,并表明我们提出的 DNA 纳米结构和杂交反应提供了这些特性和功能。我们的元核苷酸被设计为形成类似于单链 DNA 的灵活线性组装体(单链 mDNA(ssmDNA))。我们描述了各种等温杂交反应,这些反应以类似于 DNA-DNA 反应和各种酶对 DNA 作用的方式对我们的 mDNA 进行有力的操作。这些对 mDNA 的操作包括:(i)ssmDNA 杂交成双链 mDNA(dsmDNA),以及 dsmDNA 热变性为其组成部分 ssmDNA;(ii)一个 ssmDNA 被另一个 ssmDNA 置换;(iii)ssmDNA 和 dsmDNA 骨架的限制切割;(iv)在模板上延伸 ssmDNA 以形成完整的 dsmDNA 的聚合反应;(v)通过 mDNA 聚合酶链反应合成 mDNA 序列;(vi)dsmDNA 热变性为其组成部分 ssmDNA;以及(vii)等温复制反应,该反应可指数扩增 ssmDNA 链,并可进行修改以允许突变。

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