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DNA nanomachines.DNA纳米机器
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Six-helix and eight-helix DNA nanotubes assembled from half-tubes.由半管组装而成的六螺旋和八螺旋DNA纳米管。
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DNA-nanotube-induced alignment of membrane proteins for NMR structure determination.用于核磁共振结构测定的DNA纳米管诱导的膜蛋白取向排列
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Double cohesion in structural DNA nanotechnology.结构DNA纳米技术中的双凝聚作用。
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Self-assembled signaling aptamer DNA arrays for protein detection.用于蛋白质检测的自组装信号适配体DNA阵列
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结构DNA纳米技术概述。

An overview of structural DNA nanotechnology.

作者信息

Seeman Nadrian C

机构信息

Department of Chemistry, New York University, New York, NY 10003, USA.

出版信息

Mol Biotechnol. 2007 Nov;37(3):246-57. doi: 10.1007/s12033-007-0059-4. Epub 2007 Jul 12.

DOI:10.1007/s12033-007-0059-4
PMID:17952671
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3479651/
Abstract

Structural DNA Nanotechnology uses unusual DNA motifs to build target shapes and arrangements. These unusual motifs are generated by reciprocal exchange of DNA backbones, leading to branched systems with many strands and multiple helical domains. The motifs may be combined by sticky ended cohesion, involving hydrogen bonding or covalent interactions. Other forms of cohesion involve edge-sharing or paranemic interactions of double helices. A large number of individual species have been developed by this approach, including polyhedral catenanes, a variety of single-stranded knots, and Borromean rings. In addition to these static species, DNA-based nanomechanical devices have been produced that are ultimately targeted to lead to nanorobotics. Many of the key goals of structural DNA nanotechnology entail the use of periodic arrays. A variety of 2D DNA arrays have been produced with tunable features, such as patterns and cavities. DNA molecules have be used successfully in DNA-based computation as molecular representations of Wang tiles, whose self-assembly can be programmed to perform a calculation. About 4 years ago, on the fiftieth anniversary of the double helix, the area appeared to be at the cusp of a truly exciting explosion of applications; this was a correct assessment, and much progress has been made in the intervening period.

摘要

结构DNA纳米技术利用特殊的DNA基序构建目标形状和排列。这些特殊基序是通过DNA主链的相互交换产生的,从而形成具有多条链和多个螺旋结构域的分支系统。这些基序可以通过粘性末端连接结合在一起,包括氢键或共价相互作用。其他形式的连接包括双螺旋的边缘共享或平行排列相互作用。通过这种方法已经开发出大量的单个物种,包括多面体连环、各种单链结和博罗梅安环。除了这些静态物种外,还制造了基于DNA的纳米机械设备,其最终目标是实现纳米机器人技术。结构DNA纳米技术的许多关键目标都需要使用周期性阵列。已经制造出了各种具有可调特征(如图案和空洞)的二维DNA阵列。DNA分子已成功用于基于DNA的计算,作为王瓦片的分子表示,其自组装可以编程进行计算。大约4年前,在双螺旋发现五十周年之际,该领域似乎正处于真正令人兴奋的应用爆发的临界点;这是一个正确的评估,在此期间已经取得了很大进展。