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富勒烯簇辅助短DNA链自组装成半导体纳米线。

Fullerene Cluster Assisted Self-Assembly of Short DNA Strands into Semiconducting Nanowires.

作者信息

Vittala Sandeepa Kulala, Saraswathi Sajena Kanangat, Joseph Joshy

机构信息

Photosciences and Photonics Section, CSIR, National Institute for Interdisciplinary Science and Technology, Thiruvananthapuram, 695 019, India.

Academy of Scientific and Innovative Research (AcSIR), CSIR-NIIST Campus, Thiruvananthapuram, Kerala, 695019, India.

出版信息

Chemistry. 2017 Nov 7;23(62):15759-15765. doi: 10.1002/chem.201703333. Epub 2017 Oct 13.

Abstract

Programmable, hierarchical assembly of DNA nanostructures with precise organisation of functional components have been demonstrated previously with tiled assembly and DNA origami. However, building organised nanostructures with random oligonucleotide strands remains as an elusive problem. Herein, a simple and general strategy, in which nanoclusters of a fullerene derivative act as stapler motifs in bringing ordered nanoscale assembly of short oligonucleotide duplexes into micrometre-sized nanowires, is described. In this approach, the fullerene derivative, by virtue of its amphiphilic structure and unique hydrophobic-hydrophilic balance, pre-assembles to form 3-5 nm sized clusters in a mixture of DMSO-phosphate buffer, which further assists the assembly of DNA strands. The optimum cluster size, availability of DNA anchoring motifs and the nature of the DNA strands controls the structure of these nanomaterials. Furthermore, horizontal conductivity measurements through conductive AFM confirmed the charge transport properties of these nanowires. The current strategy could be employed to organise random DNA duplexes and tiles into functional nanostructures, and hence, open up new avenues in DNA nanotechnology.

摘要

此前已通过平铺组装和DNA折纸技术证明了具有功能组件精确组织的DNA纳米结构的可编程分层组装。然而,利用随机寡核苷酸链构建有组织的纳米结构仍然是一个难以解决的问题。在此,描述了一种简单通用的策略,其中富勒烯衍生物的纳米团簇充当订书钉基序,将短寡核苷酸双链体的有序纳米级组装带入微米级纳米线中。在这种方法中,富勒烯衍生物凭借其两亲结构和独特的疏水-亲水平衡,在二甲基亚砜-磷酸盐缓冲液混合物中预组装形成3-5纳米大小的团簇,这进一步辅助了DNA链的组装。最佳团簇大小、DNA锚定基序的可用性以及DNA链的性质控制着这些纳米材料的结构。此外,通过导电原子力显微镜进行的横向电导率测量证实了这些纳米线的电荷传输特性。当前策略可用于将随机DNA双链体和平铺组装成功能性纳米结构,从而为DNA纳米技术开辟新途径。

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