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DNA 序列依赖性银纳米粒子的形态演化及其光学和杂交性质。

DNA sequence-dependent morphological evolution of silver nanoparticles and their optical and hybridization properties.

机构信息

Collaborative Innovation Center of Chemical Science and Chemical Engineering (Tianjin) and Key Laboratory for Green Chemical Technology MOE, Tianjin University , Tianjin 300072, People's Republic of China.

出版信息

J Am Chem Soc. 2014 Oct 29;136(43):15195-202. doi: 10.1021/ja506150s. Epub 2014 Oct 15.

Abstract

A systematic investigation of the effects of different DNA sequences on the morphologies of silver nanoparticles (AgNPs) grown from Ag nanocube seeds is reported. The presence of 10-mer oligo-A, -T, and -C directed AgNPs growth from cubic seeds into edge-truncated octahedra of different truncation extents and truncated tetrahedral AgNPs, while AgNPs in the presence of oligo-G remained cubic. The shape and morphological evolution of the nanoparticle growth for each system is investigated using SEM and TEM and correlated with UV-vis absorption kinetic studies. In addition, the roles of oligo-C and oligo-G secondary structures in modulating the morphologies of AgNPs are elucidated, and the morphological evolution for each condition of AgNPs growth is proposed. The shapes were found to be highly dependent on the binding affinity of each of the bases and the DNA secondary structures, favoring the stabilization of the Ag{111} facet. The AgNPs synthesized through this method have morphologies and optical properties that can be varied by using different DNA sequences, while the DNA molecules on these AgNPs are also stable against glutathione. The AgNP functionalization can be realized in a one-step synthesis while retaining the biorecognition ability of the DNA, which allows for programmable assembly.

摘要

本文系统研究了不同 DNA 序列对银纳米晶种子生长的银纳米粒子(AgNPs)形貌的影响。10 聚体寡聚 A、T 和 C 的存在将立方 Ag 纳米晶种子定向生长为不同截断程度的截角八面体和截角四面体 AgNPs,而寡聚 G 的存在使 AgNPs 保持为立方形状。通过 SEM 和 TEM 研究了每个体系中纳米粒子生长的形状和形态演变,并与紫外-可见吸收动力学研究相关联。此外,还阐明了寡聚 C 和寡聚 G 二级结构在调节 AgNPs 形态方面的作用,并提出了每种 AgNPs 生长条件的形态演变。结果表明,形状高度依赖于每个碱基的结合亲和力和 DNA 二级结构,有利于 Ag{111}面的稳定。通过这种方法合成的 AgNPs 具有可通过使用不同 DNA 序列改变的形貌和光学性质,而这些 AgNPs 上的 DNA 分子也对谷胱甘肽稳定。AgNP 功能化可以在一步合成中实现,同时保留 DNA 的生物识别能力,从而实现可编程组装。

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