Li Jing, Wang Xingyu, Liang Xingguo
College of Food Science and Engineering, Ocean University of China, Nucleic Acids Chemistry and Biotechnology Laboratory, No. 5 Yushan Road, Shinan-qu, Qingdao City (China), Fax: (+81) 532-82031086.
Chem Asian J. 2014 Dec;9(12):3344-58. doi: 10.1002/asia.201402758. Epub 2014 Sep 18.
Azobenzene has been widely used as a photoregulator due to its reversible photoisomerization, large structural change between E and Z isomers, high photoisomerization yield, and high chemical stability. On the other hand, some azobenzene derivatives can be used as universal quenchers for many fluorophores. Nucleic acid is a good candidate to be modified because it is not only the template of gene expression but also widely used for building well-organized nanostructures and nanodevices. Because the size and polarity distribution of the azobenzene molecule is similar to a nucleobase pair, the introduction of azobenzene into nucleic acids has been shown to be an ingenious molecular design for constructing light-switching biosystems or light-driven nanomachines. Here we review recent advances in azobenzene-modified nucleic acids and their applications for artificial regulation of gene expression and enzymatic reactions, construction of photoresponsive nanostructures and nanodevices, molecular beacons, as well as obtaining structural information using the introduced azobenzene as an internal probe. In particular, nucleic acids bearing multiple azobenzenes can be used as a novel artificial nanomaterial with merits of high sequence specificity, regular duplex structure, and high photoregulation efficiency. The combination of functional groups with biomolecules may further advance the development of chemical biotechnology and biomolecular engineering.
偶氮苯因其可逆的光异构化、E 型和 Z 型异构体之间的巨大结构变化、高光异构化产率以及高化学稳定性而被广泛用作光调节剂。另一方面,一些偶氮苯衍生物可作为许多荧光团的通用猝灭剂。核酸是一种很好的修饰候选物,因为它不仅是基因表达的模板,还广泛用于构建有序的纳米结构和纳米器件。由于偶氮苯分子的大小和极性分布与核碱基对相似,将偶氮苯引入核酸已被证明是构建光开关生物系统或光驱动纳米机器的巧妙分子设计。在此,我们综述了偶氮苯修饰核酸的最新进展及其在人工调控基因表达和酶促反应、构建光响应纳米结构和纳米器件、分子信标以及使用引入的偶氮苯作为内部探针获取结构信息方面的应用。特别是,带有多个偶氮苯的核酸可作为一种新型人工纳米材料,具有高序列特异性、规则双链结构和高光调节效率等优点。官能团与生物分子的结合可能会进一步推动化学生物技术和生物分子工程的发展。