Yu Kai, Hidaka Kumi, Sugiyama Hiroshi, Endo Masayuki, Matsumura Shigeyoshi, Ikawa Yoshiya
Department of Chemistry, Graduate School of Science and Engineering, University of Toyama, Toyama, 930-8555, Japan.
Department of Chemistry, Graduate School of Science, Kyoto University, Kyoto, 606-8502, Japan.
Chembiochem. 2022 Mar 18;23(6):e202100573. doi: 10.1002/cbic.202100573. Epub 2022 Feb 10.
The modular architecture of naturally occurring ribozymes makes them a promising class of structural platform for the design and assembly of three-dimensional (3D) RNA nanostructures, into which the catalytic ability of the platform ribozyme can be installed. We have constructed and analyzed RNA nanostructures with polygonal-shaped (closed) ribozyme oligomers by assembling unit RNAs derived from the Tetrahymena group I intron with a typical modular architecture. In this study, we dimerized ribozyme trimers with a triangular shape by introducing three pillar units. The resulting double-decker nanostructures containing six ribozyme units were characterized biochemically and their structures were observed by atomic force microscopy. The double-decker hexamers exhibited higher catalytic activity than the parent ribozyme trimers.
天然存在的核酶的模块化结构使其成为用于三维(3D)RNA纳米结构设计和组装的一类很有前景的结构平台,平台核酶的催化能力可被引入其中。我们通过组装源自具有典型模块化结构的嗜热四膜虫I组内含子的单元RNA,构建并分析了具有多边形(封闭)核酶寡聚体的RNA纳米结构。在本研究中,我们通过引入三个支柱单元使三角形核酶三聚体二聚化。所得含有六个核酶单元的双层纳米结构通过生化方法进行了表征,并通过原子力显微镜观察了其结构。双层六聚体表现出比亲本核酶三聚体更高的催化活性。