Haque Farzin, Guo Peixuan
Nanobiotechnology Center, Markey Cancer Center, Departmentof Pharmaceutical Sciences, University of Kentucky, 789 S Limestone Ave, 576 Biopharm Complex, Lexington, KY, 40536, USA,
Methods Mol Biol. 2015;1297:1-19. doi: 10.1007/978-1-4939-2562-9_1.
RNA nanotechnology encompasses the use of RNA as a construction material to build homogeneous nanostructures by bottom-up self-assembly with defined size, structure, and stoichiometry; this pioneering concept demonstrated in 1998 (Guo et al., Molecular Cell 2:149-155, 1998; featured in Cell) has emerged as a new field that also involves materials engineering and synthetic structural biology (Guo, Nature Nanotechnology 5:833-842, 2010). The field of RNA nanotechnology has skyrocketed over the last few years, as evidenced by the burst of publications in prominent journals on RNA nanostructures and their applications in nanomedicine and nanotechnology. Rapid advances in RNA chemistry, RNA biophysics, and RNA biology have created new opportunities for translating basic science into clinical practice. RNA nanotechnology holds considerable promise in this regard. Increased evidence also suggests that substantial part of the 98.5 % of human genome (Lander et al. Nature 409:860-921, 2001) that used to be called "junk DNA" actually codes for noncoding RNA. As we understand more on how RNA structures are related to function, we can fabricate synthetic RNA nanoparticles for the diagnosis and treatment of diseases. This chapter provides a brief overview of the field regarding the design, construction, purification, and characterization of RNA nanoparticles for diverse applications in nanotechnology and nanomedicince.
RNA纳米技术包括将RNA用作构建材料,通过自下而上的自组装来构建具有确定大小、结构和化学计量的均匀纳米结构;1998年展示的这一开创性概念(郭等人,《分子细胞》2:149 - 155,1998年;《细胞》杂志专题报道)已发展成为一个新领域,该领域还涉及材料工程和合成结构生物学(郭,《自然纳米技术》5:833 - 842,2010年)。在过去几年中,RNA纳米技术领域迅速发展,著名期刊上关于RNA纳米结构及其在纳米医学和纳米技术中的应用的大量出版物就是明证。RNA化学、RNA生物物理学和RNA生物学的快速发展为将基础科学转化为临床实践创造了新机会。在这方面,RNA纳米技术具有巨大潜力。越来越多的证据还表明,过去被称为“垃圾DNA”的人类基因组98.5%(兰德等人,《自然》409:860 - 921,2001年)中的很大一部分实际上编码非编码RNA。随着我们对RNA结构与功能之间关系的了解越来越多,我们可以制造用于疾病诊断和治疗的合成RNA纳米颗粒。本章简要概述了该领域中用于纳米技术和纳米医学各种应用的RNA纳米颗粒的设计、构建、纯化和表征。