Longhini Andrew P, LeBlanc Regan M, Dayie T Kwaku
Department of Chemistry & Biochemistry, University of Maryland, Biomolecular Sciences Building (296), 8314 Paint Branch Dr., College Park, MD 20782, USA.
Department of Chemistry & Biochemistry, University of Maryland, Biomolecular Sciences Building (296), 8314 Paint Branch Dr., College Park, MD 20782, USA.
Methods. 2016 Jul 1;103:11-7. doi: 10.1016/j.ymeth.2016.03.015. Epub 2016 Apr 18.
Even though Nuclear Magnetic Resonance (NMR) spectroscopy is one of the few techniques capable of determining atomic resolution structures of RNA, it is constrained by two major problems of chemical shift overlap of resonances and rapid signal loss due to line broadening. Emerging tools to tackle these problems include synthesis of atom specifically labeled or chemically modified nucleotides. Herein we review the synthesis of these nucleotides, the design and production of appropriate RNA samples, and the application and analysis of the NMR experiments that take advantage of these labels.
尽管核磁共振(NMR)光谱法是少数能够确定RNA原子分辨率结构的技术之一,但它受到两个主要问题的限制,即共振的化学位移重叠和由于谱线展宽导致的快速信号损失。解决这些问题的新兴工具包括合成原子特异性标记或化学修饰的核苷酸。在此,我们综述这些核苷酸的合成、合适RNA样品的设计与制备,以及利用这些标记的NMR实验的应用与分析。