Nguyen Phuong H, Popova Anna M, Hideg Kálmán, Qin Peter Z
Department of Chemistry, University of Southern California, 840 Downey Way, Los Angeles, CA 90089-0744 USA ; Current Address: Bachem Americas, Torrance, CA 90505 USA.
Department of Chemistry, University of Southern California, 840 Downey Way, Los Angeles, CA 90089-0744 USA ; Current Address: Department of Integrative Structural and Computational Biology, The Scripps Research Institute, La Jolla, CA 92037 USA.
BMC Biophys. 2015 Apr 9;8:6. doi: 10.1186/s13628-015-0019-5. eCollection 2015.
Spin labels, which are chemically stable radicals attached at specific sites of a bio-molecule, enable investigations on structure and dynamics of proteins and nucleic acids using techniques such as site-directed spin labeling and paramagnetic NMR. Among spin labels developed, the class of rigid labels have limited or no independent motions between the radical bearing moiety and the target, and afford a number of advantages in measuring distances and monitoring local dynamics within the parent bio-molecule. However, a general method for attaching a rigid label to nucleic acids in a nucleotide-independent manner has not been reported.
We developed an approach for installing a nearly rigid nitroxide spin label, designated as R5c, at a specific site of the nucleic acid backbone in a nucleotide-independent manner. The method uses a post-synthesis approach to covalently attach the nitroxide moiety in a cyclic fashion to phosphorothioate groups introduced at two consecutive nucleotides of the target strand. R5c-labeled nucleic acids are capable of pairing with their respective complementary strands, and the cyclic nature of R5c attachment significantly reduced independence motions of the label with respect to the parent duplex, although it may cause distortion of the local environment at the site of labeling. R5c yields enhanced sensitivity to the collective motions of the duplex, as demonstrated by its capability to reveal changes in collective motions of the substrate recognition duplex of the 120-kDa Tetrahymena group I ribozyme, which elude detection by a flexible label.
The cyclic R5c nitroxide can be efficiently attached to a target nucleic acid site using a post-synthetic coupling approach conducted under mild biochemical conditions, and serves as a viable label for experimental investigation of segmental motions in nucleic acids, including large folded RNAs.
自旋标记是附着在生物分子特定位点的化学稳定自由基,可利用定点自旋标记和顺磁核磁共振等技术研究蛋白质和核酸的结构与动力学。在已开发的自旋标记中,刚性标记类在带有自由基的部分与靶标之间具有有限的独立运动或没有独立运动,并且在测量距离和监测母体生物分子内的局部动力学方面具有许多优势。然而,尚未报道一种以不依赖核苷酸的方式将刚性标记附着到核酸上的通用方法。
我们开发了一种方法,以不依赖核苷酸的方式在核酸主链的特定位点安装一种近乎刚性的氮氧自旋标记,命名为R5c。该方法采用合成后方法,以环状方式将氮氧部分共价连接到在靶链的两个连续核苷酸处引入的硫代磷酸酯基团上。R5c标记的核酸能够与它们各自的互补链配对,并且R5c附着的环状性质显著降低了标记相对于母体双链体的独立运动,尽管它可能会导致标记位点处局部环境的扭曲。R5c对双链体的集体运动具有更高的灵敏度,这通过其揭示120 kDa四膜虫I组核酶底物识别双链体集体运动变化的能力得到证明,而这种变化无法通过柔性标记检测到。
环状R5c氮氧自由基可以在温和的生化条件下通过合成后偶联方法有效地附着到目标核酸位点,并作为一种可行的标记用于核酸片段运动的实验研究,包括大折叠RNA。