Jules Stein Eye Institute and Department of Chemistry and Biochemistry, University of California, Los Angeles, California 90095, USA.
J Am Chem Soc. 2012 Jun 20;134(24):9950-2. doi: 10.1021/ja303791p. Epub 2012 Jun 11.
Pulsed electron spin resonance (ESR) dipolar spectroscopy (PDS) in combination with site-directed spin labeling is unique in providing nanometer-range distances and distributions in biological systems. To date, most of the pulsed ESR techniques require frozen solutions at cryogenic temperatures to reduce the rapid electron spin relaxation rate and to prevent averaging of electron-electron dipolar interaction due to the rapid molecular tumbling. To enable measurements in liquid solution, we are exploring a triarylmethyl (TAM)-based spin label with a relatively long relaxation time where the protein is immobilized by attachment to a solid support. In this preliminary study, TAM radicals were attached via disulfide linkages to substituted cysteine residues at positions 65 and 80 or 65 and 76 in T4 lysozyme immobilized on Sepharose. Interspin distances determined using double quantum coherence (DQC) in solution are close to those expected from models, and the narrow distance distribution in each case indicates that the TAM-based spin label is relatively localized.
脉冲电子自旋共振(ESR)偶极子波谱(PDS)与定向自旋标记相结合,在提供生物系统中的纳米级距离和分布方面具有独特的优势。迄今为止,大多数脉冲 ESR 技术需要在低温下的冷冻溶液中进行,以降低电子自旋弛豫速率,并防止由于快速分子旋转而导致电子-电子偶极相互作用的平均化。为了能够在液态溶液中进行测量,我们正在探索一种基于三芳基甲基(TAM)的自旋标记物,其弛豫时间相对较长,其中蛋白质通过附着在固体载体上而被固定。在这项初步研究中,TAM 自由基通过二硫键连接到固定在 Sepharose 上的 T4 溶菌酶的位置 65 和 80 或 65 和 76 的取代半胱氨酸残基上。在溶液中使用双量子相干(DQC)确定的自旋-自旋距离接近模型预期的距离,并且每种情况下的窄距离分布表明基于 TAM 的自旋标记物相对局部化。