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Interaction of triarylmethyl radicals with DNA termini revealed by orientation-selective W-band double electron-electron resonance spectroscopy

机译:定向选择性W波段双电子电子共振光谱显示三芳基甲基与DNA末端的相互作用

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摘要

Spin labels selectively attached to biomolecules allow high-accuracy nanoscale distance measurements using pulsed electron paramagnetic resonance (EPR), in many cases providing the only access to the structure of complex biosystems. Triarylmethyl (TAM) radicals have recently emerged as a new class of spin labels expanding the applicability of the method to physiological temperatures. Along with other factors, the accuracy of the obtained distances crucially relies on the understanding of interactions between biomolecules and spin labels. In this work, we consider such crucial interactions and their impact on pulsed EPR distance measurements in TAM-labeled DNAs. Using orientation-selective high-frequency (94 GHz) double electron-electron resonance (DEER) we demonstrate strong specific interactions between DNA termini and TAM labels, leading to a significant restriction of their conformational mobility. An understanding of such interactions guides the way to select optimum TAM-labeling strategies, thus refining nanoscale EPR distance measurements in nucleic acids and their complexes under physiological conditions.
机译:选择性地附着在生物分子上的自旋标记物允许使用脉冲电子顺磁共振(EPR)进行高精度的纳米级距离测量,在许多情况下,这是访问复杂生物系统结构的唯一途径。三芳基甲基(TAM)自由基最近作为一类新的自旋标记出现,将方法的适用性扩展到了生理温度。与其他因素一起,获得的距离的准确性关键取决于对生物分子和自旋标记之间相互作用的理解。在这项工作中,我们考虑了这种至关重要的相互作用及其对TAM标记的DNA中脉冲EPR距离测量的影响。使用方向选择性的高频(94 GHz)双电子电子共振(DEER),我们证明了DNA末端和TAM标签之间有很强的特异性相互作用,从而严重限制了它们的构象迁移率。对此类相互作用的理解为选择最佳TAM标记策略的方法提供了指导,从而完善了在生理条件下核酸及其复合物中纳米级EPR距离的测量方法。

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