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New Developments in Spin Labels for Pulsed Dipolar EPR

机译:脉冲偶极EPR自旋标签的新发展

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摘要

Spin labelling is a chemical technique that enables the integration of a molecule containing an unpaired electron into another framework for study. Given the need to understand the structure, dynamics, and conformational changes of biomacromolecules, spin labelling provides a relatively non-intrusive technique and has certain advantages over X-ray crystallography; which requires high quality crystals. The technique relies on the design of binding probes that target a functional group, for example, the thiol group of a cysteine residue within a protein. The unpaired electron is typically supplied through a nitroxide radical and sterically shielded to preserve stability. Pulsed electron paramagnetic resonance (EPR) techniques allow small magnetic couplings to be measured (e.g., <50 MHz) providing information on single label probes or the dipolar coupling between multiple labels. In particular, distances between spin labels pairs can be derived which has led to many protein/enzymes and nucleotides being studied. Here, we summarise recent examples of spin labels used for pulse EPR that serve to illustrate the contribution of chemistry to advancing discoveries in this field.
机译:自旋标记是一种化学技术,可将包含未配对电子的分子整合到另一个研究框架中。考虑到需要了解生物大分子的结构,动力学和构象变化,自旋标记提供了一种相对非侵入性的技术,与X射线晶体学相比具有某些优势;需要高质量的晶体。该技术依赖于结合探针的设计,该结合探针靶向功能基团,例如蛋白质内半胱氨酸残基的巯基。未成对的电子通常通过氮氧自由基提供并被空间屏蔽以保持稳定性。脉冲电子顺磁共振(EPR)技术允许测量小的磁耦合(例如,<50 MHz),从而提供有关单个标记探针或多个标记之间的偶极耦合的信息。特别地,可以得出自旋标记对之间的距离,这导致许多蛋白质/酶和核苷酸被研究。在这里,我们总结了用于脉冲EPR的自旋标记的最新例子,这些例子说明了化学对这一领域中新发现的贡献。

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