首页> 外文期刊>Journal of synchrotron radiation >Radiation damage to protein specimens from electron beam imaging and diffraction: a mini-review of anti-damage approaches, with special reference to synchrotron X-ray crystallography
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Radiation damage to protein specimens from electron beam imaging and diffraction: a mini-review of anti-damage approaches, with special reference to synchrotron X-ray crystallography

机译:电子束成像和衍射对蛋白质标本的辐射损伤:抗损伤方法的简要回顾,特别涉及同步加速器X射线晶体学

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摘要

Recent research progress using X-ray cryo-crystallography with the photon beams from third-generation synchrotron sources has resulted in recognition that this intense radiation commonly damages protein samples even when they are held at 100 K. Other structural biologists examining thin protein crystals or single particle specimens encounter similar radiation damage problems during electron diffraction and imaging, but have developed some effective countermeasures. The aim of this concise review is to examine whether analogous approaches can be utilized to alleviate the X-ray radiation damage problem in synchrotron macromolecular crystallography. The critical discussion of this question is preceded by presentation of background material on modern technical procedures with electron beam instruments using 300-400 kV accelerating voltage, low-dose exposures for data recording, and protection of protein specimens by cryogenic cooling; these practical approaches to dealing with electron radiation damage currently permit best resolution levels of 6 angstrom (0.6 nm) for single particle specimens, and of 1.9 angstrom for two-dimensional membrane protein crystals. Final determination of the potential effectiveness and practical value of using such new or unconventional ideas will necessitate showing, by experimental testing, that these produce significantly improved protection of three-dimensional protein crystals during synchrotron X-ray diffraction.
机译:X射线冷冻晶体学与来自第三代同步加速器源的光子束一起使用的最新研究进展已导致人们认识到,这种强辐射通常会损坏蛋白质样品,即使将其保持在100 K时也是如此。其他研究薄蛋白质晶体或单个蛋白质的结构生物学家粒子标本在电子衍射和成像过程中也遇到了类似的辐射损伤问题,但已开发出一些有效的对策。这篇简要综述的目的是研究在同步加速器大分子晶体学中是否可以使用类似的方法来缓解X射线辐射损伤问题。在对这个问题进行批判性讨论之前,先介绍了使用300-400 kV加速电压的电子束仪器,现代技术程序中的背景材料,用于数据记录的低剂量暴露以及通过低温冷却保护蛋白质标本的方法;这些处理电子辐射损伤的实用方法目前允许单颗粒样品的最佳分辨率为6埃(0.6 nm),而二维膜蛋白晶体的最佳分辨率为1.9埃。最终确定使用这种新方法或非常规方法的潜在有效性和实用价值将需要通过实验测试证明,这些方法在同步加速器X射线衍射过程中对三维蛋白质晶体产生了显着改善的保护作用。

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