以x射线衍射为极限:飞秒x射线脉冲的大分子结构和同步辐射细胞的衍射显微镜。

Jianwei Miao, Henry N Chapman, Janos Kirz, David Sayre, Keith O Hodgson
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引用次数: 63

摘要

最近的工作是将x射线晶体学的方法扩展到非结晶样品的结构测定。相位问题采用过采样方法解决,该方法利用了非晶样品的“连续”衍射图样。在这里,我们回顾了这种新发展的技术的原理,并讨论了正在进行的实验成像非周期性物体,如细胞和细胞结构,利用相干和明亮的X射线产生的第三代同步加速器源。从长远来看,该技术可能适用于使用预期的x射线自由电子激光器对单个生物分子成像。到目前为止,计算机模拟已经证明了两个重要步骤:(a)通过使用极强的飞秒x射线脉冲,可以在辐射损伤表现出来之前记录大分子的衍射图案;(b)相位信息可以用从头算的方式从一组计算的单个蛋白质分子的噪声衍射图中检索出来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Taking X-ray diffraction to the limit: macromolecular structures from femtosecond X-ray pulses and diffraction microscopy of cells with synchrotron radiation.

Recent work is extending the methodology of X-ray crystallography to the structure determination of noncrystalline specimens. The phase problem is solved using the oversampling method, which takes advantage of "continuous" diffraction patterns from noncrystalline specimens. Here we review the principle of this newly developed technique and discuss the ongoing experiments of imaging nonperiodic objects, such as cells and cellular structures, using coherent and bright X rays produced by third-generation synchrotron sources. In the longer run, the technique may be applicable to image single biomolecules using anticipated X-ray free electron lasers. Here, computer simulations have so far demonstrated two important steps: (a) by using an extremely intense femtosecond X-ray pulse, a diffraction pattern can be recorded from a macromolecule before radiation damage manifests itself; and (b) the phase information can be retrieved in an ab initio fashion from a set of calculated noisy diffraction patterns of single protein molecules.

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