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Towards Realistic Simulations of Macromolecules Irradiated under the Conditions of Coherent Diffraction Imaging with an X-ray Free-Electron Laser

机译:迈向在X射线自由电子激光相干衍射成像条件下照射的大分子的逼真模拟

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Biological samples are highly radiation sensitive. The rapid progress of their radiation damage prevents accurate structure determination of single macromolecular assemblies in standard diffraction experiments. However, computer simulations of the damage formation have shown that the radiation tolerance might be extended at very high intensities with ultrafast imaging such as is possible with the presently developed and operating x-ray free-electron lasers. Recent experiments with free-electron lasers on nanocrystals have demonstrated proof of the imaging principle at resolutions down to 1 . 6 Angstroms. However, there are still many physical and technical problems to be clarified on the way to imaging of single biomolecules at atomic resolution. In particular, theoretical simulations try to address an important question: How does the radiation damage progressing within an imaged single object limit the structural information about this object recorded in its diffraction image during a 3D imaging experiment? This information is crucial for adjusting pulse parameters during imaging so that high-resolution diffraction patterns can be obtained. Further, dynamics simulations should be used to verify the accuracy of the structure reconstruction performed from the experimental data. This is an important issue as the experimentally recorded diffraction signal is recorded from radiation-damaged samples. It also contains various kinds of background. In contrast, the currently used reconstruction algorithms assume perfectly coherent scattering patterns with shot noise only. In this review paper, we discuss the most important processes and effects relevant for imaging-related simulations that are not yet fully understood, or omitted in the irradiation description. We give estimates for their contribution to the overall radiation damage. In this way we can identify unsolved issues and challenges for simulations of x-ray irradiated single molecules relevant for imaging studies. They should be addressed during further development of these simulation tools.
机译:生物样品对辐射高度敏感。它们的辐射损伤的迅速发展阻碍了标准衍射实验中单个大分子组装体的准确结构确定。然而,损伤形成的计算机模拟表明,利用超快成像,辐射耐受性可能会在非常高的强度下得到扩展,例如目前开发和运行中的X射线自由电子激光器所能实现的。在纳米晶体上使用自由电子激光进行的最新实验证明了分辨率低至1的成像原理。 6埃。然而,在原子分辨率下对单个生物分子成像的方式上仍然有许多物理和技术问题需要澄清。特别是,理论上的模拟试图解决一个重要的问题:在3D成像实验中,单个被成像物体内的辐射损害如何限制该物体在其衍射图像中记录的结构信息?该信息对于在成像期间调整脉冲参数至关重要,因此可以获得高分辨率衍射图样。此外,应使用动力学模拟来验证根据实验数据执行的结构重建的准确性。这是一个重要的问题,因为实验记录的衍射信号是从辐射损坏的样品中记录的。它还包含各种背景。相反,当前使用的重建算法仅假设散粒噪声具有完美的相干散射模式。在这篇综述文章中,我们讨论了与成像相关的模拟相关的最重要的过程和效果,这些过程和效果尚未完全理解,或者在辐照描述中被省略。我们给出它们对整体辐射损伤的贡献的估算值。通过这种方式,我们可以确定与成像研究相关的X射线辐射单分子模拟的未解决问题和挑战。在进一步开发这些仿真工具时应解决这些问题。

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