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Single-particle structure determination by X-ray free-electron lasers:Possibilities and challenges

机译:X射线自由电子激光器确定的单颗粒结构:可能性与挑战

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摘要

Single-particle structure recovery without crystals or radiation damage is a revolutionary possibility offered by X-ray free-electron lasers, but it involves formidable experimental and data-analytical challenges. Many of these difficulties were encountered during the development of cryogenic electron microscopy of biological systems. Electron microscopy of biological entities has now reached a spatial resolution of about 0.3 nm, with a rapidly emerging capability to map discrete and continuous conformational changes and the energy landscapes of biomolecular machines. Nonetheless, single-particle imaging by X-ray free-electron lasers remains important for a range of applications, including the study of large “electron-opaque” objects and time-resolved examination of key biological processes at physiological temperatures. After summarizing the state of the art in the study of structure and conformations by cryogenicelectronmicroscopy, we identify the primary opportunities and challenges facingX-ray-based single-particle approaches, and possible means for circumventing them.
机译:无晶体或无辐射损伤的单粒子结构恢复是X射线自由电子激光器提供的革命性可能性,但它涉及巨大的实验和数据分析挑战。在生物系统的低温电子显微镜开发过程中遇到了许多这些困难。如今,生物实体的电子显微镜已达到约0.3 nm的空间分辨率,并且具有迅速出现的能够绘制离散和连续构象变化以及生物分子机器的能​​量分布图的能力。尽管如此,通过X射线自由电子激光器进行的单粒子成像对于一系列应用仍然很重要,包括研究大型“电子不透明”物体以及在生理温度下对关键生物过程的时间分辨检查。总结了低温研究结构和构象的最新技术电子显微镜,我们确定了面临的主要机遇和挑战基于X射线的单粒子方法,以及规避它们的可能方法。

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