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Advances and opportunities in ultrafast X-ray crystallography and ultrafast structural optical crystallography of nuclear and electronic protein dynamics

机译:超快X射线晶体学和核与电子蛋白质动力学的超快结构光学晶体学的进展和机遇

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摘要

Both nuclear and electronic dynamics contribute to protein function and need multiple and complementary techniques to reveal their ultrafast structural dynamics response. Real-space information obtained from the measurement of electron density dynamics by X-ray crystallography provides aspects of both, while the molecular physics of coherence parameters and frequency-frequency correlation needs spectroscopy methods. Ultrafast pump-probe applications of protein dynamics in crystals provide real-space information through direct X-ray crystallographic structure analysis or through structural optical crystallographic analysis. A discussion of methods of analysis using ultrafast macromolecular X-ray crystallography and ultrafast nonlinear structural optical crystallography is presented. The current and future high repetition rate capabilities provided by X-ray free electron lasers for ultrafast diffraction studies provide opportunities for optical control and optical selection of nuclear coherence which may develop to access higher frequency dynamics through improvements of sensitivity and time resolution to reveal coherence directly. Specific selection of electronic coherence requires optical probes, which can provide real-space structural information through photoselection of oriented samples and specifically in birefringent crystals. Ultrafast structural optical crystallography of photosynthetic energy transfer has been demonstrated, and the theory of two-dimensional structural optical crystallography has shown a method for accessing the structural selection of electronic coherence.
机译:核动力学和电子动力学都有助于蛋白质功能,需要多种互补技术来揭示其超快的结构动力学响应。通过X射线晶体学测量电子密度动力学获得的真实空间信息提供了这两个方面,而相干参数和频率-频率相关性的分子物理学则需要光谱方法。晶体中蛋白质动力学的超快泵浦探针应用通过直接的X射线晶体学结构分析或结构光学晶体学分析提供了真实空间信息。讨论了使用超快速大分子X射线晶体学和超快速非线性结构光学晶体学的分析方法。 X射线自由电子激光为超快衍射研究提供的当前和未来的高重复率功能,为光学控制和光学选择核相干性提供了机会,它们可能会通过提高灵敏度和时间分辨率以直接显示相干性而发展为获取更高频率的动力学。电子相干性的特定选择需要光学探针,该探针可以通过定向样品的光选择,特别是在双折射晶体中的光选择,提供真实空间的结构信息。已经证明了光合能量转移的超快结构光学晶体学,并且二维结构光学晶体学的理论表明了一种访问电子相干结构选择的方法。

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