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q Serial Femtosecond Crystallography Opens New Avenues for Structural Biology

机译:飞秒系列晶体学为结构生物学开辟了新途径

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Free electron lasers (FELs) provide X-ray pulses in the femtosecond time domain with up to 10 12 higher photon flux than synchrotrons and open new avenues for the determination of difficult to crystallize proteins, like large complexes and human membrane proteins. While the X-ray pulses are so strong that they destroy any solid material, the crystals diffract before they are destroyed. The most successful application of FELs for biology has been the method of serial femtosecond crystallography (SFX) where nano or microcrystals are delivered to the FEL beam in a stream of their mother liquid at room temperature, which ensures the replenishment of the sample before the next X-ray pulse arrives. New injector technology allows also for the delivery of crystal in lipidic cubic phases or agarose, which reduces the sample amounts for an SFX data set by two orders of magnitude. Time-resolved SFX also allows for analysis of the dynamics of biomolecules, the proof of principle being recently shown for light-induced reactions in photosystem II and photoactive yellow protein. An SFX data sets consist of thousands of single crystal snapshots in random orientations, which can be analyzed now "on the fly" by data analysis programs specifically developed for SFX, but de-novo phasing is still a challenge, that might be overcome by two-color experiments or phasing by shape transforms.
机译:自由电子激光(FEL)在飞秒时域中提供的X射线脉冲的光子通量比同步加速器高多达10 12,并为确定难以结晶的蛋白质(例如大复合物和人膜蛋白质)开辟了新途径。尽管X射线脉冲是如此之强,以至于它们破坏了任何固体物质,但晶体在被破坏之前就发生了衍射。 FEL在生物学上最成功的应用是串行飞秒晶体学(SFX)的方法,其中纳米或微晶在室温下以其母液流传递到FEL束中,这确保了下一次样品的补充X射线脉冲到达。新的进样器技术还允许以脂质立方相或琼脂糖形式递送晶体,从而将SFX数据集的样本量减少了两个数量级。时间分辨的SFX还可以分析生物分子的动力学,最近证明了光敏系统II和光敏黄色蛋白中光诱导反应的原理证明。 SFX数据集由成千上万个随机取向的单晶快照组成,现在可以通过专门为SFX开发的数据分析程序“即时”对其进行分析,但是去相变仍然是一个挑战,可以通过两个方法克服颜色实验或通过形状变换进行定相。

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