Opara Nadia L, Mohacsi Istvan, Makita Mikako, Castano-Diez Daniel, Diaz Ana, Juranić Pavle, Marsh May, Meents Alke, Milne Christopher J, Mozzanica Aldo, Padeste Celestino, Panneels Valérie, Sikorski Marcin, Song Sanghoon, Stahlberg Henning, Vartiainen Ismo, Vera Laura, Wang Meitian, Willmott Philip R, David Christian
C-CINA, Biozentrum, University of Basel, CH-4058 Basel, Switzerland.
Paul Scherrer Institut, CH-5232 Villigen-PSI, Switzerland.
Struct Dyn. 2018 Oct 1;5(5):054303. doi: 10.1063/1.5050618. eCollection 2018 Sep.
The development of X-ray free-electron lasers (XFELs) has opened the possibility to investigate the ultrafast dynamics of biomacromolecules using X-ray diffraction. Whereas an increasing number of structures solved by means of serial femtosecond crystallography at XFELs is available, the effect of radiation damage on protein crystals during ultrafast exposures has remained an open question. We used a split-and-delay line based on diffractive X-ray optics at the Linac Coherent Light Source XFEL to investigate the time dependence of X-ray radiation damage to lysozyme crystals. For these tests, crystals were delivered to the X-ray beam using a fixed-target approach. The presented experiments provide probe signals at eight different delay times between 19 and 213 femtoseconds after a single pump event, thereby covering the time-scales relevant for femtosecond serial crystallography. Even though significant impact on the crystals was observed at long time scales after exposure with a single X-ray pulse, the collected diffraction data did not show significant signal reduction that could be assigned to beam damage on the crystals in the sampled time window and resolution range. This observation is in agreement with estimations of the applied radiation dose, which in our experiment was clearly below the values expected to cause damage on the femtosecond time scale. The experiments presented here demonstrate the feasibility of time-resolved pump-multiprobe X-ray diffraction experiments on protein crystals.
X射线自由电子激光(XFEL)的发展为利用X射线衍射研究生物大分子的超快动力学提供了可能。尽管通过XFEL的串行飞秒晶体学解析的结构数量不断增加,但在超快曝光过程中辐射损伤对蛋白质晶体的影响仍是一个悬而未决的问题。我们利用直线加速器相干光源XFEL上基于衍射X射线光学的分束延迟线,研究了X射线对溶菌酶晶体辐射损伤的时间依赖性。对于这些测试,晶体采用固定靶方法输送到X射线束中。所展示的实验在单个泵浦事件后的19至213飞秒之间的八个不同延迟时间提供探测信号,从而涵盖了与飞秒串行晶体学相关的时间尺度。尽管在单次X射线脉冲曝光后的长时间尺度上观察到对晶体有显著影响,但收集到的衍射数据并未显示出在采样时间窗口和分辨率范围内可归因于光束对晶体损伤的显著信号降低。这一观察结果与所施加辐射剂量的估计一致,在我们的实验中,该剂量明显低于预期在飞秒时间尺度上造成损伤的值。这里展示的实验证明了对蛋白质晶体进行时间分辨泵浦 - 多探针X射线衍射实验的可行性。