Max Planck Institute for Medical Research, Jahnstrasse 29, Heidelberg, Germany.
SLAC National Accelerator Laboratory, Menlo Park, CA, USA.
Nat Commun. 2021 Mar 15;12(1):1672. doi: 10.1038/s41467-021-21819-8.
X-ray free-electron lasers (XFELs) enable obtaining novel insights in structural biology. The recently available MHz repetition rate XFELs allow full data sets to be collected in shorter time and can also decrease sample consumption. However, the microsecond spacing of MHz XFEL pulses raises new challenges, including possible sample damage induced by shock waves that are launched by preceding pulses in the sample-carrying jet. We explored this matter with an X-ray-pump/X-ray-probe experiment employing haemoglobin microcrystals transported via a liquid jet into the XFEL beam. Diffraction data were collected using a shock-wave-free single-pulse scheme as well as the dual-pulse pump-probe scheme. The latter, relative to the former, reveals significant degradation of crystal hit rate, diffraction resolution and data quality. Crystal structures extracted from the two data sets also differ. Since our pump-probe attributes were chosen to emulate EuXFEL operation at its 4.5 MHz maximum pulse rate, this prompts concern about such data collection.
无射线自由电子激光器(XFEL)可用于获得结构生物学的新见解。最近可用的兆赫兹重复率 XFEL 允许在更短的时间内收集完整的数据集,并且还可以减少样品消耗。然而,兆赫兹 XFEL 脉冲的微秒间隔带来了新的挑战,包括可能由前一个脉冲在载样射流中产生的冲击波引起的样品损伤。我们通过使用血红蛋白微晶体的 X 射线泵/ X 射线探测实验来探索这个问题,这些微晶体通过液体射流输送到 XFEL 光束中。使用无冲击波单脉冲方案和双脉冲泵探测方案收集了衍射数据。与前者相比,后者显著降低了晶体命中率、衍射分辨率和数据质量。从两个数据集提取的晶体结构也有所不同。由于我们的泵探测属性是为了模拟 EuXFEL 在其 4.5MHz 最大脉冲率下的运行而选择的,这引起了对这种数据采集的关注。