Shelby M L, Gilbile D, Grant T D, Seuring C, Segelke B W, He W, Evans A C, Pakendorf T, Fischer P, Hunter M S, Batyuk A, Barthelmess M, Meents A, Coleman M A, Kuhl T L, Frank M
Lawrence Livermore National Laboratory, Livermore, CA 94550, USA.
University of California at Davis, California, USA.
IUCrJ. 2020 Jan 1;7(Pt 1):30-41. doi: 10.1107/S2052252519014003.
For serial femtosecond crystallography at X-ray free-electron lasers, which entails collection of single-pulse diffraction patterns from a constantly refreshed supply of microcrystalline sample, delivery of the sample into the X-ray beam path while maintaining low background remains a technical challenge for some experiments, especially where this methodology is applied to relatively low-ordered samples or those difficult to purify and crystallize in large quantities. This work demonstrates a scheme to encapsulate biological samples using polymer thin films and graphene to maintain sample hydration in vacuum conditions. The encapsulated sample is delivered into the X-ray beam on fixed targets for rapid scanning using the Roadrunner fixed-target system towards a long-term goal of low-background measurements on weakly diffracting samples. As a proof of principle, we used microcrystals of the 24 kDa rapid encystment protein (REP24) to provide a benchmark for polymer/graphene sandwich performance. The REP24 microcrystal unit cell obtained from our sandwiched in-vacuum sample was consistent with previously established unit-cell parameters and with those measured by us without encapsulation in humidified helium, indicating that the platform is robust against evaporative losses. While significant scattering from water was observed because of the sample-deposition method, the polymer/graphene sandwich itself was shown to contribute minimally to background scattering.
对于X射线自由电子激光下的串行飞秒晶体学,这需要从不断更新的微晶样品供应中收集单脉冲衍射图案,在保持低背景的同时将样品输送到X射线束路径中,对于一些实验来说仍然是一项技术挑战,特别是当这种方法应用于相对低序的样品或那些难以大量纯化和结晶的样品时。这项工作展示了一种使用聚合物薄膜和石墨烯封装生物样品的方案,以在真空条件下保持样品的水合作用。封装后的样品被输送到固定靶上的X射线束中,使用“路行者”固定靶系统进行快速扫描,以实现对弱衍射样品进行低背景测量的长期目标。作为原理验证,我们使用了24 kDa快速包囊蛋白(REP24)的微晶来为聚合物/石墨烯三明治的性能提供基准。从我们的真空夹层样品中获得的REP24微晶晶胞与先前确定的晶胞参数一致,也与我们在加湿氦气中未封装时测量的参数一致,这表明该平台对蒸发损失具有很强的抵抗力。虽然由于样品沉积方法观察到了来自水的显著散射,但聚合物/石墨烯三明治本身对背景散射的贡献最小。