MAX IV Laboratory, Lund University, PO Box 118, SE-221 00 Lund, Sweden.
Acta Crystallogr D Struct Biol. 2023 Nov 1;79(Pt 11):1018-1025. doi: 10.1107/S205979832300880X.
In recent years, the emergence of serial crystallography, initially pioneered at X-ray free-electron lasers (XFELs), has sparked a growing interest in collecting macromolecular crystallographic data at room temperature. Various fixed-target serial crystallography techniques have been developed, ranging from commercially available chips to in-house designs implemented at different synchrotron facilities. Nevertheless, there is currently no commercially available chip (known to the authors) specifically designed for the direct handling of oxygen-sensitive samples. This study presents a methodology employing silicon nitride chips arranged in a `sandwich' configuration, enabling reliable room-temperature data collection from oxygen-sensitive samples. The method involves the utilization of a custom-made 3D-printed assembling tool and a MX sample holder. To validate the effectiveness of the proposed method, deoxyhemoglobin and methemoglobin samples were investigated using the BioMAX X-ray macromolecular crystallography beamline, the Balder X-ray absorption spectroscopy beamline and UV-Vis absorption spectroscopy.
近年来,最初由 X 射线自由电子激光(XFEL)开创的连续结晶学的出现,引发了人们在室温下收集大分子结晶学数据的浓厚兴趣。已经开发出了各种固定靶连续结晶学技术,从市售的芯片到在不同同步加速器设施实施的内部设计都有涉及。然而,目前(作者所知)还没有专门设计用于直接处理对氧敏感样品的市售芯片。本研究提出了一种使用氮化硅芯片以“三明治”结构排列的方法,从而能够可靠地从对氧敏感的样品中收集室温数据。该方法涉及使用定制的 3D 打印组装工具和 MX 样品架。为了验证所提出方法的有效性,使用 BioMAX X 射线大分子结晶学光束线、Balder X 射线吸收光谱学光束线和 UV-Vis 吸收光谱学对脱氧血红蛋白和高铁血红蛋白样品进行了研究。