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用于原位晶体X射线衍射和用于串行晶体学的原位动态光散射的微流控芯片

Microfluidic Chips for In Situ Crystal X-ray Diffraction and In Situ Dynamic Light Scattering for Serial Crystallography.

作者信息

Gicquel Yannig, Schubert Robin, Kapis Svetlana, Bourenkov Gleb, Schneider Thomas, Perbandt Markus, Betzel Christian, Chapman Henry N, Heymann Michael

机构信息

Center for Free Electron Laser Science, DESY; Department of Physics, University of Hamburg.

Institute for Biochemistry and Molecular Biology, Laboratory for Structural Biology of Infection and Inflammation, University of Hamburg; The Hamburg Center for Ultrafast Imaging, University of Hamburg; Integrated Biology Infrastructure Life-Science Facility at the European XFEL (XBI).

出版信息

J Vis Exp. 2018 Apr 24(134):57133. doi: 10.3791/57133.

Abstract

This protocol describes fabricating microfluidic devices with low X-ray background optimized for goniometer based fixed target serial crystallography. The devices are patterned from epoxy glue using soft lithography and are suitable for in situ X-ray diffraction experiments at room temperature. The sample wells are lidded on both sides with polymeric polyimide foil windows that allow diffraction data collection with low X-ray background. This fabrication method is undemanding and inexpensive. After the sourcing of a SU-8 master wafer, all fabrication can be completed outside of a cleanroom in a typical research lab environment. The chip design and fabrication protocol utilize capillary valving to microfluidically split an aqueous reaction into defined nanoliter sized droplets. This loading mechanism avoids the sample loss from channel dead-volume and can easily be performed manually without using pumps or other equipment for fluid actuation. We describe how isolated nanoliter sized drops of protein solution can be monitored in situ by dynamic light scattering to control protein crystal nucleation and growth. After suitable crystals are grown, complete X-ray diffraction datasets can be collected using goniometer based in situ fixed target serial X-ray crystallography at room temperature. The protocol provides custom scripts to process diffraction datasets using a suite of software tools to solve and refine the protein crystal structure. This approach avoids the artefacts possibly induced during cryo-preservation or manual crystal handling in conventional crystallography experiments. We present and compare three protein structures that were solved using small crystals with dimensions of approximately 10-20 µm grown in chip. By crystallizing and diffracting in situ, handling and hence mechanical disturbances of fragile crystals is minimized. The protocol details how to fabricate a custom X-ray transparent microfluidic chip suitable for in situ serial crystallography. As almost every crystal can be used for diffraction data collection, these microfluidic chips are a very efficient crystal delivery method.

摘要

本方案描述了用于基于测角仪的固定靶连续晶体学的低X射线背景微流控装置的制造方法。这些装置通过软光刻技术由环氧胶制成图案,适用于室温下的原位X射线衍射实验。样品孔两侧覆盖有聚合物聚酰亚胺箔窗,可在低X射线背景下收集衍射数据。这种制造方法要求不高且成本低廉。在获取SU-8母版晶圆后,所有制造工作都可以在典型的研究实验室环境中的洁净室外完成。芯片设计和制造方案利用毛细管阀将水相反应微流控地分离成确定的纳升大小的液滴。这种加载机制避免了样品因通道死体积而损失,并且无需使用泵或其他流体驱动设备即可轻松手动完成。我们描述了如何通过动态光散射原位监测分离的纳升大小的蛋白质溶液滴,以控制蛋白质晶体的成核和生长。在生长出合适的晶体后,可以使用基于测角仪的原位固定靶连续X射线晶体学在室温下收集完整的X射线衍射数据集。该方案提供了定制脚本,使用一套软件工具来处理衍射数据集,以解析和精修蛋白质晶体结构。这种方法避免了传统晶体学实验中冷冻保存或手动处理晶体过程中可能产生的伪影。我们展示并比较了使用在芯片中生长的尺寸约为10-20 µm的小晶体解析出的三种蛋白质结构。通过原位结晶和衍射,将易碎晶体的处理以及由此产生的机械干扰降至最低。该方案详细介绍了如何制造适用于原位连续晶体学的定制X射线透明微流控芯片。由于几乎每个晶体都可用于衍射数据收集,这些微流控芯片是一种非常高效的晶体输送方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/348c/6100780/be8abbd8d74b/jove-134-57133-0.jpg

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