一种高透明度、微图像化芯片,用于微晶体在自然生长条件下的x射线衍射分析。

Thomas D Murray, Artem Y Lyubimov, Craig M Ogata, Huy Vo, Monarin Uervirojnangkoorn, Axel T Brunger, James M Berger
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引用次数: 70

摘要

微晶体是x射线衍射法测定大分子结构的一个重要障碍。虽然微聚焦同步加速器光束线和x射线自由电子激光器(XFELs)可以从微晶体中收集可解释的衍射数据,但需要有效的方法来收集小体积(
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A high-transparency, micro-patternable chip for X-ray diffraction analysis of microcrystals under native growth conditions.

Microcrystals present a significant impediment to the determination of macromolecular structures by X-ray diffraction methods. Although microfocus synchrotron beamlines and X-ray free-electron lasers (XFELs) can enable the collection of interpretable diffraction data from microcrystals, there is a need for efficient methods of harvesting small volumes (<2 µl) of microcrystals grown under common laboratory formats and delivering them to an X-ray beam source under native growth conditions. One approach that shows promise in overcoming the challenges intrinsic to microcrystal analysis is to pair so-called `fixed-target' sample-delivery devices with microbeam-based X-ray diffraction methods. However, to record weak diffraction patterns it is necessary to fabricate devices from X-ray-transparent materials that minimize background scattering. Presented here is the design of a new micro-diffraction device consisting of three layers fabricated from silicon nitride, photoresist and polyimide film. The chip features low X-ray scattering and X-ray absorption properties, and uses a customizable blend of hydrophobic and hydrophilic surface patterns to help localize microcrystals to defined regions. Microcrystals in their native growth conditions can be loaded into the chips with a standard pipette, allowing data collection at room temperature. Diffraction data collected from hen egg-white lysozyme microcrystals (10-15 µm) loaded into the chips yielded a complete, high-resolution (<1.6 Å) data set sufficient to determine a high-quality structure by molecular replacement. The features of the chip allow the rapid and user-friendly analysis of microcrystals grown under virtually any laboratory format at microfocus synchrotron beamlines and XFELs.

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