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Getting the Most Out of Your Crystals: Data Collection at the New High-Flux Microfocus MX Beamlines at NSLS-II

机译:充分利用晶体:NSLS-II新型高通量Microfocus MX光束线的数据收集

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摘要

Advances in synchrotron technology are changing the landscape of macromolecular crystallography. The two recently opened beamlines at NSLS-II—AMX and FMX—deliver high-flux microfocus beams that open new possibilities for crystallographic data collection. They are equipped with state-of-the-art experimental stations and automation to allow data collection on previously intractable crystals. Optimized data collection strategies allow users to tailor crystal positioning to optimally distribute the X-ray dose over its volume. Vector data collection allows the user to define a linear trajectory along a well diffracting volume of the crystal and perform rotational data collection while moving along the vector. This is particularly well suited to long, thin crystals. We describe vector data collection of three proteins—Akt1, PI3Kα, and CDP-Chase—to demonstrate its application and utility. For smaller crystals, we describe two methods for multicrystal data collection in a single loop, either manually selecting multiple centers (using H108A-PHM as an example), or “raster-collect”, a more automated approach for a larger number of crystals (using CDP-Chase as an example).
机译:同步加速器技术的进步正在改变大分子晶体学的格局。 NSLS-II上最近开放的两条光束线(AMX和FMX)提供高通量微聚焦光束,为结晶数据收集开辟了新的可能性。他们配备了最先进的实验站和自动化功能,可以在以前难以处理的晶体上收集数据。优化的数据收集策略允许用户调整晶体的位置,以在其体积上最佳地分配X射线剂量。矢量数据收集允许用户定义沿晶体的良好衍射体积的线性轨迹,并在沿矢量移动时执行旋转数据收集。这特别适合长而薄的晶体。我们描述了三种蛋白质(Akt1,PI3Kα和CDP-Chase)的矢量数据收集,以证明其应用和实用性。对于较小的晶体,我们描述了在单个循环中收集多晶体数据的两种方法,一种是手动选择多个中心(以H108A-PHM为例),另一种是“光栅收集”,这是一种自动化的方法,适用于大量晶体(以CDP-Chase为例)。

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