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A Linear Relationship between Crystal Size and Fragment Binding Time Observed Crystallographically: Implications for Fragment Library Screening Using Acoustic Droplet Ejection

机译:晶体学观察到的晶体大小和片段结合时间之间的线性关系:使用声滴喷射筛选片段库的意义。

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摘要

High throughput screening technologies such as acoustic droplet ejection (ADE) greatly increase the rate at which X-ray diffraction data can be acquired from crystals. One promising high throughput screening application of ADE is to rapidly combine protein crystals with fragment libraries. In this approach, each fragment soaks into a protein crystal either directly on data collection media or on a moving conveyor belt which then delivers the crystals to the X-ray beam. By simultaneously handling multiple crystals combined with fragment specimens, these techniques relax the automounter duty-cycle bottleneck that currently prevents optimal exploitation of third generation synchrotrons. Two factors limit the speed and scope of projects that are suitable for fragment screening using techniques such as ADE. Firstly, in applications where the high throughput screening apparatus is located inside the X-ray station (such as the conveyor belt system described above), the speed of data acquisition is limited by the time required for each fragment to soak into its protein crystal. Secondly, in applications where crystals are combined with fragments directly on data acquisition media (including both of the ADE methods described above), the maximum time that fragments have to soak into crystals is limited by evaporative dehydration of the protein crystals during the fragment soak. Here we demonstrate that both of these problems can be minimized by using small crystals, because the soak time required for a fragment hit to attain high occupancy depends approximately linearly on crystal size.
机译:诸如声滴喷射(ADE)之类的高通量筛选技术极大地提高了从晶体中获取X射线衍射数据的速度。 ADE的一项有前途的高通量筛选应用是将蛋白质晶体与片段库快速结合。通过这种方法,每个片段都可以直接在数据收集介质上或在移动的传送带上浸入蛋白质晶体中,然后将其传送到X射线束中。通过同时处理与碎片样本结合的多个晶体,这些技术可缓解自动安装器的占空比瓶颈,该瓶颈目前阻止了第三代同步加速器的最佳利用。有两个因素限制了适合使用ADE等技术进行片段筛选的项目的速度和范围。首先,在高通量筛选设备位于X射线站内部的应用中(例如上述的传送带系统),数据采集的速度受到每个片段浸入其蛋白质晶体所需时间的限制。其次,在晶体与片段直接在数据采集介质上结合的应用中(包括上述两种ADE方法),片段必须浸入晶体中的最大时间受到片段浸入过程中蛋白质晶体的蒸发脱水的限制。在这里,我们证明了通过使用小晶体可以将这两个问题减至最小,因为击中碎片以达到高占用率所需的浸泡时间大致取决于晶体尺寸。

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