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A microfluidic device for both on-chip dialysis protein crystallization and in situ X-ray diffraction

机译:用于片上透析蛋白结晶和原位X射线衍射的微流体装置

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This paper reports a versatile microfluidic chip developed for on-chip crystallization of proteins through the dialysis method and in situ X-ray diffraction experiments. A microfabrication process enabling the integration of regenerated cellulose dialysis membranes between two layers of the microchip is thoroughly described. We also describe a rational approach for optimizing on-chip protein crystallization via chemical composition and temperature control, allowing the crystal size, number and quality to be tailored. Combining optically transparent microfluidics and dialysis provides both precise control over the experiment and reversible exploration of the crystallization conditions. In addition, the materials composing the microfluidic chip were tested for their transparency to X-rays in order to assess their compatibility for in situ diffraction data collection. Background scattering was evaluated using a synchrotron X-ray source and the background noise generated by our microfluidic device was compared to that produced by commercial crystallization plates used for diffraction experiments at room temperature. Once crystals of 3 model proteins (lysozyme, IspE, and insulin) were grown on-chip, the microchip was mounted onto the beamline and partial diffraction data sets were collected in situ from several isomorphous crystals and were merged to a complete data set for structure determination. We therefore propose a robust and inexpensive way to fabricate microchips that cover the whole pipeline from crystal growth to the beam and does not require any handling of the protein crystals prior to the diffraction experiment, allowing the collection of crystallographic data at room temperature for solving the three-dimensional structure of the proteins under study. The results presented here allow serial crystallography experiments on synchrotrons and X-ray lasers under dynamically controllable sample conditions to be observed using the developed microchips.
机译:本文通过透析方法和原位X射线衍射实验报告了开发用于蛋白质的片上结晶的通用微流体芯片。微细加工过程能够彻底描述在两层微芯片之间整合再生纤维素透析膜。我们还描述了通过化学组成和温度控制优化片上蛋白质结晶的合理方法,允许量身定制晶体尺寸,数量和质量。结合光学透明的微流体和透析可在实验和可逆勘探对结晶条件进行精确控制。此外,测试组成微流体芯片的材料以获得X射线的透明度,以便评估它们对原位衍射数据收集的兼容性。使用Synchrotron X射线源评估背景散射,并将通过我们的微流体装置产生的背景噪声与用于在室温下的衍射实验的商业结晶板产生的背景噪声进行比较。一旦3种模型蛋白(溶菌酶,ISPE和胰岛素)的晶体在片上生长,将微芯片安装到梁线上,并且部分衍射数据组原位收集来自多个同构晶体,并合并到用于结构的完整数据集决心。因此,我们提出了一种坚固且廉价的方式来制造覆盖整个管道的微档,该微芯片将整个管道从晶体生长到梁,并且不需要在衍射实验之前处理蛋白质晶体,允许在室温下收集晶体数据以解决求解研究中蛋白质的三维结构。这里呈现的结果允许在使用开发的微芯片的动态可控的样本条件下进行连续晶体学实验和在动态可控的样本条件下观察。

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