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In-situ and real-time growth observation of high-quality protein crystals under quasi-microgravity on earth

机译:准微重力作用下地球上高质量蛋白质晶体的原位实时生长观察

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摘要

Precise protein structure determination provides significant information on life science research, although high-quality crystals are not easily obtained. We developed a system for producing high-quality protein crystals with high throughput. Using this system, gravity-controlled crystallization are made possible by a magnetic microgravity environment. In addition, in-situ and real-time observation and time-lapse imaging of crystal growth are feasible for over 200 solution samples independently. In this paper, we also report results of crystallization experiments for two protein samples. Crystals grown in the system exhibited magnetic orientation and showed higher and more homogeneous quality compared with the control crystals. The structural analysis reveals that making use of the magnetic microgravity during the crystallization process helps us to build a well-refined protein structure model, which has no significant structural differences with a control structure. Therefore, the system contributes to improvement in efficiency of structural analysis for “difficult” proteins, such as membrane proteins and supermolecular complexes.
机译:精确的蛋白质结构测定可提供有关生命科学研究的重要信息,尽管不容易获得高质量的晶体。我们开发了高产量生产高质量蛋白质晶体的系统。使用该系统,可以通过磁性微重力环境实现重力控制的结晶。此外,对200多个溶液样品独立进行晶体生长的实时和实时观察以及延时成像是可行的。在本文中,我们还报告了两种蛋白质样品的结晶实验结果。与对照晶体相比,在系统中生长的晶体表现出磁取向并且显示出更高和更均匀的质量。结构分析表明,在结晶过程中利用磁性微重力可以帮助我们建立精细的蛋白质结构模型,与控制结构没有明显的结构差异。因此,该系统有助于提高“困难”蛋白质(例如膜蛋白质和超分子复合物)的结构分析效率。

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