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Lessons from crystals gown in the Advanced Protein Crystallisation Facility for conventional crystallisation applied to structural biology

机译:高级蛋白质结晶设施中用于常规结晶的长袍晶体的教训应用于结构生物学

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The crystallographic quality of protein crystals that were grown in microgravity has been compared to that of crystals that were grown in parallel on earth gravity under otherwise identical conditions. A goal of this comparison was to assess if a more accurate 3D-structure can be derived from crystallographic analysis of the former crystals. Therefore, the properties of crystals prepared with the Advanced Protein Crystallisation Facility (APCF) on earth and in orbit during the last decade were evaluated. A statistical analysis reveals that about half of the crystals produced under microgravity had a superior X-ray diffraction limit with respect of terrestrial controls. Eleven protein structures could be determined at previously unachieved resolutions using crystals obtained in the APCF. Microgravity induced features of the most relevant structures are reported. A second goal of this study was to identify the cause of the crystal quality enhancement useful for structure determination. No correlations between the effect of microgravity and other system-dependent parameters, such as isoelectric point or crystal solvent content, were found except the reduced convection during the crystallisation process. Thus, crystal growth under diffusive regime appears to be the key parameter explaining the beneficial effect of microgravity on crystal quality. The mimicry of these effects on earth in gels or in capillary tubes is discussed and the practical consequences for structural biology highlighted. (C) 2005 Elsevier B.V. All rights reserved.
机译:将在微重力下生长的蛋白质晶体的晶体学质量与在其他重力条件下在地球重力下平行生长的晶体的晶体学质量进行了比较。进行比较的目的是评估是否可以从先前晶体的晶体学分析中得出更准确的3D结构。因此,评估了近十年来在地球上和在轨道上用高级蛋白质结晶设施(APCF)制备的晶体的特性。统计分析表明,在微重力作用下产生的晶体中,约有一半具有相对于陆地对照而言更高的X射线衍射极限。可以使用APCF中获得的晶体,以以前无法实现的分辨率确定11种蛋白质结构。报告了最相关结构的微重力诱导特征。这项研究的第二个目标是确定有助于结构确定的晶体质量提高的原因。除结晶过程中对流减少外,未发现微重力作用与其他系统相关参数(例如等电点或晶体溶剂含量)之间的相关性。因此,在扩散状态下的晶体生长似乎是解释微重力对晶体质量的有益影响的关键参数。讨论了在凝胶或毛细管中模拟这些对地球的影响,并突出了对结构生物学的实际影响。 (C)2005 Elsevier B.V.保留所有权利。

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