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A crystallographic study of human NONO (p54nrb): overcoming pathological problems with purification data collection and noncrystallographic symmetry

机译:人类NONO(p54nrb)的晶体学研究:通过纯化数据收集和非晶体对称性克服病理学问题

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摘要

Non-POU domain-containing octamer-binding protein (NONO, a.k.a. p54nrb) is a central player in nuclear gene regulation with rapidly emerging medical significance. NONO is a member of the highly conserved Drosophila behaviour/human splicing (DBHS) protein family, a dynamic family of obligatory dimeric nuclear regulatory mediators. However, work with the NONO homodimer has been limited by rapid irreversible sample aggregation. Here, it is reported that l-proline stabilizes purified NONO homodimers, enabling good-quality solution small-angle X-ray structure determination and crystallization. NONO crystallized in the apparent space group P21 with a unique axis (b) of 408.9 Å and with evidence of twinning, as indicated by the cumulative intensity distribution L statistic, suggesting the possibility of space group P1. Structure solution by molecular replacement shows a superhelical arrangement of six NONO homodimers (or 12 in P1) oriented parallel to the long axis, resulting in extensive noncrystallographic symmetry. Further analysis revealed that the crystal was not twinned, but the collected data suffered from highly overlapping reflections that obscured the L-test. Optimized data collection on a new crystal using higher energy X-rays, a smaller beam width and an increased sample-to-detector distance produced non-overlapping reflections to 2.6 Å resolution. The steps taken to analyse and overcome this series of practical difficulties and to produce a biologically informative structure are discussed.
机译:不含POU结构域的八聚体结合蛋白(NONO,a.k.a. p54 nrb )是核基因调控中的重要角色,具有重要的医学意义。 NONO是高度保守的果蝇行为/人类剪接(DBHS)蛋白家族的成员,该家族是一个动态的强制性二聚核调节介质家族。但是,NONO同型二聚体的研究受到快速不可逆的样品聚集的限制。在此,据报道,l-脯氨酸使纯化的NONO同型二聚体稳定,从而能够进行高质量的溶液小角度X射线结构的测定和结晶。 NONO在表观空间群P21中结晶,其唯一轴(b)为408.9Å,并且具有孪生迹象,如累积强度分布L统计量所示,表明存在空间群P1的可能性。通过分子置换的结构解决方案显示了六个NONO同型二聚体(或P1中为12个)的超螺旋排列,平行于长轴取向,导致广泛的非晶体对称性。进一步的分析表明,该晶体没有孪晶,但是收集的数据遭受高度重叠的反射,从而使L检验变得模糊。使用较高能量的X射线,较小的光束宽度和增加的样品到检测器距离,可以在新晶体上优化数据收集,从而产生非重叠的反射,分辨率达到2.6Å。讨论了分析和克服这一系列实际困难并产生生物学信息结构的步骤。

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