Unzai Satoru
Department of Frontier Bioscience, Faculty of Bioscience and Applied Chemistry, Hosei University, 3-7-2, Kajino-cho, Koganei, Tokyo, 184-8584, Japan.
Biophys Rev. 2018 Apr;10(2):229-233. doi: 10.1007/s12551-017-0340-0. Epub 2017 Nov 29.
Researchers in the field of structural biology, especially X-ray crystallography and protein nuclear magnetic resonance, are interested in knowing as much as possible about the state of their target protein in solution. Not only is this knowledge relevant to studies of biological function, it also facilitates determination of a protein structure using homogeneous monodisperse protein samples. A researcher faced with a new protein to study will have many questions even after that protein has been purified. Analytical ultracentrifugation (AUC) can provide all of this information readily from a small sample in a non-destructive way, without the need for labeling, enabling structure determination experiments without any wasting time and material on uncharacterized samples. In this article, I use examples to illustrate how AUC can contribute to protein structural analysis. Integrating information from a variety of biophysical experimental methods, such as X-ray crystallography, small angle X-ray scattering, electrospray ionization-mass spectrometry, AUC allows a more complete understanding of the structure and function of biomacromolecules.
结构生物学领域的研究人员,尤其是X射线晶体学和蛋白质核磁共振领域的研究人员,希望尽可能多地了解其目标蛋白质在溶液中的状态。这些知识不仅与生物学功能研究相关,还有助于使用均一的单分散蛋白质样品确定蛋白质结构。即使在蛋白质纯化之后,面对一种新的待研究蛋白质的研究人员仍会有许多问题。分析超速离心(AUC)可以以非破坏性的方式从小样品中轻松提供所有这些信息,无需标记,从而使结构测定实验无需在未表征的样品上浪费任何时间和材料。在本文中,我将通过实例说明AUC如何有助于蛋白质结构分析。结合来自多种生物物理实验方法(如X射线晶体学、小角X射线散射、电喷雾电离质谱)的信息,AUC能够更全面地了解生物大分子的结构和功能。