Rappsilber J, Siniossoglou S, Hurt E C, Mann M
Protein Interaction Laboratory, University of Southern Denmark, Odense, Denmark.
Anal Chem. 2000 Jan 15;72(2):267-75. doi: 10.1021/ac991081o.
Most cellular functions are performed by multi-protein complexes. The identity of the members of such complexes can now be determined by mass spectrometry. Here we show that mass spectrometry can also be used in order to define the spatial organization of these complexes. In this approach, components of a protein complex are purified via molecular interactions using an affinity tagged member and the purified complex is then partially cross-linked. The products are separated by gel electrophoresis and their constituent components identified by mass spectrometry yielding nearest-neighbor relationships. In this study, a member of the yeast nuclear pore complex (Nup85p) was tagged and a six-member sub-complex of the pore was cross-linked and analyzed by 1D SDS-PAGE. Cross-linking reactions were optimized for yield and number of products. Analysis by MALDI mass spectrometry resulted in the identification of protein constituents in the cross-linked bands even at a level of a few hundred femtomoles. Based on these results, a model of the spatial organization of the complex was derived that was later supported by biological experiments. This work demonstrates, that the use of mass spectrometry is the method of choice for analyzing cross-linking experiments aiming on nearest neighbor relationships.
大多数细胞功能由多蛋白复合物执行。如今,此类复合物成员的身份可通过质谱法确定。在此我们表明,质谱法还可用于定义这些复合物的空间组织。在这种方法中,使用亲和标记成员通过分子相互作用纯化蛋白质复合物的组分,然后将纯化的复合物进行部分交联。产物通过凝胶电泳分离,其组成成分通过质谱法鉴定,从而得出最近邻关系。在本研究中,对酵母核孔复合物(Nup85p)的一个成员进行标记,并对该孔的一个六元亚复合物进行交联,然后通过一维SDS-PAGE进行分析。对交联反应的产率和产物数量进行了优化。基质辅助激光解吸电离质谱分析即使在几百飞摩尔的水平也能鉴定出交联条带中的蛋白质成分。基于这些结果,得出了该复合物空间组织的模型,该模型后来得到了生物学实验的支持。这项工作表明,质谱法是分析旨在确定最近邻关系的交联实验的首选方法。