Van Leene Jelle, Stals Hilde, Eeckhout Dominique, Persiau Geert, Van De Slijke Eveline, Van Isterdael Gert, De Clercq Annelies, Bonnet Eric, Laukens Kris, Remmerie Noor, Henderickx Kim, De Vijlder Thomas, Abdelkrim Azmi, Pharazyn Anne, Van Onckelen Harry, Inzé Dirk, Witters Erwin, De Jaeger Geert
Department of Plant Systems Biology, Flanders Institute for Biotechnology, B-9052 Gent, Belgium.
Mol Cell Proteomics. 2007 Jul;6(7):1226-38. doi: 10.1074/mcp.M700078-MCP200. Epub 2007 Apr 9.
Defining protein complexes is critical to virtually all aspects of cell biology because many cellular processes are regulated by stable protein complexes, and their identification often provides insights into their function. We describe the development and application of a high throughput tandem affinity purification/mass spectrometry platform for cell suspension cultures to analyze cell cycle-related protein complexes in Arabidopsis thaliana. Elucidation of this protein-protein interaction network is essential to fully understand the functional differences between the highly redundant cyclin-dependent kinase/cyclin modules, which are generally accepted to play a central role in cell cycle control, in all eukaryotes. Cell suspension cultures were chosen because they provide an unlimited supply of protein extracts of actively dividing and undifferentiated cells, which is crucial for a systematic study of the cell cycle interactome in the absence of plant development. Here we report the mapping of a protein interaction network around six known core cell cycle proteins by an integrated approach comprising generic Gateway-based vectors with high cloning flexibility, the fast generation of transgenic suspension cultures, tandem affinity purification adapted for plant cells, matrix-assisted laser desorption ionization tandem mass spectrometry, data analysis, and functional assays. We identified 28 new molecular associations and confirmed 14 previously described interactions. This systemic approach provides new insights into the basic cell cycle control mechanisms and is generally applicable to other pathways in plants.
定义蛋白质复合物对于细胞生物学的几乎所有方面都至关重要,因为许多细胞过程都由稳定的蛋白质复合物调控,而且对它们的鉴定往往能为其功能提供深入了解。我们描述了一种用于细胞悬浮培养的高通量串联亲和纯化/质谱平台的开发与应用,以分析拟南芥中与细胞周期相关的蛋白质复合物。阐明这种蛋白质-蛋白质相互作用网络对于全面理解高度冗余的细胞周期蛋白依赖性激酶/细胞周期蛋白模块之间的功能差异至关重要,这些模块在所有真核生物的细胞周期控制中普遍被认为起着核心作用。选择细胞悬浮培养是因为它们能提供无限量的活跃分裂且未分化细胞的蛋白质提取物,这对于在没有植物发育干扰的情况下系统研究细胞周期相互作用组至关重要。在此,我们报告通过一种综合方法绘制了围绕六种已知核心细胞周期蛋白的蛋白质相互作用网络,该方法包括具有高克隆灵活性的基于通用Gateway的载体、快速生成转基因悬浮培养物、适用于植物细胞的串联亲和纯化、基质辅助激光解吸电离串联质谱、数据分析以及功能测定。我们鉴定出28种新的分子关联,并证实了14种先前描述的相互作用。这种系统方法为基本细胞周期控制机制提供了新的见解,并且普遍适用于植物中的其他途径。