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Identification of Protein Complexes in Escherichia coli using Sequential Peptide Affinity Purification in Combination with Tandem Mass Spectrometry

机译:串联肽亲和纯化与串联质谱联用鉴定大肠杆菌中的蛋白质复合物

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摘要

Since most cellular processes are mediated by macromolecular assemblies, the systematic identification of protein-protein interactions (PPI) and the identification of the subunit composition of multi-protein complexes can provide insight into gene function and enhance understanding of biological systems1, 2. Physical interactions can be mapped with high confidence vialarge-scale isolation and characterization of endogenous protein complexes under near-physiological conditions based on affinity purification of chromosomally-tagged proteins in combination with mass spectrometry (APMS). This approach has been successfully applied in evolutionarily diverse organisms, including yeast, flies, worms, mammalian cells, and bacteria1-6. In particular, we have generated a carboxy-terminal Sequential Peptide Affinity (SPA) dual tagging system for affinity-purifying native protein complexes from cultured gram-negative Escherichia coli, using genetically-tractable host laboratory strains that are well-suited for genome-wide investigations of the fundamental biology and conserved processes of prokaryotes1, 2, 7. Our SPA-tagging system is analogous to the tandem affinity purification method developed originally for yeast8, 9, and consists of a calmodulin binding peptide (CBP) followed by the cleavage site for the highly specific tobacco etch virus (TEV) protease and three copies of the FLAG epitope (3X FLAG), allowing for two consecutive rounds of affinity enrichment. After cassette amplification, sequence-specific linear PCR products encoding the SPA-tag and a selectable marker are integrated and expressed in frame as carboxy-terminal fusions in a DY330 background that is induced to transiently express a highly efficient heterologous bacteriophage lambda recombination system10. Subsequent dual-step purification using calmodulin and anti-FLAG affinity beads enables the highly selective and efficient recovery of even low abundance protein complexes from large-scale cultures. Tandem mass spectrometry is then used to identify the stably co-purifying proteins with high sensitivity (low nanogram detection limits).Here, we describe detailed step-by-step procedures we commonly use for systematic protein tagging, purification and mass spectrometry-based analysis of soluble protein complexes from E. coli, which can be scaled up and potentially tailored to other bacterial species, including certain opportunistic pathogens that are amenable to recombineering. The resulting physical interactions can often reveal interesting unexpected components and connections suggesting novel mechanistic links. Integration of the PPI data with alternate molecular association data such as genetic (gene-gene) interactions and genomic-context (GC) predictions can facilitate elucidation of the global molecular organization of multi-protein complexes within biological pathways. The networks generated for E. coli can be used to gain insight into the functional architecture of orthologous gene products in other microbes for which functional annotations are currently lacking.
机译:由于大多数细胞过程是由大分子组装介导的,因此蛋白质-蛋白质相互作用(PPI)的系统鉴定和多蛋白质复合物亚基组成的鉴定可提供对基因功能的了解并增强对生物学系统的了解 1, 2 。通过结合染色体标记蛋白的亲和纯化和质谱法(APMS),可以在接近生理条件下大规模分离和表征内源蛋白复合物,从而以高可信度定位物理相互作用。该方法已成功应用于进化多样的生物中,包括酵母,果蝇,蠕虫,哺乳动物细胞和细菌 1-6 。尤其是,我们已经使用适合于全基因组的可遗传处理的宿主实验室菌株,生成了一个羧基末端顺序肽亲和力(SPA)双标签系统,用于从培养的革兰氏阴性大肠杆菌中亲和纯化天然蛋白复合物。原核生物的基本生物学和保守过程的研究 1,2,7 。我们的SPA标签系统类似于最初为酵母 8,9 开发的串联亲和纯化方法,由钙调蛋白结合肽(CBP)和高特异性烟草蚀刻病毒的切割位点组成(TEV)蛋白酶和FLAG表位的三个副本(3X FLAG),可以进行连续两轮亲和力富集。盒扩增后,将编码SPA标签和选择标记的序列特异性线性PCR产物整合并在DY330背景下以羧基末端融合物的形式在框架中表达,并诱导瞬时表达高效异源噬菌体λ重组系统。 > 10 。随后使用钙调蛋白和抗FLAG亲和珠进行的两步纯化可从大规模培养物中高度选择性,高效地回收甚至低丰度的蛋白质复合物。然后,将串联质谱用于鉴定具有高灵敏度(低纳克检测限)的稳定共纯化的蛋白质。在此,我们描述了通常用于系统蛋白质标签,纯化和基于质谱的分析的详细分步程序来自大肠杆菌的可溶蛋白复合物,可以按比例放大并可能适应其他细菌种类,包括适合重组的某些机会性病原体。所产生的物理交互作用通常可以揭示有趣的意外组件和连接,从而暗示新颖的机械链接。 PPI数据与其他分子关联数据(例如遗传(基因-基因)相互作用和基因组背景(GC)预测)的整合可以促进阐明生物途径内多蛋白复合物的整体分子组织。为大肠杆菌生成的网络可用于深入了解目前尚缺乏功能注释的其他微生物中直系同源基因产物的功能架构。

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