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Pushing Structural Information into the Yeast Interactome by High-Throughput Protein Docking Experiments

机译:通过高通量蛋白对接实验将结构信息推入酵母相互作用

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The last several years have seen the consolidation of high-throughput proteomics initiatives to identify and characterize protein interactions and macromolecular complexes in model organisms. In particular, more that 10,000 high-confidence protein-protein interactions have been described between the roughly 6,000 proteins encoded in the budding yeast genome (Saccharomyces cerevisiae). However, unfortunately, high-resolution three-dimensional structures are only available for less than one hundred of these interacting pairs. Here, we expand this structural information on yeast protein interactions by running the first-ever high-throughput docking experiment with some of the best state-of-the-art methodologies, according to our benchmarks. To increase the coverage of the interaction space, we also explore the possibility of using homology models of varying quality in the docking experiments, instead of experimental structures, and assess how it would affect the global performance of the methods. In total, we have applied the docking procedure to 217 experimental structures and 1,023 homology models, providing putative structural models for over 3,000 protein-protein interactions in the yeast interactome. Finally, we analyze in detail the structural models obtained for the interaction between SAM1-anthranilate synthase complex and the MET30-RNA polymerase III to illustrate how our predictions can be straightforwardly used by the scientific community. The results of our experiment will be integrated into the general 3D-Repertoire pipeline, a European initiative to solve the structures of as many as possible protein complexes in yeast at the best possible resolution. All docking results are available at http://gatealoy.pcb.ub.es/HT_docking/.
机译:在过去的几年中,高通量蛋白质组学计划得以巩固,以鉴定和表征模型生物体中的蛋白质相互作用和大分子复合物。特别是,已在发芽的酵母基因组(酿酒酵母)中编码的大约6,000种蛋白质之间描述了超过10,000种高可信度蛋白质-蛋白质相互作用。但是,不幸的是,高分辨率的三维结构仅可用于少于一百个这些相互作用的对。在这里,根据我们的基准测试,我们通过使用一些最佳的最新方法进行了首次高通量对接实验,从而扩展了有关酵母蛋白质相互作用的结构信息。为了增加交互空间的覆盖范围,我们还探索了在对接实验中使用质量不同的同源模型代替实验结构的可能性,并评估其将如何影响方法的整体性能。总的来说,我们已将对接程序应用于217个实验结构和1,023个同源性模型,从而为酵母相互作用组中的3,000多个蛋白质-蛋白质相互作用提供了推定的结构模型。最后,我们详细分析了SAM1-邻氨基苯甲酸合酶复合物与MET30-RNA聚合酶III之间相互作用的结构模型,以说明科学界如何直接使用我们的预测。我们的实验结果将被整合到通用的3D库中,这是欧洲一项倡议,旨在以最佳分辨率解决酵母中尽可能多的蛋白质复合物的结构。所有对接结果可在http://gatealoy.pcb.ub.es/HT_docking/中获得。

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