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Cryo-EM Data Are Superior to Contact and Interface Information in Integrative Modeling

机译:在集成建模中Cryo-EM数据优于联系和接口信息

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摘要

Protein-protein interactions carry out a large variety of essential cellular processes. Cryo-electron microscopy (cryo-EM) is a powerful technique for the modeling of protein-protein interactions at a wide range of resolutions, and recent developments have caused a revolution in the field. At low resolution, cryo-EM maps can drive integrative modeling of the interaction, assembling existing structures into the map. Other experimental techniques can provide information on the interface or on the contacts between the monomers in the complex. This inevitably raises the question regarding which type of data is best suited to drive integrative modeling approaches. Systematic comparison of the prediction accuracy and specificity of the different integrative modeling paradigms is unavailable to date. Here, we compare EM-driven, interface-driven, and contact-driven integrative modeling paradigms. Models were generated for the protein docking benchmark using the ATTRACT docking engine and evaluated using the CAPRI two-star criterion. At 20 Å resolution, EM-driven modeling achieved a success rate of 100%, outperforming the other paradigms even with perfect interface and contact information. Therefore, even very low resolution cryo-EM data is superior in predicting heterodimeric and heterotrimeric protein assemblies. Our study demonstrates that a force field is not necessary, cryo-EM data alone is sufficient to accurately guide the monomers into place. The resulting rigid models successfully identify regions of conformational change, opening up perspectives for targeted flexible remodeling.
机译:蛋白质-蛋白质相互作用执行各种基本的细胞过程。低温电子显微镜(cryo-EM)是一种强大的技术,可以在很宽的分辨率下为蛋白质-蛋白质相互作用建模,最近的发展引起了该领域的一场革命。在低分辨率下,cryo-EM贴图可以驱动交互的集成建模,将现有结构组装到贴图中。其他实验技术可以提供络合物中单体之间的界面或接触方面的信息。这不可避免地引起了一个问题,即哪种类型的数据最适合驱动集成建模方法。到目前为止,尚无法对不同集成建模范例的预测准确性和特异性进行系统比较。在这里,我们比较了EM驱动,接口驱动和接触驱动的集成建模范例。使用ATTRACT对接引擎为蛋白质对接基准生成模型,并使用CAPRI两星级标准进行评估。在20Å分辨率下,EM驱动的建模取得了100%的成功率,即使具有完美的界面和联系信息也优于其他范例。因此,即使是非常低分辨率的cryo-EM数据在预测异源二聚体和异源三聚体蛋白装配方面也很出色。我们的研究表明,没有必要使用力场,仅低温电磁数据足以准确地将单体引导到位。由此产生的刚性模型成功地识别出构象变化的区域,为有针对性的灵活重塑打开了视野。

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