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Automated benchmarking of peptide-MHC class I binding predictions

机译:肽-MHC I类结合预测的自动基准测试

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摘要

>Motivation: Numerous in silico methods predicting peptide binding to major histocompatibility complex (MHC) class I molecules have been developed over the last decades. However, the multitude of available prediction tools makes it non-trivial for the end-user to select which tool to use for a given task. To provide a solid basis on which to compare different prediction tools, we here describe a framework for the automated benchmarking of peptide-MHC class I binding prediction tools. The framework runs weekly benchmarks on data that are newly entered into the Immune Epitope Database (IEDB), giving the public access to frequent, up-to-date performance evaluations of all participating tools. To overcome potential selection bias in the data included in the IEDB, a strategy was implemented that suggests a set of peptides for which different prediction methods give divergent predictions as to their binding capability. Upon experimental binding validation, these peptides entered the benchmark study.>Results: The benchmark has run for 15 weeks and includes evaluation of 44 datasets covering 17 MHC alleles and more than 4000 peptide-MHC binding measurements. Inspection of the results allows the end-user to make educated selections between participating tools. Of the four participating servers, NetMHCpan performed the best, followed by ANN, SMM and finally ARB.>Availability and implementation: Up-to-date performance evaluations of each server can be found online at . All prediction tool developers are invited to participate in the benchmark. Sign-up instructions are available at .>Contact: or >Supplementary information: are available at Bioinformatics online.
机译:>动机:过去几十年来,已经开发出许多计算机模拟方法,可预测肽与主要组织相容性复合体(MHC)I类分子的结合。但是,众多可用的预测工具使最终用户选择用于给定任务的工具变得不容易。为了提供一个比较不同的预测工具的坚实基础,我们在这里描述了肽-MHC I类结合预测工具的自动基准测试框架。该框架针对新输入到免疫表位数据库(IEDB)的数据运行每周基准测试,使公众可以频繁访问所有参与工具的最新性能评估。为了克服IEDB中包含的数据中潜在的选择偏见,实施了一种策略,该策略建议了一组肽,针对这些肽,不同的预测方法对其结合能力给出了不同的预测。经过实验性结合验证后,这些肽进入了基准研究。>结果:基准运行了15周,包括对涵盖17个MHC等位基因和4000多个肽-MHC结合测量值的44个数据集进行评估。对结果的检查允许最终用户在参与工具之间做出有根据的选择。在四台参与的服务器中,NetMHCpan表现最好,其次是ANN,SMM,最后是ARB。>可用性和实现:可在上在线找到每台服务器的最新性能评估。邀请所有预测工具开发人员参加基准测试。有关注册说明,请访问。>联系方式:或>补充信息:可从在线生物信息学获得。

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