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Aligator: A computational tool for optimizing total chemical synthesis of large proteins

机译:避风者:用于优化大蛋白质总体化学合成的计算工具

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摘要

Graphical abstract Display Omitted Abstract The scope of chemical protein synthesis (CPS) continues to expand, driven primarily by advances in chemical ligation tools (e.g., reversible solubilizing groups and novel ligation chemistries). However, the design of an optimal synthesis route can be an arduous and fickle task due to the large number of theoretically possible, and in many cases problematic, synthetic strategies. In this perspective, we highlight recent CPS tool advances and then introduce a new and easy-to-use program, Aligator ( A utomated Ligator ), for analyzing and designing the most efficient strategies for constructing large targets using CPS. As a model set, we selected the E. coli ribosomal proteins and associated factors for computational analysis. Aligator systematically scores and ranks all feasible synthetic strategies for a particular CPS target. The Aligator script methodically evaluates potential peptide segments for a target using a scoring function that includes solubility, ligation site quality, segment lengths, and number of ligations to provide a ranked list of potential synthetic strategies. We demonstrate the utility of Aligator by analyzing three recent CPS projects from our lab: TNFα (157 aa), GroES (97 aa), and DapA (312 aa). As the limits of CPS are extended, we expect that computational tools will play an increasingly important role in the efficient execution of ambitious CPS projects such as production of a mirror-image ribosome.
机译:图形摘要显示省略摘要摘要化学蛋白质合成(CPS)的范围仍然扩展,主要是化学连接工具的进步(例如,可逆增溶组和新型连接化学)驱动。然而,由于大量理论上可能,并且在许多情况下,有问题,合成策略的设计,最佳合成路线的设计可能是艰苦的和凡的任务。在这种观点中,我们突出了最近的CPS工具进步,然后介绍了一种新的和易于使用的程序,避难所(Quomated Ligator),用于分析和设计使用CP构建大型目标的最有效的策略。作为模型集,我们选择了用于计算分析的大肠杆菌核糖体蛋白和相关因素。 Aligator系统地评分并为特定CPS目标排名所有可行的合成策略。避风师脚本用包括溶解度,连接位点质量,段长度和连接数量的潜在合成策略列表提供溶解性,连接位点质量,区段长度和连接数量的评分函数来评估靶的潜在肽段。我们通过分析来自我们的实验室的三个CPS项目,展示了避风者的效用:TNFα(157 AA),Groes(97 AA)和DAPA(312 AA)。随着CPS的限制延长,我们预计计算工具将在高效执行雄心勃勃的CPS项目中发挥越来越重要的作用,例如镜像核糖体的生产。

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