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An artificial PPR scaffold for programmable RNA recognition

机译:人工PPR支架,用于可编程RNA识别

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摘要

Pentatricopeptide repeat (PPR) proteins control diverse aspects of RNA metabolism in eukaryotic cells. Although recent computational and structural studies have provided insights into RNA recognition by PPR proteins, their highly insoluble nature and inconsistencies between predicted and observed modes of RNA binding have restricted our understanding of their biological functions and their use as tools. Here we use a consensus design strategy to create artificial PPR domains that are structurally robust and can be programmed for sequence-specific RNA binding. The atomic structures of these artificial PPR domains elucidate the structural basis for their stability and modelling of RNA-protein interactions provides mechanistic insights into the importance of RNA-binding residues and suggests modes of PPR-RNA association. The modular mode of RNA binding by PPR proteins holds great promise for the engineering of new tools to target RNA and to understand the mechanisms of gene regulation by natural PPR proteins.
机译:五肽重复序列(PPR)蛋白控制真核细胞中RNA代谢的各个方面。尽管最近的计算和结构研究提供了对PPR蛋白质识别RNA的见解,但它们的高度不溶性以及预测和观察到的RNA结合模式之间的不一致限制了我们对它们的生物学功能及其用作工具的理解。在这里,我们使用共识设计策略来创建人工PPR结构域,该结构结构坚固并且可以针对序列特异性RNA结合进行编程。这些人工PPR结构域的原子结构阐明了其稳定性的结构基础,RNA-蛋白质相互作用的建模为了解RNA结合残基的重要性提供了机械原理,并提出了PPR-RNA缔合的模式。 PPR蛋白与RNA结合的模块化模式为工程设计靶向RNA的新工具和了解天然PPR蛋白进行基因调控的机制大有希望。

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