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首页> 外文期刊>Integrative Biology: quantitative biosciences from nano to macro >Extracting physical chemistry from mechanics: a new approach to investigate DNA interactions with drugs and proteins in single molecule experiments
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Extracting physical chemistry from mechanics: a new approach to investigate DNA interactions with drugs and proteins in single molecule experiments

机译:从力学中提取物理化学:在单分子实验中研究DNA与药物和蛋白质相互作用的新方法

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摘要

In this review we focus on the idea of establishing connections between the mechanical properties of DNA-ligand complexes and the physical chemistry of DNA-ligand interactions. This type of connection is interesting because it opens the possibility of performing a robust characterization of such interactions by using only one experimental technique: single molecule stretching. Furthermore, it also opens new possibilities in comparing results obtained by very different approaches, in particular when comparing single molecule techniques to ensemble-averaging techniques. We start the manuscript reviewing important concepts of DNA mechanics, from the basic mechanical properties to the Worm-Like Chain model. Next we review the basic concepts of the physical chemistry of DNA-ligand interactions, revisiting the most important models used to analyze the binding data and discussing their binding isotherms. Then, we discuss the basic features of the single molecule techniques most used to stretch DNA-ligand complexes and to obtain "force x extension'' data, from which the mechanical properties of the complexes can be determined. We also discuss the characteristics of the main types of interactions that can occur between DNA and ligands, from covalent binding to simple electrostatic driven interactions. Finally, we present a historical survey of the attempts to connect mechanics to physical chemistry for DNA-ligand systems, emphasizing a recently developed fitting approach useful to connect the persistence length of DNA-ligand complexes to the physicochemical properties of the interaction. Such an approach in principle can be used for any type of ligand, from drugs to proteins, even if multiple binding modes are present.
机译:在这篇综述中,我们集中在建立DNA-配体复合物的机械性能与DNA-配体相互作用的物理化学之间建立联系的想法。这种类型的连接很有趣,因为它打开了仅使用一种实验技术即单分子拉伸即可对此类相互作用进行可靠表征的可能性。此外,它还为比较通过非常不同的方法获得的结果提供了新的可能性,尤其是在将单分子技术与集成平均技术进行比较时。我们从手稿开始,回顾了DNA力学的重要概念,从基本的机械特性到蠕虫样链模型。接下来,我们回顾DNA-配体相互作用的物理化学的基本概念,重新审视用于分析结合数据并讨论其结合等温线的最重要模型。然后,我们讨论了最常用于拉伸DNA-配体复合物并获得“力x延伸”数据的单分子技术的基本特征,由此可以确定复合物的机械性能。从共价结合到简单的静电驱动相互作用,DNA和配体之间可能发生的主要相互作用类型。最后,我们对DNA-配体系统将力学与物理化学联系起来的尝试进行了历史考察,强调了最近开发的拟合方法可以将DNA-配体复合物的持久长度与相互作用的物理化学性质联系起来,即使存在多种结合模式,这种方法原则上也可以用于从药物到蛋白质的任何类型的配体。

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