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配体结合时蛋白质结构域运动的自由能景观。

Free-energy landscapes of protein domain movements upon ligand binding.

机构信息

High-Performance Molecular Simulation Team, Computational Systems Biology Research Group, RIKEN Advanced Science Institute, Tsurumi, Yokohama, Japan 230-0046.

出版信息

J Phys Chem B. 2011 Jun 16;115(23):7629-36. doi: 10.1021/jp111902t. Epub 2011 May 24.

Abstract

The conformation and functions of proteins are closely linked, and many proteins undergo conformational changes upon ligand binding. The X-ray crystallographic studies have revealed conformational differences in proteins between the liganded and unliganded states. Currently, the conformational transitions that originate in the ligand binding are explained on the basis of two representative models, the induced-fit and preexisting equilibrium dynamics models. However, the actual dynamics of the proteins remain ambiguous. Though these two models are the extreme ones, it is important to understand the difference between these two, particularly in structural biology and medicinal chemistry studies. Here, we clarified the difference in the mechanisms responsible for the conformational changes induced in two proteins upon ligand binding by examining computationally determined free-energy profiles of the apo- and holoproteins. The lysine/arginine/ornithine-binding protein and maltose/maltodextrin-binding protein were chosen as the target proteins, and the energy profiles were generated by a molecular simulation approach. Our results revealed that fluctuations in the apo state and protein-ligand interactions both play important roles in conformational transition, and the mechanism is highly influenced by the fluctuations in the apo state, which are unique to a particular structure.

摘要

蛋白质的构象和功能密切相关,许多蛋白质在配体结合时会发生构象变化。X 射线晶体学研究揭示了配体结合状态下蛋白质的构象差异。目前,配体结合引发的构象转变可以用两种有代表性的模型来解释,即诱导契合和预先存在的平衡动力学模型。然而,蛋白质的实际动力学仍然不清楚。尽管这两种模型是极端的,但理解它们之间的区别很重要,特别是在结构生物学和药物化学研究中。在这里,我们通过检查apo 态和 holo 态蛋白结合配体后诱导的构象变化的计算确定的自由能谱,阐明了两种蛋白质构象变化机制的区别。赖氨酸/精氨酸/鸟氨酸结合蛋白和麦芽糖/麦芽糊精结合蛋白被选为目标蛋白,并通过分子模拟方法生成了能量谱。我们的结果表明,apo 态的波动和蛋白质-配体相互作用都在构象转变中起着重要作用,而这种机制受到 apo 态波动的强烈影响,而 apo 态波动是特定结构所特有的。

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