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首页> 外文期刊>PLoS Computational Biology >Conformational Control of the Binding of the Transactivation Domain of the MLL Protein and c-Myb to the KIX Domain of CREB
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Conformational Control of the Binding of the Transactivation Domain of the MLL Protein and c-Myb to the KIX Domain of CREB

机译:MLL蛋白和c-Myb的反式激活域与CREB的KIX域结合的构象控制

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摘要

The KIX domain of CBP is a transcriptional coactivator. Concomitant binding to the activation domain of proto-oncogene protein c-Myb and the transactivation domain of the trithorax group protein mixed lineage leukemia (MLL) transcription factor lead to the biologically active ternary MLL∶KIX∶c-Myb complex which plays a role in Pol II-mediated transcription. The binding of the activation domain of MLL to KIX enhances c-Myb binding. Here we carried out molecular dynamics (MD) simulations for the MLL∶KIX∶c-Myb ternary complex, its binary components and KIX with the goal of providing a mechanistic explanation for the experimental observations. The dynamic behavior revealed that the MLL binding site is allosterically coupled to the c-Myb binding site. MLL binding redistributes the conformational ensemble of KIX, leading to higher populations of states which favor c-Myb binding. The key element in the allosteric communication pathways is the KIX loop, which acts as a control mechanism to enhance subsequent binding events. We tested this conclusion by in silico mutations of loop residues in the KIX∶MLL complex and by comparing wild type and mutant dynamics through MD simulations. The loop assumed MLL binding conformation similar to that observed in the KIX∶c-Myb state which disfavors the allosteric network. The coupling with c-Myb binding site faded, abolishing the positive cooperativity observed in the presence of MLL. Our major conclusion is that by eliciting a loop-mediated allosteric switch between the different states following the binding events, transcriptional activation can be regulated. The KIX system presents an example how nature makes use of conformational control in higher level regulation of transcriptional activity and thus cellular events.
机译:CBP的KIX结构域是转录共激活因子。与原癌基因蛋白c-Myb的激活域和三胸集团蛋白混合谱系白血病(MLL)转录因子的反式激活域同时结合导致具有生物学活性的三元MLL∶KIX∶c-Myb复合体Pol II介导的转录。 MLL的激活结构域与KIX的结合增强了c-Myb结合。在此,我们对MLL∶KIX∶c-Myb三元复合物,其二元组分和KIX进行了分子动力学(MD)模拟,目的是为实验观察提供力学解释。动态行为表明,MLL结合位点与c-Myb结合位点变构偶联。 MLL结合重新分配了KIX的构象整体,导致支持c-Myb结合的国家数量增加。变构通讯途径中的关键要素是KIX回路,它充当控制机制以增强后续的结合事件。我们通过KIX:MLL复合物中环残基的计算机突变并通过MD模拟比较野生型和突变体动力学来测试该结论。该环假定MLL结合构象类似于在KIX∶c-Myb状态下观察到的构象,其不利于变构网络。与c-Myb结合位点的偶联减弱,消除了在存在MLL时观察到的正协同作用。我们的主要结论是,通过在结合事件后引起不同状态之间的环介导的变构开关,可以调节转录激活。 KIX系统提供了一个示例,说明自然界如何在更高水平的转录活性和细胞事件调控中利用构象控制。

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