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首页> 外文期刊>Journal of molecular modeling >Change in binding states between catabolite activating protein and DNA induced by ligand-binding: molecular dynamics and ab initio fragment molecular orbital calculations
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Change in binding states between catabolite activating protein and DNA induced by ligand-binding: molecular dynamics and ab initio fragment molecular orbital calculations

机译:配体结合诱导的分解杆菌活化蛋白与DNA之间的结合状态的变化:分子动力学和AB初始分子分子轨道算法

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The transcription mechanism of genetic information from DNA to RNA is efficiently controlled by regulatory proteins, such as catabolite activator protein (CAP), and their ligands. When cyclic AMP (cAMP) binds to CAP, the complex forms a dimer and binds specifically to DNA to activate the transcription mechanism. On the other hand, when cyclic GMP (cGMP) binds to CAP, the complex has no marked effect on the mechanism. In our previous study, based on molecular dynamics (MD) and ab initio fragment molecular orbital (FMO) methods, we elucidated which residues of CAP are important for the specific interactions between CAP and DNA in the CAP-monomer+DNA+cAMP complex. However, this monomer model for CAP cannot describe real interactions between the CAP-dimer and DNA because CAPs form a dimer before binding to DNA. Accordingly, here, we investigated stable structures and their electronic states for the CAP-dimer+DNA complex with cAMP or cGMP ligand, to clarify the influence of ligand-binding on the interactions between CAP-dimer and DNA. The MD simulations elucidated that the DNA-binding domains of CAP-dimer behave differently depending on the ligand bound to the CAP-dimer. In addition, FMO calculations revealed that the binding energy between CAP-dimer and DNA for the CAP-dimer+DNA+cAMP complex is larger than that for the CAP-dimer+DNA+cGMP complex, being consistent with experiments. It was also highlighted that the Arg185 and Lys188 residues of CAP-dimer are important for the binding between CAP-dimer and DNA. These results provide useful information for proposing new compounds that efficiently control the transcription mechanism.
机译:通过调节蛋白(例如Catabolite活化剂蛋白)和它们的配体有效地控制来自DNA至RNA的遗传信息的转录机制。当循环amp(camp)与帽结合时,复合物形成二聚体并具体结合DNA以激活转录机制。另一方面,当环状GMP(CGMP)与帽结合时,该复合物对该机制没有明显的影响。在我们以前的研究中,基于分子动力学(MD)和AB Initio片段分子轨道(FMO)方法,我们阐明了帽和DNA在盖子单体+ DNA +营地综合体中的特异性相互作用是重要的。然而,这种帽的单体模型不能描述帽二聚体和DNA之间的真实相互作用,因为盖子在与DNA结合之前形成二聚体。因此,在这里,我们研究了与阵营或CGMP配体的帽二聚体+ DNA复合物的稳定结构及其电子状态,以阐明配​​体结合对帽二聚体和DNA之间相互作用的影响。 MD模拟阐明了帽二聚体的DNA结合结构域取决于与帽二聚体结合的配体的不同程度不同。此外,FMO计算表明,帽二聚体+ DNA + CAMP复合物的帽二聚体和DNA之间的结合能大于帽二聚体+ DNA + CGMP复合物的帽子二聚体+ DNA + CGMP络合物,这与实验一致。还强调的是,Cap-二聚体的Arg185和Lys188残基对帽二聚体和DNA之间的结合很重要。这些结果提供了用于提出有效控制转录机制的新化合物的有用信息。

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