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首页> 外文期刊>Journal of Molecular Biology >Retinoic acid receptor: a simulation analysis of retinoic acid binding and the resulting conformational changes.
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Retinoic acid receptor: a simulation analysis of retinoic acid binding and the resulting conformational changes.

机译:维甲酸受体:维甲酸结合及其构象变化的模拟分析。

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摘要

The binding/escape mechanism of all- trans retinoic acid with respect to the ligand-binding domain of the nuclear receptor RARgamma has been studied by molecular dynamic simulations. The entry/exit channel was shown to be on the side of the activation helix by the use of multiple copy dynamics. Three independent minimum energy paths from the liganded structure to a model for the unliganded structure were calculated with the conjugate peak refinement method. Ligand escape takes place in the early steps of the transition during rearrangement of the binding pocket; the latter involves inward motion of the beta-sheet and outward motions of the Omega-loop and helix H6. The correlated rearrangements involved in the escape phase are similar and occur in the same order for the different paths. After the escape phase, the conformational changes affect primarily the C-terminal helices H11-H12 and the Omega-loop. The three paths are significantly different for this reorganization phase and reveal a multiplicity of possibilities, in agreement with the idea that the apo state is structurally less constrained. The present calculations extend the crystallographic results, confirming the "mouse trap" mechanism and stressing the importance of the helix H3 conformation and of the contacts between the Omega-loop and helices H11 and H6. They are in good agreement with known mutants and point to other functionally important residues, especially in helices H3 and H11, suggesting mutations that may affect the ligand-binding function and the associated conformational changes. Copyright 1999 Academic Press.
机译:通过分子动力学模拟研究了全反式视黄酸相对于核受体RARgamma的配体结合域的结合/逃逸机制。通过使用多个复制动力学,可以将进入/退出通道显示在激活螺旋的一侧。使用共轭峰细化方法计算了从配体结构到非配体结构模型的三个独立的最小能量路径。配体的逃逸发生在装订袋重新排列期间过渡的早期阶段。后者涉及β-折叠的向内运动以及Omega-loop和螺旋H6的向外运动。退出阶段涉及的相关重排是相似的,并且对于不同的路径以相同的顺序发生。在逃逸阶段之后,构象变化主要影响C末端螺旋H11-H12和Omega环。在重组阶段,这三种途径明显不同,并揭示了多种可能性,这与载脂蛋白状态在结构上受到较少限制的想法相符。目前的计算扩展了晶体学结果,证实了“老鼠陷阱”机制,并强调了螺旋H3构象以及Omega环与螺旋H11和H6之间的接触的重要性。它们与已知的突变体高度吻合,并指向其他功能上重要的残基,尤其是在螺旋H3和H11中,提示可能影响配体结合功能和相关构象变化的突变。版权所有1999,学术出版社。

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