首页> 美国卫生研究院文献>The Journal of Biological Chemistry >On the Mechanism Underlying (23S)-25-Dehydro-1α(OH)-vitamin D3-2623-lactone Antagonism of hVDRwt Gene Activation and Its Switch to a Superagonist
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On the Mechanism Underlying (23S)-25-Dehydro-1α(OH)-vitamin D3-2623-lactone Antagonism of hVDRwt Gene Activation and Its Switch to a Superagonist

机译:关于hVDRwt基因激活的(23S)-25-脱氢-1α(OH)-维生素D3-2623-内酯拮抗作用的机理及其向超激动剂的转换

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摘要

(23S)-25-Dehydro-1α(OH)-vitamin D3-26,23-lactone (MK) is an antagonist of the 1α,25(OH)2-vitamin D3 (1,25D)/human nuclear vitamin D receptor (hVDR) transcription initiation complex, where the activation helix (i.e. helix-12) is closed. To study the mode of antagonism of MK an hVDR mutant library was designed to alter the free molecular volume in the region of the hVDR ligand binding pocket occupied by the ligand side-chain atoms (i.e. proximal to helix-12). The 1,25D-hVDR structure-function studies demonstrate that 1) van der Waals contacts between helix-12 residues Leu-414 and Val-418 and 1,25D enhance the stability of the closed helix-12 conformer and 2) removal of the side-chain H-bonds to His-305(F) and/or His-397(F) have no effect on 1,25D transactivation, even though they reduce the binding affinity of 1,25D. The MK structure-function results demonstrate that the His-305, Leu-404, Leu-414, and Val-418 mutations, which increase the free volume of the hVDR ligand binding pocket, significantly enhance MK antagonist potency. Surprisingly, the H305F and H305F/H397F mutations turn MK into a VDR superagonist (EC50 ∼ 0.05 nm) but do not concomitantly alter MK binding affinity. Molecular modeling studies demonstrate that MK antagonism stems from its side chain energetically preferring a pose in the VDR ligand binding pocket where its terminal C26-methylene atom is far removed from helix-12. MK superagonism results from an energetically favored increase in interaction between Leu-404/Val-418 and C26, resulting in an increase in the stability and population of the closed, helix-12 conformer. Finally, the results/model generated, coupled with application of a VDR ensemble allosterics model, provide an understanding for the species specificity of MK.
机译:(23S)-25-脱氢-1α(OH)-维生素D3-26,23-内酯(MK)是1α,25(OH)2-维生素D3(1,25D)/人类核维生素D受体的拮抗剂(hVDR)转录起始复合物,其中激活螺旋(即helix-12)是封闭的。为了研究MK的拮抗模式,设计了一个hVDR突变体文库,以改变hVDR配体结合口袋被配体侧链原子占据的区域(即接近螺旋12的区域)中的自由分子体积。 1,25D-hVDR结构功能研究表明,1)螺旋12残基Leu-414和Val-418之间的范德华接触和1,25D增强了封闭的螺旋12构象异构体的稳定性,并且2)去除了螺旋与His-305(F)和/或His-397(F)形成侧链的H键不会影响1,25D反式激活,即使它们降低1,25D的结合亲和力也是如此。 MK结构功能的结果表明,His-305,Leu-404,Leu-414和Val-418突变会增加hVDR配体结合口袋的自由体积,从而显着增强MK拮抗剂的效力。令人惊讶的是,H305F和H305F / H397F突变将MK转变为VDR超激动剂(EC50〜0.05 nm),但不会同时改变MK结合亲和力。分子模型研究表明,MK拮抗作用源于其侧链在能量上偏向于VDR配体结合口袋中的位姿,在该位点,其末端C26-亚甲基原子与螺旋12的距离很远。 MK超激动性是由Leu-404 / Val-418与C26之间的相互作用强烈促进而产生的,导致封闭的helix-12构象异构体的稳定性和种群增加。最后,生成的结果/模型,再加上VDR整体变构模型的应用,可提供对MK物种特异性的理解。

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