肝 x 受体α的突变会损害二聚化和依赖配体的转录作用。

Shimpi Bedi, Heather A Hostetler, Stanley Dean Rider
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摘要

肝X受体α(LXRα)对维持脂质和胆固醇平衡至关重要。配体与视黄醇 X 受体(RXR)或过氧化物酶体增殖激活受体(PPAR)的结合和二聚化是形成活性 DNA 结合复合物导致基因调控所必需的。LXRα LBD 的结构预测和溶剂可及性表明,位于螺旋 9 和 10 的残基 H383、E387、H390、L414 和 R415 可能是介导蛋白-蛋白相互作用的关键。本研究对 LXRα 界面残基进行了单独突变,以确定它们对配体结合、蛋白-蛋白结合、亚细胞定位和转录活化活性的影响。LXRα L414R 和 R415A 缺乏与 T-0901317 的结合,但保留了与 25-羟基胆固醇的结合。体外试验和基于细胞的试验表明,LXRα L414R 与 RXRα 的相互作用特别受损,而与 PPARα 的相互作用却没有受损,这表明界面上的电荷反转为 LXRα 的二聚化提供了选择性。此外,LXRα L414R 或 R415A 与 PPARα 结合后,二聚体二级结构的构象变化极小。有趣的是,所有 LXRα 突变体在 SREBP-1c 或载脂蛋白 A1 启动子的驱动下都表现出较低水平的配体依赖性荧光素酶活性。综上所述,我们的数据表明,界面上完整的疏水相互作用和盐桥介导了有效的配体依赖性转录激活活动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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MUTATIONS IN LIVER X RECEPTOR ALPHA THAT IMPAIR DIMERIZATION AND LIGAND DEPENDENT TRANSACTIVATION.

Liver X receptor alpha (LXRα) is crucial for the maintenance of lipid and cholesterol homeostasis. Ligand binding and dimerization with retinoid X receptor (RXR) or peroxisome proliferator-activated receptor (PPAR) is required for forming active DNA binding complexes leading to gene regulation. Structure based prediction and solvent accessibility of LXRα LBD shows that residues H383, E387, H390, L414, and R415 which are located in helices 9 and 10 may be critical for mediating protein-protein interactions. In this study, LXRα interface residues were individually mutated to determine their effects on ligand binding, protein-protein association, subcellular localization, and transactivation activity. LXRα L414R and R415A lacked binding to T-0901317, but retained binding to 25-Hydroxycholesterol. In vitro assay and a cell based assay demonstrated that LXRα L414R was specifically impaired for interactions with RXRα but not PPARα suggesting that charge reversal at the interface provides selectivity to LXRα dimerization. Furthermore, binding of LXRα L414R or R415A with PPARα exhibited minimal conformational changes in the dimer secondary structure. Interestingly, all LXRα mutants exhibited lower levels of ligand dependent luciferase activity driven by the SREBP-1c or ApoA1 promoter. Taken together, our data demonstrates that intact hydrophobic interactions and salt bridges at the interface mediate efficient ligand-dependent transactivation activities.

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