Banerjee Monimoy, Chai Sergio C, Wu Jing, Robbins Delira, Chen Taosheng
Department of Chemical Biology and Therapeutics, St. Jude Children's Research Hospital, 262 Danny Thomas Place, Memphis, TN 38105, USA.
Department of Chemical Biology and Therapeutics, St. Jude Children's Research Hospital, 262 Danny Thomas Place, Memphis, TN 38105, USA.
Biochem Pharmacol. 2016 Mar 15;104:131-8. doi: 10.1016/j.bcp.2016.02.009. Epub 2016 Feb 18.
PXR is a xenobiotic receptor that regulates drug metabolism by regulating the expression of drug-metabolizing enzymes including CYP3A4. It can be modulated by chemicals with different structures, functional groups and sizes. X-ray crystal structures of the ligand binding domain of human PXR (hPXR) alone or bound with agonists reveal a highly hydrophobic ligand binding pocket where the aromatic amino acid residue W299 appears to play a critical role in ligand binding. Here, we have investigated the role of W299 on the functional consequence of hPXR ligand binding. We first found that substitution of W299 with a hydrophobic residue retained its response to rifampicin, but substitution with a charged residue altered such agonist response in activating the transcription of CYP3A4. The activity of hPXR mutants on CYP3A4 expression correlates with the ability of hPXR mutants to interact with co-activator SRC-1. We further demonstrated that the effect of replacing W299 by residues with different side chains on hPXR's function varied depending on the specific agonist used. Finally we interpreted the cellular activity of the hPXR mutants by analyzing reported crystallographic data and proposing a model. Our findings reveal the essential role of W299 in the transactivation of hPXR in response to agonist binding, and provide useful information for designing modulators of hPXR.
孕烷X受体(PXR)是一种外源性物质受体,它通过调节包括细胞色素P450 3A4(CYP3A4)在内的药物代谢酶的表达来调控药物代谢。它可被具有不同结构、官能团和大小的化学物质所调节。人PXR(hPXR)配体结合域单独或与激动剂结合的X射线晶体结构显示出一个高度疏水的配体结合口袋,其中芳香族氨基酸残基W299似乎在配体结合中起关键作用。在此,我们研究了W299对hPXR配体结合功能后果的作用。我们首先发现,用疏水残基取代W299保留了其对利福平的反应,但用带电荷残基取代则改变了这种激动剂在激活CYP3A4转录方面的反应。hPXR突变体对CYP3A4表达的活性与hPXR突变体与共激活因子SRC-1相互作用的能力相关。我们进一步证明,用具有不同侧链的残基取代W299对hPXR功能的影响因所使用的特定激动剂而异。最后,我们通过分析已报道的晶体学数据并提出一个模型来解释hPXR突变体的细胞活性。我们的研究结果揭示了W299在hPXR响应激动剂结合的反式激活中的重要作用,并为设计hPXR调节剂提供了有用信息。