Gu Xinsheng, Ke Sui, Liu Duan, Sheng Tao, Thomas Paul E, Rabson Arnold B, Gallo Michael A, Xie Wen, Tian Yanan
Department of Veterinary Physiology and Pharmacology, Texas A & M University, College Station, TX 77843, USA.
J Biol Chem. 2006 Jun 30;281(26):17882-9. doi: 10.1074/jbc.M601302200. Epub 2006 Apr 10.
It is a long-standing observation that inflammatory responses and infections decrease drug metabolism capacity in human and experimental animals. Cytochrome P-450 3A4 cyp304 is responsible for the metabolism of over 50% of current prescription drugs, and cyp3a4 expression is transcriptionally regulated by pregnane X receptor (PXR), which is a ligand-dependent transcription factor. In this study, we report that NF-kappaB activation by lipopolysaccharide and tumor necrosis factor-alpha plays a pivotal role in the suppression of cyp3a4 through interactions of NF-kappaB with the PXR.retinoid X receptor (RXR) complex. Inhibition of NF-kappaB by NF-kappaB-specific suppressor SRIkappaBalpha reversed the suppressive effects of lipopolysaccharide and tumor necrosis factor-alpha. Furthermore, we showed that NF-kappaB p65 disrupted the association of the PXR.RXRalpha complex with DNA sequences as determined by electrophoretic mobility shift assay and chromatin immunoprecipitation assays. NF-kappaB p65 directly interacted with the DNA-binding domain of RXRalpha and may prevent its binding to the consensus DNA sequences, thus inhibiting the transactivation by the PXR.RXRalpha complex. This mechanism of suppression by NF-kappaB activation may be extended to other nuclear receptor-regulated systems where RXRalpha is a dimerization partner.
长期以来的观察表明,炎症反应和感染会降低人类和实验动物的药物代谢能力。细胞色素P-450 3A4(cyp3A4)负责代谢超过50%的当前处方药,且cyp3A4的表达受孕烷X受体(PXR)转录调控,PXR是一种配体依赖性转录因子。在本研究中,我们报告脂多糖和肿瘤坏死因子-α激活核因子-κB(NF-κB),通过NF-κB与PXR-维甲酸X受体(RXR)复合物的相互作用,在抑制cyp3A4中起关键作用。NF-κB特异性抑制剂SRκBα对NF-κB的抑制作用可逆转脂多糖和肿瘤坏死因子-α的抑制作用。此外,我们通过电泳迁移率变动分析和染色质免疫沉淀分析表明,NF-κB p65破坏了PXR-RXRα复合物与DNA序列的结合。NF-κB p65直接与RXRα的DNA结合结构域相互作用,并可能阻止其与共有DNA序列结合,从而抑制PXR-RXRα复合物的反式激活。NF-κB激活的这种抑制机制可能扩展到其他以RXRα作为二聚化伙伴的核受体调节系统。