Abstract
The aryl hydrocarbon receptor (AHR) is a ligand-inducible transcription factor that displays interspecies differences with the human and mouse AHR C-terminal region sequences sharing only 58% amino acid sequence identity. Compared with the mouse AHR (mAHR), the human AHR (hAHR) displays approximately 10-fold lower relative affinity for prototypical AHR ligands such as 2,3,7,8-tetrachlorodibenzo-p-dioxin, which has been attributed to the amino acid residue valine 381 (alanine 375 in the mAHR) in the ligand binding domain of the hAHR. We investigated whether the 10-fold difference in ligand-binding affinity between the mAHR and hAHR would be observed with a diverse range of AHR ligands. To test this hypothesis, ligand binding assays were performed using the photo-affinity ligand 2-azido-3-[(125)I]iodo-7,8-dibromodibenzo-p-dioxin and liver cytosol isolated from hepatocyte-specific transgenic hAHR mice and C57BL/6J mice. It is noteworthy that competitive ligand-binding assays revealed that, compared with the mAHR, the hAHR has a higher relative affinity for certain compounds, including indirubin [(2Z)-2,3-biindole-2,3 (1'H,1'H)-dione and quercetin (2-(3,4dihydroxyphenyl)-3,5,7-trihydroxy-4H-chromen-4-one]. Electrophoretic mobility shift assays revealed that indirubin was more efficient at transforming the hAHR compared with the mAHR. Indirubin was also a more potent inducer of Cyp1a1 expression in transgenic hAHR mouse hepatocytes compared with C57BL/6J mouse hepatocytes. These observations suggest that indirubin is a potent hAHR ligand that is able to selectively bind to and activate the hAHR. These discoveries imply that there may be a significant degree of structural divergence between mAHR and hAHR ligands and highlights the importance of the hAHR transgenic mouse as a model to study the hAHR in vivo.
MeSH Terms
Animals
Benzimidazoles/pharmacology
Binding, Competitive
COS Cells
Chlorocebus aethiops
Cytochrome P-450 CYP1A1/biosynthesis
Dioxins/pharmacology
Gene Expression Regulation
Hepatocytes/drug effects,metabolism
Humans
In Vitro Techniques
Indoles/pharmacology
Iodine Radioisotopes
Ligands
Mice
Mice, Inbred C57BL
Mice, Transgenic
Models, Animal
Photoaffinity Labels
Quercetin/pharmacology
Radioligand Assay
Receptors, Aryl Hydrocarbon/agonists,metabolism
Chemicals
Benzimidazoles
Dioxins
Indoles
Iodine Radioisotopes
Ligands
M50354
Photoaffinity Labels
Receptors, Aryl Hydrocarbon
2-iodo-7,8-dibromodibenzo-1,4-dioxin
Quercetin
Cytochrome P-450 CYP1A1
indirubin
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Flaveny Colin A
Center for Molecular Toxicology and Carcinogenesis and the Department of Veterinary and Biomedical Sciences, the Pennsylvania State University, 16802, USA.
Murray Iain A
Chiaro Chris R
Perdew Gary H
References (26)
26 references, click to expand
-
Characterization of a murine Ahr null allele: involvement of the Ah receptor in hepatic growth and development.
Proc Natl Acad Sci U S A. 1996 Jun 25;93(13):6731-6
PMID: 8692887
-
Distinct response to dioxin in an arylhydrocarbon receptor (AHR)-humanized mouse.
Proc Natl Acad Sci U S A. 2003 May 13;100(10):5652-7
PMID: 12730383
-
The AH receptor of the most dioxin-sensitive species, guinea pig, is highly homologous to the human AH receptor.
Biochem Biophys Res Commun. 2001 Aug 3;285(5):1121-9
PMID: 11478770
-
Hepatitis B virus X-associated protein 2 is a subunit of the unliganded aryl hydrocarbon receptor core complex and exhibits transcriptional enhancer activity.
Mol Cell Biol. 1998 Feb;18(2):978-88
PMID: 9447995
-
Dioxin binding activities of polymorphic forms of mouse and human arylhydrocarbon receptors.
J Biol Chem. 1994 Nov 4;269(44):27337-43
PMID: 7961644
-
Characterization and strain distribution pattern of the murine Ah receptor specified by the Ahd and Ahb-3 alleles.
Mol Pharmacol. 1990 Sep;38(3):306-12
PMID: 2169579
-
Coordinate regulation of Phase I and II xenobiotic metabolisms by the Ah receptor and Nrf2.
Biochem Pharmacol. 2007 Jun 15;73(12):1853-62
PMID: 17266942
-
Photoaffinity labelling of the Ah receptor.
Food Chem Toxicol. 1986 Jun-Jul;24(6-7):781-7
PMID: 3023216
-
Three-dimensional quantitative structure-activity relationships of dioxins and dioxin-like compounds: model validation and Ah receptor characterization.
Chem Res Toxicol. 1995 Sep;8(6):847-58
PMID: 7492734
-
Distinct positive and negative elements control the limited hepatocyte and choroid plexus expression of transthyretin in transgenic mice.
EMBO J. 1990 Mar;9(3):869-78
PMID: 1690125
-
Use of 2-azido-3-[125I]iodo-7,8-dibromodibenzo-p-dioxin as a probe to determine the relative ligand affinity of human versus mouse aryl hydrocarbon receptor in cultured cells.
Mol Pharmacol. 2004 Jul;66(1):129-36
PMID: 15213304
-
The transactivation domain of the Ah receptor is a key determinant of cellular localization and ligand-independent nucleocytoplasmic shuttling properties.
Biochemistry. 2005 Aug 23;44(33):11148-59
PMID: 16101299
-
Evidence for the ligand-independent activation of the AH receptor.
Biochem Biophys Res Commun. 1995 Apr 17;209(2):474-82
PMID: 7733914
-
Human response to dioxin: aryl hydrocarbon receptor (AhR) molecular structure, function, and dose-response data for enzyme induction indicate an impaired human AhR.
J Toxicol Environ Health B Crit Rev. 2006 Mar-Apr;9(2):147-71
PMID: 16613807
-
Transactivation activity of human, zebrafish, and rainbow trout aryl hydrocarbon receptors expressed in COS-7 cells: greater insight into species differences in toxic potency of polychlorinated dibenzo-p-dioxin, dibenzofuran, and biphenyl congeners.
Toxicol Appl Pharmacol. 1999 Aug 15;159(1):41-51
PMID: 10448124
-
Different structural requirements of the ligand binding domain of the aryl hydrocarbon receptor for high- and low-affinity ligand binding and receptor activation.
Mol Pharmacol. 2004 Feb;65(2):416-25
PMID: 14742684
-
Aryl hydrocarbon receptor-dependent liver development and hepatotoxicity are mediated by different cell types.
Proc Natl Acad Sci U S A. 2005 Dec 6;102(49):17858-63
PMID: 16301529
-
Construction of reporter yeasts for mouse aryl hydrocarbon receptor ligand activity.
Mutat Res. 2003 Sep 9;540(1):99-105
PMID: 12972062
-
Immune system impairment and hepatic fibrosis in mice lacking the dioxin-binding Ah receptor.
Science. 1995 May 5;268(5211):722-6
PMID: 7732381
-
The mouse and human Ah receptor differ in recognition of LXXLL motifs.
Arch Biochem Biophys. 2008 Mar 15;471(2):215-23
PMID: 18242161
-
The Ah receptor: a regulator of the biochemical and toxicological actions of structurally diverse chemicals.
Bull Environ Contam Toxicol. 1998 Nov;61(5):557-68
PMID: 9841714
-
Adverse reproductive outcomes in the transgenic Ah receptor-deficient mouse.
Toxicol Appl Pharmacol. 1999 Feb 15;155(1):62-70
PMID: 10036219
-
Characterization of the Ah receptor and aryl hydrocarbon hydroxylase induction by 2,3,7,8-tetrachlorodibenzo-p-dioxin and benz(a)anthracene in the human A431 squamous cell carcinoma line.
Cancer Res. 1988 May 1;48(9):2388-95
PMID: 2833345
-
Dietary flavonols quercetin and kaempferol are ligands of the aryl hydrocarbon receptor that affect CYP1A1 transcription differentially.
Biochem J. 1999 Jun 15;340 ( Pt 3):715-22
PMID: 10359656
-
Expression of hepatitis B virus X protein does not alter the accumulation of spontaneous mutations in transgenic mice.
J Virol. 2000 Jun;74(11):5266-72
PMID: 10799603
-
Comparison of the 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD)-induced CYP1A1 gene expression profile in lymphocytes from mice, rats, and humans: most potent induction in humans.
Toxicology. 2006 Aug 15;225(2-3):204-13
PMID: 16839655