Previous Article | Next Article 
Mol Cell Biol. 1993 March; 13(3): 1619-1633
Functional analysis of developmentally regulated chromatin-hypersensitive domains carrying the alpha 1-fetoprotein gene promoter and the albumin/alpha 1-fetoprotein intergenic enhancer.
D Bernier,
H Thomassin,
D Allard,
M Guertin,
D Hamel,
M Blaquière,
M Beauchemin,
H LaRue,
M Estable-Puig and
L Bélanger
Le Centre de recherche en cancérologie, Université Laval, L'Hôtel-Dieu de Québec, Canada.
ABSTRACT
During liver development, the tandem alpha 1-fetoprotein (AFP)/albumin locus is triggered at the AFP end and then asymmetrically enhanced; this is followed by autonomous repression of the AFP-encoding gene. To understand this regulation better, we characterized the two early developmental stage-specific DNase I-hypersensitive (DH) sites so far identified in rat liver AFP/albumin chromatin: an intergenic DH-enhancer site and the AFP DH-promoter site. Mutation-transfection analyses circumscribed the DH-enhancer domain to a 200-bp DNA segment stringently conserved among species. Targeted mutations, DNA-protein-binding assays, and coexpression experiments pinpointed C/EBP as the major activatory component of the intergenic enhancer. Structure-function relationships at the AFP DH-promoter site defined a discrete glucocorticoid-regulated domain activated cooperatively by HNF1 and a highly specific AFP transcription factor, FTF, which binds to a steroid receptor recognition motif. The HNF1/FTF/DNA complex is deactivated by glucocorticoid receptors or by the ubiquitous factor NF1, which eliminates HNF1 by competition at an overlapping, high-affinity binding site. We propose that the HNF1-NF1 site might serve as a developmental switch to direct autonomous AFP gene repression in late liver development. We also conclude that the intergenic enhancer is driven by C/EBP alpha primarily to fulfill albumin gene activation functions at early developmental stages. Factor FTF seems to be the key regulator of AFP gene-specific functions in carcinoembryonic states.
Mol Cell Biol. 1993 March; 13(3): 1619-1633
This article has been cited by other articles:
-
Kajiyama, Y., Tian, J., Locker, J.
(2006). Characterization of Distant Enhancers and Promoters in the Albumin-{alpha}-Fetoprotein Locus during Active and Silenced Expression. J. Biol. Chem.
281: 30122-30131
[Abstract]
[Full Text]
-
Gu, P., Goodwin, B., Chung, A. C.-K., Xu, X., Wheeler, D. A., Price, R. R., Galardi, C., Peng, L., Latour, A. M., Koller, B. H., Gossen, J., Kliewer, S. A., Cooney, A. J.
(2005). Orphan Nuclear Receptor LRH-1 Is Required To Maintain Oct4 Expression at the Epiblast Stage of Embryonic Development. Mol. Cell. Biol.
25: 3492-3505
[Abstract]
[Full Text]
-
Xu, H., Uno, J. K., Inouye, M., Collins, J. F., Ghishan, F. K.
(2005). NF1 transcriptional factor(s) is required for basal promoter activation of the human intestinal NaPi-IIb cotransporter gene. Am. J. Physiol. Gastrointest. Liver Physiol.
288: G175-G181
[Abstract]
[Full Text]
-
Freeman, L. A., Kennedy, A., Wu, J., Bark, S., Remaley, A. T., Santamarina-Fojo, S., Brewer, H. B. Jr.
(2004). The orphan nuclear receptor LRH-1 activates the ABCG5/ABCG8 intergenic promoter. J. Lipid Res.
45: 1197-1206
[Abstract]
[Full Text]
-
Pare, J.-F., Malenfant, D., Courtemanche, C., Jacob-Wagner, M., Roy, S., Allard, D., Belanger, L.
(2004). The Fetoprotein Transcription Factor (FTF) Gene Is Essential to Embryogenesis and Cholesterol Homeostasis and Is Regulated by a DR4 Element. J. Biol. Chem.
279: 21206-21216
[Abstract]
[Full Text]
-
Liu, D. L., Liu, W. Z., Li, Q. L., Wang, H. M., Qian, D., Treuter, E., Zhu, C.
(2003). Expression and Functional Analysis of Liver Receptor Homologue 1 as a Potential Steroidogenic Factor in Rat Ovary. Biol. Reprod.
69: 508-517
[Abstract]
[Full Text]
-
Scohy, S., Gabant, P., Szpirer, C., Szpirer, J.
(2000). Identification of an enhancer and an alternative promoter in the first intron of the {alpha}-fetoprotein gene. Nucleic Acids Res
28: 3743-3751
[Abstract]
[Full Text]
-
Gilbert, S., Galarneau, L., Lamontagne, A., Roy, S., Bélanger, L.
(2000). The Hepatitis B Virus Core Promoter Is Strongly Activated by the Liver Nuclear Receptor Fetoprotein Transcription Factor or by Ectopically Expressed Steroidogenic Factor 1. J. Virol.
74: 5032-5039
[Abstract]
[Full Text]
-
Ishida, H., Ueda, K., Ohkawa, K., Kanazawa, Y., Hosui, A., Nakanishi, F., Mita, E., Kasahara, A., Sasaki, Y., Hori, M., Hayashi, N.
(2000). Identification of Multiple Transcription Factors, HLF, FTF, and E4BP4, Controlling Hepatitis B Virus Enhancer II. J. Virol.
74: 1241-1251
[Abstract]
[Full Text]
-
Jin, D. K., Vacher, J., Feuerman, M. H.
(1998). alpha -Fetoprotein gene sequences mediating Afr2 regulation during liver regeneration. Proc. Natl. Acad. Sci. USA
95: 8767-8772
[Abstract]
[Full Text]
-
Stoltz, C., Vachon, M.-H., Trottier, E., Dubois, S., Paquet, Y., Anderson, A.
(1998). The CYP2B2 Phenobarbital Response Unit Contains an Accessory Factor Element and a Putative Glucocorticoid Response Element Essential for Conferring Maximal Phenobarbital Responsiveness. J. Biol. Chem.
273: 8528-8536
[Abstract]
[Full Text]
-
Barrera-Hernandez, G., Wanke, I. E., Wong, N. C. W.
(1996). Effects of Diabetes Mellitus on Hepatocyte Nuclear Factor 1 Decrease Albumin Gene Transcription. J. Biol. Chem.
271: 9969-9975
[Abstract]
[Full Text]
-
Bois-Joyeux, B., Denissenko, M., Thomassin, Hélèn., Guesdon, S., Ikonomova, R., Bernuau, D., Feldmann, Gér., Danan, J.-L.
(1995). The c- jun Proto-oncogene Down-regulates the Rat [IMAGE]-Fetoprotein Promoter in HepG2 Hepatoma Cells without Binding to DNA. J. Biol. Chem.
270: 10204-10211
[Abstract]
[Full Text]
-
Lannoy, V. J., Rodolosse, A., Pierreux, C. E., Rousseau, G. G., Lemaigre, F. P.
(2000). Transcriptional Stimulation by Hepatocyte Nuclear Factor-6. TARGET-SPECIFIC RECRUITMENT OF EITHER CREB-BINDING PROTEIN (CBP) or p300/CBP-ASSOCIATED FACTOR (p/CAF). J. Biol. Chem.
275: 22098-22103
[Abstract]
[Full Text]
-
Pare, J.-F., Roy, S., Galarneau, L., Belanger, L.
(2001). The Mouse Fetoprotein Transcription Factor (FTF) Gene Promoter Is Regulated by Three GATA Elements with Tandem E Box and Nkx Motifs, and FTF in Turn Activates the Hnf3beta , Hnf4alpha , and Hnf1alpha Gene Promoters. J. Biol. Chem.
276: 13136-13144
[Abstract]
[Full Text]
Copyright © 1993 by the American Society for Microbiology. All rights reserved.