Statements in which the resource exists as a subject.
PredicateObject
rdf:type
lifeskim:mentions
pubmed:issue
6
pubmed:dateCreated
2002-2-26
pubmed:abstractText
For most ligand-dependent nuclear receptors, the status of endogenous ligand modulates the relative affinities for corepressor and coactivator complexes. It is less clear what parameters modulate the switch between corepressor and coactivator for the orphan receptors. Our previous work demonstrated that hepatocyte nuclear factor 4alpha1 (HNF4alpha1, NR2A1) interacts with the p160 coactivator GRIP1 and the cointegrators CBP and p300 in the absence of exogenously added ligand and that removal of the F domain enhances these interactions. Here, we utilized transient-transfection analysis to demonstrate repression of HNF4alpha1 activity by the corepressor silencing mediator of retinoid and thyroid receptors (SMRT) in several cell lines and on several HNF4alpha-responsive promoter elements. Glutathione S-transferase pulldown assays confirmed a direct interaction between HNF4alpha1 and receptor interaction domain 2 of SMRT. Loss of the F domain resulted in marked reduction of the ability of SMRT to interact with HNF4alpha1 in vitro and repress HNF4alpha1 activity in vivo, although the isolated F domain itself failed to interact with SMRT. Surprisingly, loss of both the A/B and F domains restored full repression by SMRT, suggesting involvement of both domains in the SMRT interaction. Finally, we show that when coexpressed along with HNF4alpha1 and GRIP1, CBP, or p300, SMRT can titer out HNF4alpha1-mediated transactivation in a dose-dependent manner and that this competition derives from mutually exclusive binding. Collectively, these results suggest that HNF4alpha can functionally interact with both a coactivator and a corepressor without altering the status of any putative ligand and that the presence of the F domain may play a role in discriminating between the different coregulators.
pubmed:grant
pubmed:commentsCorrections
http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10075656, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10085149, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10199396, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10219237, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10230404, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10230405, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10322133, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10336495, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10418975, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10454590, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10490591, http://linkedlifedata.com/resource/pubmed/commentcorrection/11865043-10508693, 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pubmed:language
eng
pubmed:journal
pubmed:citationSubset
IM
pubmed:chemical
http://linkedlifedata.com/resource/pubmed/chemical/Ligands, http://linkedlifedata.com/resource/pubmed/chemical/Phosphoproteins, http://linkedlifedata.com/resource/pubmed/chemical/Transcription Factors, http://linkedlifedata.com/resource/pubmed/chemical/Repressor Proteins, http://linkedlifedata.com/resource/pubmed/chemical/DNA-Binding Proteins, http://linkedlifedata.com/resource/pubmed/chemical/Nuclear Proteins, http://linkedlifedata.com/resource/pubmed/chemical/Recombinant Fusion Proteins, http://linkedlifedata.com/resource/pubmed/chemical/Trans-Activators, http://linkedlifedata.com/resource/pubmed/chemical/Receptors, Cytoplasmic and Nuclear, http://linkedlifedata.com/resource/pubmed/chemical/Basic Helix-Loop-Helix Leucine..., http://linkedlifedata.com/resource/pubmed/chemical/Hepatocyte Nuclear Factor 4, http://linkedlifedata.com/resource/pubmed/chemical/MLX protein, human, http://linkedlifedata.com/resource/pubmed/chemical/Tcfl4 protein, mouse, http://linkedlifedata.com/resource/pubmed/chemical/CREBBP protein, human
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