1F93 image
Deposition Date 2000-07-06
Release Date 2000-09-20
Last Version Date 2024-10-30
Entry Detail
PDB ID:
1F93
Keywords:
Title:
CRYSTAL STRUCTURE OF A COMPLEX BETWEEN THE DIMERIZATION DOMAIN OF HNF-1 ALPHA AND THE COACTIVATOR DCOH
Biological Source:
Source Organism:
Rattus norvegicus (Taxon ID: 10116)
(Taxon ID: )
Host Organism:
Method Details:
Experimental Method:
Resolution:
2.60 Å
R-Value Free:
0.29
R-Value Work:
0.25
R-Value Observed:
0.25
Space Group:
P 1 21 1
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:DIMERIZATION COFACTOR OF HEPATOCYTE NUCLEAR FACTOR 1-ALPHA
Gene (Uniprot):Pcbd1
Chain IDs:A, B, C, D
Chain Length:104
Number of Molecules:4
Biological Source:Rattus norvegicus
Polymer Type:polypeptide(L)
Molecule:HEPATOCYTE NUCLEAR FACTOR 1-ALPHA
Gene (Uniprot):Hnf1a
Chain IDs:E, F, G, H
Chain Length:32
Number of Molecules:4
Biological Source:
Modified Residue
Compound ID Chain ID Parent Comp ID Details 2D Image
MSE A MET SELENOMETHIONINE
Primary Citation
Structural basis of dimerization, coactivator recognition and MODY3 mutations in HNF-1alpha.
Nat.Struct.Biol. 7 744 748 (2000)
PMID: 10966642 DOI: 10.1038/78966

Abstact

Maturity-onset diabetes of the young type 3 (MODY3) results from mutations in the transcriptional activator hepatocyte nuclear factor-1alpha (HNF-1alpha). Several MODY3 mutations target the HNF-1alpha dimerization domain (HNF-p1), which binds the coactivator, dimerization cofactor of HNF-1 (DCoH). To define the mechanism of coactivator recognition and the basis for the MODY3 phenotype, we determined the cocrystal structure of the DCoH-HNF-p1 complex and characterized biochemically the effects of MODY3 mutations in HNF-p1. The DCoH-HNF-p1 complex comprises a dimer of dimers in which HNF-p1 forms a unique four-helix bundle. Through rearrangements of interfacial side chains, a single, bifunctional interface in the DCoH dimer mediates both HNF-1alpha binding and formation of a competing, transcriptionally inactive DCoH homotetramer. Consistent with the structure, MODY3 mutations in HNF-p1 reduce activator function by two distinct mechanisms.

Legend

Protein

Chemical

Disease

Primary Citation of related structures