PLoS Computational Biology · 2008 · 50 citations · 39 references
Transcriptional RegulationSystems BiologySignal TransductionFunctional SelectivityMedicineEssential HomodimerNatural SciencesG Protein-coupled ReceptorReceptor (Biochemistry)Molecular BiologyBiomolecular InteractionMolecular BasisGene ExpressionMolecular DockingCell BiologyCell SignalingHomodimer Interface
Nuclear receptor ligand binding domains (LBDs) convert ligand binding events into changes in gene expression by recruiting transcriptional coregulators to a conserved activation function-2 (AF-2) surface. While most nuclear receptor LBDs form homo- or heterodimers, the human nuclear receptor pregnane X receptor (PXR) forms a unique and essential homodimer and is proposed to assemble into a functional heterotetramer with the retinoid X receptor (RXR). How the homodimer interface, which is located 30 A from the AF-2, would affect function at this critical surface has remained unclear. By using 20- to 30-ns molecular dynamics simulations on PXR in various oligomerization states, we observed a remarkably high degree of correlated motion in the PXR-RXR heterotetramer, most notably in the four helices that create the AF-2 domain. The function of such correlation may be to create "active-capable" receptor complexes that are ready to bind to transcriptional coactivators. Indeed, we found in additional simulations that active-capable receptor complexes involving other orphan or steroid nuclear receptors also exhibit highly correlated AF-2 domain motions. We further propose a mechanism for the transmission of long-range motions through the nuclear receptor LBD to the AF-2 surface. Taken together, our findings indicate that long-range motions within the LBD scaffold are critical to nuclear receptor function by promoting a mobile AF-2 state ready to bind coactivators.
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A smooth particle mesh Ewald method
Ulrich Essmann, L. Perera, Max L. Berkowitz et al. · The Journal of Chemical Physics · 1995 · 22.3K citations
Yong Duan, Chun Wu, Shibasish Chowdhury et al. · Journal of Computational Chemistry · 2003 · 4.4K citations
Protein Chemistry, Engineering, Molecular Mechanics Models +13
Molecular basis of agonism and antagonism in the oestrogen receptor
A.M. Brzozowski, A.C.W. Pike, Zbigniew Dauter et al. · Nature · 1997 · 3.3K citations
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