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Structure of free MDM2 N-terminal domain reveals conformational adjustments that accompany p53-binding
Stanislava Uhrinova1, Dusan Uhrin, Helen Powers
1Schools of Chemistry and Biological Sciences, University of Edinburgh, King's Buildings, West Mains Road, Edinburgh EH9 3JR, UK.
Abstract:
Critical to the inhibitory action of the oncogene product, MDM2, on the tumour suppressor, p53, is association of the N-terminal domain of MDM2 (MDM2N) with the transactivation domain of p53. The structure of MDM2N was previously solved with a p53-derived peptide, or small-molecule ligands, occupying its binding cleft, but no structure of the non-liganded MDM2N (i.e. the apo-form) has been reported. Here, we describe the solution structure and dynamics of apo-MDM2N and thus reveal the nature of the conformational changes in MDM2N that accompany binding of p53. The new structure suggests that p53 effects displacement of an N-terminal segment of apo-MDM2N that occludes access to the shallow end of the p53-binding cleft. MDM2N must also undergo an expansion upon binding, achieved through a rearrangement of its two pseudosymetrically related sub-domains resulting in outward displacements of the secondary structural elements that comprise the walls and floor of the p53-binding cleft. MDM2N becomes more rigid and stable upon binding p53. Conformational plasticity of the binding cleft of apo-MDM2N could allow the parent protein to bind specifically to several different partners, although, to date, all the known liganded structures of MDM2N are highly similar to one another. The results indicate that the more open conformation of the binding cleft of MDM2N observed in structures of complexes with small molecules and peptides is a more suitable one for ligand discovery and optimisation.
Insights
The apo-MDM2N structure reveals how p53 binding changes MDM2 conformation. This plasticity in the MDM2N binding cleft is key for drug discovery targeting cancer-related protein interactions.
Area of Science:
- Biochemistry
- Structural Biology
- Oncology
Background:
- MDM2 inhibits the tumor suppressor p53 by binding its transactivation domain.
- Previous structures of MDM2N (N-terminal domain of MDM2) were liganded, lacking insight into the apo-form.
Purpose of the Study:
- To determine the solution structure and dynamics of apo-MDM2N.
- To elucidate conformational changes in MDM2N upon p53 binding.
Main Methods:
- Solution structure determination of apo-MDM2N.
- Analysis of protein dynamics.
Main Results:
- The apo-MDM2N structure reveals an occluding N-terminal segment and a more flexible binding cleft.
- p53 binding induces MDM2N expansion and increased rigidity.
- The binding cleft's plasticity suggests potential for binding multiple partners.
Conclusions:
- MDM2N undergoes significant conformational changes upon p53 binding.
- The apo-MDM2N conformation is crucial for understanding p53-MDM2 interactions.
- The flexible binding cleft of apo-MDM2N is a promising target for small-molecule drug discovery in cancer therapy.
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