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.

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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