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Crystal structure of the mouse p53 core DNA-binding domain at 2.7 A resolution

K Zhao1, X Chai, K Johnston

  • 1The Wistar Institute and the Department of Chemistry, University of Pennsylvania, 19104, USA.

Insights

The p53 tumor suppressor protein

Area of Science:

  • Molecular Biology
  • Structural Biology
  • Biochemistry

Background:

  • The p53 protein is a critical tumor suppressor involved in cell cycle arrest and apoptosis.
  • It functions as a sequence-specific DNA-binding protein, typically in a tetrameric form.
  • The core DNA-binding domain is crucial for p53's function and is frequently mutated in cancers.

Purpose of the Study:

  • To determine the crystal structure of the mouse p53 core domain.
  • To compare the structural differences between DNA-bound and DNA-free states of the p53 core domain.
  • To investigate potential inactive conformations of the p53 core domain relevant to its function.

Main Methods:

  • X-ray crystallography was used to obtain the 2.7-Å crystal structure of the mouse p53 core domain.
  • Structural comparisons were made between the DNA-free mouse p53 core domain and previously determined DNA-bound human p53 core domain structures.
  • Analysis of crystal packing revealed oligomeric states and potential functional implications.

Main Results:

  • The mouse p53 core domain adopts an immunoglobulin-like beta sandwich structure, similar to the human counterpart.
  • A key DNA-binding loop undergoes significant rearrangement between the DNA-free and DNA-bound states.
  • The DNA-free core domain crystals exhibit a trimeric arrangement with dimer contacts that hinder DNA binding.
  • Similar dimer contacts were observed in human p53-DNA complex crystals, suggesting a conserved inactive dimer form.

Conclusions:

  • The structure of the DNA-free mouse p53 core domain reveals a conformation incompatible with DNA binding.
  • The observed dimer contacts in both mouse and human p53 core domain crystals suggest a physiologically relevant inactive dimer.
  • Structural rearrangements of the DNA-binding loop are essential for p53 to transition from an inactive dimer to a DNA-binding competent state.

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