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p53-induced DNA bending and twisting: p53 tetramer binds on the outer side of a DNA loop and increases DNA twisting

A K Nagaich1, V B Zhurkin, S R Durell

  • 1Department of Microbiology, Arizona State University, Tempe, AZ 85287-2701, USA.

Insights

The DNA binding domain of human p53 bends DNA less than full-length p53, revealing distinct DNA bending and twisting mechanisms crucial for tumor suppressor function and protein-DNA complex stability.

Area of Science:

  • Molecular Biology
  • Structural Biology
  • Biochemistry

Background:

  • The DNA binding activity of p53 is essential for its role as a tumor suppressor.
  • Previous studies indicated that four molecules of the human p53 DNA binding domain (p53DBD) bind response elements cooperatively, inducing DNA bending.

Purpose of the Study:

  • To investigate and compare the DNA bending and twisting induced by the p53 DNA binding domain versus full-length wild-type p53.
  • To elucidate the structural basis for the stability and cooperativity of p53-DNA interactions.

Main Methods:

  • Utilized A-tract phasing experiments to analyze DNA bending and twisting.
  • Performed sophisticated phasing analyses to quantify DNA conformational changes.
  • Integrated findings with molecular modeling studies of the tetrameric complex.

Main Results:

  • Four p53DBD subunits bend DNA by 32-36 degrees, while full-length wild-type p53 bends it by 51-57 degrees.
  • p53DBD overtwists DNA by ~35 degrees, whereas wild-type p53 overtwists it by ~70 degrees.
  • The p53-DNA tetrameric complex is stabilized by DNA overtwisting and bending towards the major groove.

Conclusions:

  • Significant differences exist in DNA bending and twisting between p53DBD and full-length p53, impacting DNA binding.
  • The p53 tetrameric complex exhibits a novel architecture with lateral, staggered protein subunits stabilizing binding.
  • These structural findings have implications for p53's tumor suppressor functions and potential interactions with chromatin.

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