NMR spectroscopy reveals the solution dimerization interface of p53 core domains bound to their consensus DNA

C Klein1, E Planker, T Diercks

  • 1Pharma Research, Roche Diagnostics GmbH, D-82372 Penzberg, Germany.

Insights

The p53 tumor suppressor protein dimerizes upon DNA binding, revealing a key interface crucial for its function. This structural insight into the p53 core domain explains how mutations inactivate it and suggests a mechanism for DNA looping in tetrameric complexes.

Area of Science:

  • Molecular Biology
  • Structural Biology
  • Biochemistry

Background:

  • The p53 protein is a critical tumor suppressor in mammals, with its DNA-binding domain frequently mutated in human cancers.
  • Previous structural studies elucidated the monomeric p53 core domain-DNA interaction but lacked information on the full-length tetrameric complex.

Purpose of the Study:

  • To investigate the structural basis of p53 core domain dimerization upon DNA binding in solution.
  • To provide structural insights into the formation of the tetrameric p53-DNA complex and its functional implications.

Main Methods:

  • Nuclear Magnetic Resonance (NMR) spectroscopy was employed to study the p53 core domain in complex with DNA.
  • An NMR-based model of the dimeric p53 core-DNA complex was constructed.

Main Results:

  • NMR data revealed that the p53 core domain does not undergo significant conformational changes upon DNA binding.
  • The dimerization interface between two DNA-bound p53 core domains was identified, involving the H1 helix.
  • Hot spot mutations and the binding of the inhibitor 53BP2 were localized to this dimerization interface.

Conclusions:

  • The identified dimerization interface is likely conserved in the tetrameric p53-DNA complex.
  • This interface is critical for p53 function, as evidenced by mutation data and inhibitor binding.
  • Tetrameric p53 may form DNA loops by bridging non-contiguous DNA sites, a mechanism relevant to transcriptional activity.

Related Concept Videos

Abnormal Proliferation02:23

Abnormal Proliferation

Under normal conditions, most adult cells remain in a non-proliferative state unless stimulated by internal or external factors to replace lost cells. Abnormal cell proliferation is a condition in which the cell's growth exceeds and is uncoordinated with normal cells. In such situations, cell division persists in the same excessive manner even after cessation of the stimuli, leading to persistent tumors. The tumor arises from the damaged cells that replicate to pass the damage to the daughter...
Single-Strand DNA Binding Proteins01:03

Single-Strand DNA Binding Proteins

For successful DNA replication, the unwinding of double-stranded DNA must be accompanied by stabilization and protection of the separated single strands of the DNA. This crucial task is performed by single-strand DNA-binding (SSB) proteins. They bind to the DNA in a sequence-independent manner, which means that the nitrogenous bases of the DNA need not be present in a specific order for binding of SSB proteins to it. The binding of SSB proteins straightens single-stranded DNA (ssDNA) and makes...
¹H NMR: Complex Splitting01:13

¹H NMR: Complex Splitting

A proton M that is coupled to a proton X results in doublet signals for M. However, NMR-active nuclei can be simultaneously coupled to more than one nonequivalent nucleus. When M is coupled to a second proton A, such as in styrene oxide, each peak in the doublet is split into another doublet.
Splitting diagrams or splitting tree diagrams are routinely used to depict such complex couplings. While drawing splitting diagrams, the splitting with the larger coupling constant is usually applied first.
¹H NMR of Conformationally Flexible Molecules: Temporal Resolution00:52

¹H NMR of Conformationally Flexible Molecules: Temporal Resolution

At room temperature, the chair conformer of cyclohexane undergoes rapid ring flipping between two equivalent chair conformers at a rate of approximately 105 times per second. These two chair conformers are in equilibrium. The rapid ring flipping results in the interconversion of the axial proton to an equatorial proton and an equatorial to the axial proton. Such interconversions are too rapid and cannot be detected on the NMR timescale. Hence, the NMR spectrometer cannot distinguish between the...
¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR01:15

¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR

The axial and equatorial protons in cyclohexane can be distinguished by performing a variable-temperature NMR experiment. In this process, except for one proton, the remaining eleven protons are replaced by deuterium. The deuterium substitution avoids the possible peak splitting caused by the spin-spin coupling between the adjacent protons. The remaining proton flips between the axial and equatorial positions.