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Crystal structure of the mouse p53 core DNA-binding domain at 2.7 A resolution
1The Wistar Institute and the Department of Chemistry, University of Pennsylvania, 19104, USA.
Abstract:
The p53 tumor suppressor is a sequence-specific DNA-binding protein that activates transcription in response to DNA damage to promote cell cycle arrest or apoptosis. The p53 protein functions in a tetrameric form in vivo and contains four domains including an N-terminal transcriptional activation domain, a C-terminal regulatory domain, a tetramerization domain, and a central core DNA-binding domain that is the site of the majority of tumor-derived mutations. Here we report the 2.7-A crystal structure of the mouse p53 core domain. Like the human p53 core domain in complex with DNA, the mouse p53 core domain adopts an immunoglobulin-like beta sandwich architecture with a series of loops and short helices at opposite ends of the beta sandwich. Comparison of the DNA-bound and DNA-free p53 core domains reveals that while the central beta sandwich architecture remains largely unchanged, a loop region important for DNA binding undergoes significant rearrangement. Although this loop region mediates major groove DNA contacts in the DNA-bound structure, it adopts a conformation that is incompatible with DNA binding in the DNA-free structure. Interestingly, crystals of the DNA-free core domain contain a noncrystallographic trimer with three nearly identical subunit-subunit (dimer) contacts. These dimer contacts align the p53 core domains in a way that is incompatible with simultaneous DNA binding by both protomers of the dimer. Surprisingly, similar dimer contacts are observed in crystals of the human p53 core domain with DNA in which only one of the three p53 protomers in the asymmetric unit cell is specifically bound to DNA. We propose that the p53 core domain dimer that is seen in the crystals described here represents a physiologically relevant inactive form of p53 that must undergo structural rearrangement for sequence-specific DNA binding.
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.