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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.
Abstract:
DNA binding activity of p53 is crucial for its tumor suppressor function. Our recent studies have shown that four molecules of the DNA binding domain of human p53 (p53DBD) bind the response elements with high cooperativity and bend the DNA. By using A-tract phasing experiments, we find significant differences between the bending and twisting of DNA by p53DBD and by full-length human wild-type (wt) p53. Our data show that four subunits of p53DBD bend the DNA by 32-36 degrees, whereas wt p53 bends it by 51-57 degrees. The directionality of bending is consistent with major groove bends at the two pentamer junctions in the consensus DNA response element. More sophisticated phasing analyses also demonstrate that p53DBD and wt p53 overtwist the DNA response element by approximately 35 degrees and approximately 70 degrees, respectively. These results are in accord with molecular modeling studies of the tetrameric complex. Within the constraints imposed by the protein subunits, the DNA can assume a range of conformations resulting from correlated changes in bend and twist angles such that the p53-DNA tetrameric complex is stabilized by DNA overtwisting and bending toward the major groove at the CATG tetramers. This bending is consistent with the inherent sequence-dependent anisotropy of the duplex. Overall, the four p53 moieties are placed laterally in a staggered array on the external side of the DNA loop and have numerous interprotein interactions that increase the stability and cooperativity of binding. The novel architecture of the p53 tetrameric complex has important functional implications including possible p53 interactions with chromatin.
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.