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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Reversal of the DNA-binding-induced loop L1 conformational switch in an engineered human p53 protein
Soheila Emamzadah1, Laurence Tropia1, Ilena Vincenti2
1Department of Molecular Biology, University of Geneva, 1205 Geneva, Switzerland.
Abstract:
The gene encoding the p53 tumor suppressor protein, a sequence-specific DNA binding transcription factor, is the most frequently mutated gene in human cancer. Crystal structures of homo-oligomerizing p53 polypeptides with specific DNA suggest that DNA binding is associated with a conformational switch. Specifically, in the absence of DNA, loop L1 of the p53 DNA binding domain adopts an extended conformation, whereas two p53 subunits switch to a recessed loop L1 conformation when bound to DNA as a tetramer. We previously designed a p53 protein, p53FG, with amino substitutions S121F and V122G targeting loop L1. These two substitutions enhanced the affinity of p53 for specific DNA yet, counterintuitively, decreased the residency time of p53 on DNA. Here, we confirmed these DNA binding properties of p53FG using a different method. We also determined by crystallography the structure of p53FG in its free state and bound to DNA as a tetramer. In the free state, loop L1 adopted a recessed conformation, whereas upon DNA binding, two subunits switched to the extended loop L1 conformation, resulting in a final structure that was very similar to that of wild-type p53 bound to DNA. Thus, altering the apo structure of p53 changed its DNA binding properties, even though the DNA-bound structure was not altered.
Insights
Altering the p53 protein’s structure (apo structure) changed its DNA binding properties. This modification affected how p53 interacts with DNA, even though the DNA-bound structure remained similar to the wild-type p53.
Area of Science:
- Molecular Biology
- Structural Biology
- Cancer Research
Background:
- The p53 tumor suppressor protein is a transcription factor crucial for preventing cancer.
- p53's DNA binding is regulated by conformational changes, particularly in loop L1.
- Mutations in the p53 gene are common in human cancers.
Purpose of the Study:
- To investigate how altering the apo structure of p53 affects its DNA binding properties.
- To characterize the structural and DNA binding characteristics of a modified p53 protein (p53FG).
Main Methods:
- Crystallography was used to determine the structure of p53FG in its free and DNA-bound states.
- DNA binding assays were employed to confirm the binding properties of p53FG.
Main Results:
- The modified p53FG protein exhibited altered DNA binding kinetics, with enhanced affinity but decreased residency time.
- In its free state, p53FG displayed a recessed loop L1 conformation.
- Upon DNA binding, p53FG adopted an extended loop L1 conformation, similar to wild-type p53, but its DNA binding properties were altered.
Conclusions:
- Modifying the apo structure of p53 can significantly alter its DNA binding characteristics.
- These findings provide insights into the structure-function relationship of p53 and its regulation in cancer.
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