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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
DNA-binding protects p53 from interactions with cofactors involved in transcription-independent functions
Matteo Lambrughi1,2, Luca De Gioia3, Francesco Luigi Gervasio4
1Computational Biology Laboratory, Unit of Statistics, Bioinformatics and Registry, Strandboulevarden 49, 2100, Copenhagen, Denmark.
Abstract:
Binding-induced conformational changes of a protein at regions distant from the binding site may play crucial roles in protein function and regulation. The p53 tumour suppressor is an example of such an allosterically regulated protein. Little is known, however, about how DNA binding can affect distal sites for transcription factors. Furthermore, the molecular details of how a local perturbation is transmitted through a protein structure are generally elusive and occur on timescales hard to explore by simulations. Thus, we employed state-of-the-art enhanced sampling atomistic simulations to unveil DNA-induced effects on p53 structure and dynamics that modulate the recruitment of cofactors and the impact of phosphorylation at Ser215. We show that DNA interaction promotes a conformational change in a region 3 nm away from the DNA binding site. Specifically, binding to DNA increases the population of an occluded minor state at this distal site by more than 4-fold, whereas phosphorylation traps the protein in its major state. In the minor conformation, the interface of p53 that binds biological partners related to p53 transcription-independent functions is not accessible. Significantly, our study reveals a mechanism of DNA-mediated protection of p53 from interactions with partners involved in the p53 transcription-independent signalling. This also suggests that conformational dynamics is tightly related to p53 signalling.
Insights
DNA binding to the p53 protein induces distant conformational changes, affecting its function. This DNA-mediated effect protects p53 from certain interactions, highlighting the role of protein dynamics in cellular signaling.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Biophysics
Background:
- Allosteric regulation is crucial for protein function, yet DNA-binding effects on distal sites in transcription factors remain unclear.
- Understanding how local perturbations transmit through protein structures is challenging due to timescale limitations in simulations.
Purpose of the Study:
- To investigate DNA-induced structural and dynamic changes in the p53 tumor suppressor.
- To elucidate how these changes modulate cofactor recruitment and phosphorylation at Ser215.
- To reveal the molecular mechanism of DNA-mediated allosteric regulation in p53.
Main Methods:
- Utilized enhanced sampling atomistic simulations.
- Analyzed conformational changes in p53 structure and dynamics upon DNA binding.
- Investigated the impact of phosphorylation at Ser215 on p53 conformation.
Main Results:
- DNA interaction induced a significant conformational change in a region 3 nm away from the DNA binding site.
- DNA binding increased the population of an occluded minor state at the distal site by over 4-fold.
- Phosphorylation at Ser215 trapped p53 in a major state, rendering a key interface inaccessible.
Conclusions:
- A mechanism for DNA-mediated protection of p53 from transcription-independent signaling partners was revealed.
- Conformational dynamics are tightly linked to p53 signaling pathways.
- Allosteric regulation by DNA binding influences p53's interactions and functions.
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