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Updated: Nov 17, 2025

Purification of Ubiquitinated p53 Proteins from Mammalian Cells
Published on: March 21, 2022
p53 Is Potentially Regulated by Cyclophilin D in the Triple-Proline Loop of the DNA Binding Domain
Abstract:
The multifunctional protein p53 is the central molecular sensor of cellular stresses. The canonical function of p53 is to transcriptionally activate target genes in response to, for example, DNA damage that may trigger apoptosis. Recently, p53 was also found to play a role in the regulation of necrosis, another type of cell death featured by the mitochondrial permeability transition (mPT). In this process, p53 directly interacts with the mPT regulator cyclophilin D, the detailed mechanism of which however remains poorly understood. Here, we report a comprehensive computational investigation of the p53-cyclophilin D interaction using molecular dynamics simulations and associated analyses. We have identified the specific cyclophilin D binding site on p53 that is located at proline 151 in the DNA binding domain. As a peptidyl-prolyl isomerase, cyclophilin D binds p53 and catalyzes the cis-trans isomerization of the peptide bond preceding proline 151. We have also characterized the effect of such an isomerization and found that the p53 domain in the cis state is overall more rigid than the trans state except for the local region around proline 151. Dynamical changes upon isomerization occur in both local and distal regions, indicating an allosteric effect elicited by the isomerization. We present potential allosteric communication pathways between proline 151 and distal sites, including the DNA binding surface. Our work provides, for the first time, a model for how cyclophilin D binds p53 and regulates its activity by switching the configuration of a specific site.
Insights
The protein p53 interacts with cyclophilin D to regulate necrosis. This study reveals how cyclophilin D binds p53, catalyzing a specific isomerization that alters p53
Area of Science:
- Molecular Biology
- Biochemistry
- Computational Biology
Background:
- The tumor suppressor protein p53 is a key sensor of cellular stress, regulating apoptosis.
- p53 also participates in necrosis, a distinct cell death pathway involving mitochondrial permeability transition (mPT).
- The interaction between p53 and the mPT regulator cyclophilin D is crucial but mechanistically unclear.
Purpose of the Study:
- To computationally investigate the molecular interaction between p53 and cyclophilin D.
- To elucidate the binding mechanism and functional consequences of p53-cyclophilin D interaction.
Main Methods:
- Molecular dynamics simulations.
- Computational analysis of protein-protein interactions.
Main Results:
- Identified a specific binding site for cyclophilin D on p53 at proline 151 within the DNA binding domain.
- Demonstrated that cyclophilin D catalyzes the cis-trans isomerization of the peptide bond preceding proline 151.
- Characterized the conformational changes induced by isomerization, showing increased rigidity in the cis state and identifying potential allosteric pathways to the DNA binding surface.
Conclusions:
- Provided the first computational model for how cyclophilin D binds to p53.
- Established that cyclophilin D regulates p53 activity through isomerization at proline 151, impacting distal functional sites.
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