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Updated: Jul 6, 2026

Purification of Ubiquitinated p53 Proteins from Mammalian Cells
Published on: March 21, 2022
Elevated p53 expression is associated with dysregulation of the ubiquitin-proteasome system in dilated cardiomyopathy
Emma J Birks1, Najma Latif, Karine Enesa
1Heart Science Centre, National Heart and Lung Institute, Imperial College London, Harefield Hospital, Harefield, UK.
Aims:
The molecular mechanisms that regulate cardiomyocyte apoptosis and their role in human heart failure (HF) are uncertain. Expression of the apoptosis regulator p53 is governed by minute double minute 2 (MDM2), an E3 enzyme that targets p53 for ubiquitination and proteasomal processing, and by the deubiquitinating enzyme, herpesvirus-associated ubiquitin-specific protease (HAUSP), which rescues p53 by removing ubiquitin chains from it. Here, we examined whether elevated expression of p53 was associated with dysregulation of ubiquitin-proteasome system (UPS) components and activation of downstream effectors of apoptosis in human dilated cardiomyopathy (DCM).
Methods And Results:
Left ventricular myocardial samples were obtained from patients with DCM (n = 12) or from non-failing (donor) hearts (n = 17). Western blotting and immunohistochemistry revealed that DCM tissues contained elevated levels of p53 and its regulators MDM2 and HAUSP (all P < 0.01) compared with non-failing hearts. DCM tissues also contained elevated levels of polyubiquitinated proteins and possessed enhanced 20S-proteasome chymotrypsin-like activities (P < 0.04) as measured in vitro using a fluorogenic substrate. DCM tissues contained activated caspases-9 and -3 (P < 0.001) and reduced expression of the caspase substrate PARP-1 (P < 0.05). Western blotting and immunohistochemistry revealed that DCM tissues contained elevated expression levels of caspase-3-activated DNAse (CAD; P < 0.001), which is a key effector of DNA fragmentation in apoptosis and also contained elevated expression of a potent inhibitor of CAD (ICAD-S; P < 0.01).
Conclusion:
Expression of p53 in human DCM is associated with dysregulation of UPS components, which are known to regulate p53 stability. Elevated p53 expression and caspase activation in DCM was not associated with activation of both CAD and its inhibitor, ICAD-S. Our findings are consistent with the concept that apoptosis may be interrupted and therefore potentially reversible in human HF.
Insights
In human dilated cardiomyopathy, elevated p53 expression is linked to ubiquitin-proteasome system dysregulation. This suggests apoptosis may be interrupted and potentially reversible in heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Mechanisms of Disease
- Cellular Apoptosis
Background:
- The molecular basis of cardiomyocyte apoptosis in human heart failure (HF) remains unclear.
- p53 stability is regulated by MDM2 (E3 enzyme) and HAUSP (deubiquitinating enzyme).
- Dilated cardiomyopathy (DCM) is a form of heart failure characterized by ventricular dysfunction.
Purpose of the Study:
- To investigate the association between elevated p53 expression and dysregulation of the ubiquitin-proteasome system (UPS) in human DCM.
- To examine the activation of downstream apoptotic effectors in DCM.
Main Methods:
- Left ventricular myocardial samples from DCM patients (n=12) and non-failing donors (n=17) were analyzed.
- Western blotting and immunohistochemistry were used to assess protein levels.
- Proteasome activity was measured in vitro using fluorogenic substrates.
Main Results:
- DCM tissues showed elevated levels of p53, MDM2, and HAUSP compared to controls.
- Increased polyubiquitinated proteins and enhanced 20S-proteasome activity were observed in DCM.
- Activated caspases-9 and -3, reduced PARP-1, and elevated CAD and ICAD-S expression were found in DCM.
Conclusions:
- p53 expression in human DCM is associated with UPS component dysregulation, impacting p53 stability.
- Elevated p53 and caspase activation in DCM were not linked to simultaneous activation of both CAD and its inhibitor ICAD-S.
- These findings suggest that apoptosis may be interrupted and potentially reversible in human heart failure.
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