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Updated: Jun 17, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Conservation of DNA-binding specificity and oligomerisation properties within the p53 family
Tobias Brandt1, Miriana Petrovich, Andreas C Joerger
1MRC Laboratory of Molecular Biology, Cambridge CB20QH, UK.
Background:
Transcription factors activate their target genes by binding to specific response elements. Many transcription factor families evolved from a common ancestor by gene duplication and subsequent divergent evolution. Members of the p53 family, which play key roles in cell-cycle control and development, share conserved DNA binding and oligomerisation domains but exhibit distinct functions. In this study, the molecular basis of the functional divergence of related transcription factors was investigated.
Results:
We characterised the DNA-binding specificity and oligomerisation properties of human p53, p63 and p73, as well as p53 from other organisms using novel biophysical approaches. All p53 family members bound DNA cooperatively as tetramers with high affinity. Despite structural differences in the oligomerisation domain, the dissociation constants of the tetramers was in the low nanomolar range for all family members, indicating that the strength of tetramerisation was evolutionarily conserved. However, small differences in the oligomerisation properties were observed, which may play a regulatory role. Intriguingly, the DNA-binding specificity of p53 family members was highly conserved even for evolutionarily distant species. Additionally, DNA recognition was only weakly affected by CpG methylation. Prediction of p53/p63/p73 binding sites in the genome showed almost complete overlap between the different homologs.
Conclusion:
Diversity of biological function of p53 family members is not reflected in differences in sequence-specific DNA binding. Hence, additional specificity factors must exist, which allowed the acquisition of novel functions during evolution while preserving original roles.
Insights
The p53 family of transcription factors, including p53, p63, and p73, exhibit highly conserved DNA binding despite distinct functions. Additional specificity factors likely explain their diverse roles in gene regulation.
Area of Science:
- Molecular Biology
- Genetics
- Biophysics
Background:
- Transcription factors regulate gene expression through DNA binding.
- The p53 family, crucial for cell-cycle control and development, shares conserved domains but has distinct functions.
- Investigating the molecular basis of functional divergence in related transcription factors.
Purpose of the Study:
- To characterize the DNA-binding specificity and oligomerization properties of human p53, p63, and p73.
- To compare these properties across different species.
- To understand the molecular mechanisms behind the functional divergence of the p53 family.
Main Methods:
- Novel biophysical approaches were employed.
- Characterization of DNA-binding specificity.
- Analysis of oligomerization properties.
Main Results:
- All p53 family members bind DNA cooperatively as high-affinity tetramers.
- Tetramerization strength is evolutionarily conserved, with minor variations.
- DNA-binding specificity is highly conserved across species and minimally affected by CpG methylation.
- Predicted binding sites for p53, p63, and p73 show significant overlap.
Conclusions:
- Functional diversity in the p53 family is not explained by differences in sequence-specific DNA binding.
- Additional specificity factors are likely responsible for the acquisition of novel functions during evolution.
- Original roles of p53 family members are preserved despite functional diversification.
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