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The evolution of MDM2 family genes
Jamil Momand1, Alberto Villegas, Vladimir A Belyi
1Department of Chemistry and Biochemistry, California State University Los Angeles, 90032, USA. jmomand@calstatela.edu
Abstract:
MDM2 and MDM4 are proto-oncoproteins that bind to and inhibit members of the p53 protein family, p53, p73 and possibly p63. p53 is a mammalian tumor suppressor and p63 and p73 are critical for development. With the sequencing of genomes from multiple organisms there is mounting evidence for a consensus scenario of p53 gene family evolution. A single p53/p63/p73 gene is in invertebrates and required for maintenance of germline DNA. Gene duplication occurred in an ancestor in common with cartilaginous fishes, giving rise to a separate p53 gene and at least one ancestral p63/p73 gene. In bony vertebrates, all three p53 gene family paralogs, p53, p63, and p73 are distinct genes. This raises the question of how MDM2 and MDM4 genes evolved. We show evidence that MDM2 and MDM4 arose from a gene duplication event prior to the emergence of bony vertebrates more than 440 millionyears ago. Comparative genome studies indicate that invertebrate organisms have only one MDM homolog. In jawed vertebrates, the p53-binding domains of MDM2 and MDM4 proteins evolved at a high rate, approaching the evolution rate of the MDM2-binding domain of p53. However, the MDM2-binding domain of p73 exhibits markedly stronger conservation suggesting novel p53-independent functions. The most conserved domain within all MDM2 family members is the RING domain of the MDM2 ortholog which is responsible for ubiquitination of p53 and heterodimerization with MDM4. We suggest a model where oligomerization is an ancient function of MDM and ubiquitination activity was acquired later near the MDM gene duplication event coinciding with the time of the emergence of p53 as a distinct gene.
Insights
The MDM2 and MDM4 genes, crucial for p53 protein family regulation, evolved from a single gene duplication event before bony vertebrates emerged. Their p53-binding domains evolved rapidly, while p73
Area of Science:
- Evolutionary biology
- Molecular biology
- Genomics
Background:
- MDM2 and MDM4 are proto-oncoproteins inhibiting the p53 protein family (p53, p73, p63).
- p53 is a tumor suppressor, while p63 and p73 are vital for development.
- The evolutionary history of p53 gene family members is increasingly understood through comparative genomics.
Purpose of the Study:
- To investigate the evolutionary origins of MDM2 and MDM4 genes.
- To understand the evolutionary dynamics of p53-binding domains in MDM2, MDM4, and p73.
- To propose a model for the functional evolution of MDM proteins.
Main Methods:
- Comparative genome analysis across various organisms.
- Analysis of evolutionary rates of protein domains, particularly the p53-binding domains of MDM2, MDM4, and p73.
- Examination of conserved domains like the RING domain.
Main Results:
- MDM2 and MDM4 likely arose from a gene duplication event over 440 million years ago, preceding bony vertebrates.
- Invertebrates possess a single MDM homolog, while jawed vertebrates have MDM2 and MDM4.
- The p53-binding domains of MDM2 and MDM4 evolved rapidly, whereas the MDM2-binding domain of p73 showed strong conservation, suggesting p53-independent roles.
Conclusions:
- MDM2 and MDM4 gene duplication predates the emergence of bony vertebrates.
- The RING domain is the most conserved MDM domain, mediating ubiquitination and heterodimerization.
- Oligomerization is an ancient MDM function, with ubiquitination activity acquired later, coinciding with the divergence of the p53 gene.
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