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Updated: Feb 2, 2026

Molecular Evolution of the Tre Recombinase
Published on: May 29, 2008
Phylogenetic, molecular evolution and structural analyses of the WFDC1/prostate stromal protein 20 (ps20)
Christian Solís-Calero1, Hernandes F Carvalho1
1Department of Structural and Functional Biology, State University of Campinas, 13083-863 Campinas, São Paulo, Brazil.
Abstract:
The WFDC1 gene is frequently down-regulated or lost in prostate cancer, and the encoded protein, ps20, has been implicated in epithelial cell behaviour and angiogenesis. However, ps20 remains largely uncharacterised with respect to its structure and interacting partners. This study characterised the evolution, functionality and structural characteristics of WFDC1/ps20 using phylogenetic reconstruction and other computational approaches. Bayesian phylogenetic analyses suggested that ps20 appeared in a common ancestor of deuterostomes-protostomes. The rate of evolutionary change within the coding regions of vertebrate WFDC1 genes and the synteny conservation in mammals differed from that of other vertebrate clades, indicating a possible functional diversity of ps20 homologues. A gene set enrichment analysis of the genes around WFDC1 (conserved synteny) showed functional relationships between the WFDC1, CDH13, CRISPLD2, IRF8 and TFPI2 genes. The molecular evolution of ps20 has been driven by purifying selection, particularly in the segments corresponding to exons 3 and 4, which encode the most conserved regions of the protein. A co-evolution analysis showed that residues within these regions co-vary with each other during the evolution of ps20. These results show that the regions corresponding to exons 3 and 4 are ps20-specific structure-function modules. Homology modelling of the exon 2-encoded polypeptide and subsequent dynamics calculus using a Gaussian network model showed that residues with high conformational flexibility are part of a loop region involved in protein-protein recognition, given the similarity with other serine protease inhibitors. Residues C96, R94, L105, and C66 are critical for the integrity and functionality of this ps20 region.
Insights
The WFDC1 gene, encoding ps20, is crucial for cell behavior and angiogenesis, often lost in prostate cancer. This study reveals ps20
Area of Science:
- Evolutionary Biology
- Molecular Biology
- Genomics
Background:
- The WFDC1 gene and its protein product, ps20, are implicated in epithelial cell behavior and angiogenesis.
- WFDC1 is frequently down-regulated or lost in prostate cancer, but its structure and interactions are poorly understood.
Purpose of the Study:
- To characterize the evolution, functionality, and structural features of WFDC1/ps20 using computational methods.
- To identify conserved regions and potential protein-protein interaction sites within ps20.
Main Methods:
- Bayesian phylogenetic analysis
- Gene set enrichment analysis
- Analysis of conserved synteny
- Molecular evolution analysis (purifying selection, co-evolution)
- Homology modeling
- Gaussian network model dynamics calculus
Main Results:
- Phylogenetic analysis indicates ps20 emerged in an early common ancestor.
- Vertebrate WFDC1 evolution and mammalian synteny suggest functional diversification.
- Functional relationships were found between WFDC1 and neighboring genes (CDH13, CRISPLD2, IRF8, TFPI2).
- Exons 3 and 4 encode conserved, ps20-specific structure-function modules, shaped by purifying selection and co-evolving residues.
- Homology modeling and dynamics calculus identified a flexible loop in the exon 2 region involved in protein-protein interactions, with key residues (C96, R94, L105, C66) critical for function.
Conclusions:
- The study elucidates the evolutionary history and structural basis of ps20 functionality.
- Conserved regions in exons 3 and 4 represent key structure-function modules.
- A flexible loop in the exon 2 region is crucial for protein-protein recognition, highlighting ps20's potential role in molecular interactions.
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