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Uncovering missing pieces: duplication and deletion history of arrestins in deuterostomes
Henrike Indrischek1,2,3, Sonja J Prohaska4,5, Vsevolod V Gurevich6
1Computational EvoDevo Group, Department of Computer Science, Universität Leipzig, Härtelstraße 16-18, Leipzig, D-04107, Germany. henrike@bioinf.uni-leipzig.de.
Background:
The cytosolic arrestin proteins mediate desensitization of activated G protein-coupled receptors (GPCRs) via competition with G proteins for the active phosphorylated receptors. Arrestins in active, including receptor-bound, conformation are also transducers of signaling. Therefore, this protein family is an attractive therapeutic target. The signaling outcome is believed to be a result of structural and sequence-dependent interactions of arrestins with GPCRs and other protein partners. Here we elucidated the detailed evolution of arrestins in deuterostomes.
Results:
Identity and number of arrestin paralogs were determined searching deuterostome genomes and gene expression data. In contrast to standard gene prediction methods, our strategy first detects exons situated on different scaffolds and then solves the problem of assigning them to the correct gene. This increases both the completeness and the accuracy of the annotation in comparison to conventional database search strategies applied by the community. The employed strategy enabled us to map in detail the duplication- and deletion history of arrestin paralogs including tandem duplications, pseudogenizations and the formation of retrogenes. The two rounds of whole genome duplications in the vertebrate stem lineage gave rise to four arrestin paralogs. Surprisingly, visual arrestin ARR3 was lost in the mammalian clades Afrotheria and Xenarthra. Duplications in specific clades, on the other hand, must have given rise to new paralogs that show signatures of diversification in functional elements important for receptor binding and phosphate sensing.
Conclusion:
The current study traces the functional evolution of deuterostome arrestins in unprecedented detail. Based on a precise re-annotation of the exon-intron structure at nucleotide resolution, we infer the gain and loss of paralogs and patterns of conservation, co-variation and selection.
Insights
This study details the evolution of arrestin proteins in deuterostomes, revealing gene duplication and loss events. These findings illuminate the functional diversification of arrestins, crucial for G protein-coupled receptor signaling.
Area of Science:
- Molecular Biology
- Evolutionary Biology
- Genomics
Background:
- Cytosolic arrestin proteins regulate G protein-coupled receptor (GPCR) desensitization by competing with G proteins for active receptors.
- Arrestins also function as signaling transducers in their active conformations, making them significant therapeutic targets.
- Understanding arrestin interactions with GPCRs and other partners is key to predicting signaling outcomes.
Purpose of the Study:
- To elucidate the detailed evolutionary history of arrestin proteins within deuterostomes.
- To precisely map the duplication and deletion patterns of arrestin paralogs.
- To infer functional evolution based on sequence and structural analysis.
Main Methods:
- Genome-wide searches for arrestin paralogs in deuterostome genomes and gene expression data.
- Advanced exon detection and gene assignment strategies to improve annotation accuracy.
- Analysis of exon-intron structures at nucleotide resolution to infer evolutionary events.
Main Results:
- Identified and mapped the duplication and deletion history of arrestin paralogs, including tandem duplications and retrogene formation.
- Revealed that two whole genome duplication events in vertebrates led to four arrestin paralogs.
- Discovered the loss of visual arrestin (ARR3) in specific mammalian clades (Afrotheria and Xenarthra) and the emergence of new paralogs with diversified functional elements.
Conclusions:
- The study provides an unprecedentedly detailed trace of functional evolution for deuterostome arrestins.
- Inferred patterns of paralog gain/loss, conservation, co-variation, and selection based on precise exon-intron structure re-annotation.
- Highlights the dynamic evolutionary trajectory of arrestin proteins and their functional adaptations.
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