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.

Abstract

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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