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Less, but more: new insights from appendicularians on chordate Fgf evolution and the divergence of tunicate lifestyles.

Sanchez-Serna, G.; Badia-Ramentol, J.; Bujosa, P.; Ferrandez-Roldan, A.; Torres-Aguila, N.; Fabrega-Torrus, M.; Wibisana, J. N.; Mansfield, M. J.; Plessy, C.; Luscombe, N. M.; Albalat, R.; Canestro, C.

2024-08-30 evolutionary biology
10.1101/2024.08.30.610304 bioRxiv
Show abstract

The impact of gene loss on the divergence of taxa and the generation of evolutionary innovations is a fundamental aspect of Evolutionary Biology that remains unclear. Here, using the evolution of the Fibroblast Growth Factors (FGFs) in appendicularians as a case study, we investigate how gene losses have influenced the evolution of chordates, especially the divergence among tunicates. Our work reveals an unprecedented case of massive losses of all Fgf gene subfamilies, except for the Fgf9/16/20 and Fgf11/12/13/14, which in turn suffered two bursts of gene duplications. Phylogenetic inferences and genomic analyses of gene synteny conservation, gene architecture, alternative splicing and protein 3D-structure have allowed us to reconstruct the history of appendicularian Fgf genes in the context of chordate evolution, providing compelling evidence supporting the paracrine secreting functions and the intracellular functions of the Fgf9/16/20 and Fgf11/12/13/14 subfamilies, respectively. Exhaustive analysis of developmental Fgf expression in Oikopleura dioica as a model for appendicularians reveals a paradigmatic case of what could be referred as "less, but more", providing a conceptual evolutionary framework characterized by four associated evolutionary patterns: conservation of ancestral Fgf expression domains; function shuffling between paralogs upon gene loss; innovation of new expression domains after the bursts of Fgf duplications; and the extinction of Fgf functions linked to gene losses. The findings of this work allow us to formulate novel hypotheses about the potential impact of losses and duplications of Fgf genes on the transition from an ancestral ascidian-like biphasic lifestyle to a fully free-living style of appendicularians. These hypotheses include the massive co-option of Fgf genes for the patterning of the oikoblast responsible of the house architecture, and for the development of the tail fin; the recruitment of Fgf11/12/13/14 genes into the evolution of a new mouth, and their role modulating neuronal excitability; the evolutionary innovation of an "anterior tail" FGF signaling mesodermal source upon the loss of retinoic acid signaling; and the potential link between the loss of Fgf7/10/22 and Fgf8/17/18 and the loss of drastic metamorphosis, mesenchymal cells and lack of tail absorption in appendicularians, in contrast to ascidians.

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