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Lineage-specific change in craniofacial gene regulatory networks of syngnathid fishes revealed by integrating multiomics across fishes.

Created on 01 Aug 2026

Authors

Hope Healey, Clara Rehmann, Susan Bassham, William A Cresko

Published in

bioRxiv : the preprint server for biology. Jul 21, 2026. Epub Jul 21, 2026.

Abstract

Cranial neural crest (CNC) cells are essential developmental contributors to the remarkable diversity of vertebrate skull shapes, yet how underlying gene regulatory networks (GRNs) evolve to produce highly derived morphologies remains a challenging question. Syngnathid fishes (seahorses, pipefishes, pipehorses, and seadragons) are an opportune family of species in which to address this problem because of their unusual and extensive cranial diversity and their loss of craniofacial patterning genes, fgf3 and fgf4 . Here we investigated whether syngnathid craniofacial evolution experienced only a few localized network changes or required global rewiring of CNC GRNs. Using comparative single-cell RNA sequencing, ATAC-seq and whole genome alignments across Gulf pipefish, threespine stickleback, and zebrafish, we found that the core pharyngeal arch CNC gene network is notably conserved in syngnathids despite their derived morphology. However, we identified key local changes including expression of fgf22 in percomorph CNC-derived pharyngeal arch cells that is not shared with more basally diverging zebrafish, as well as syngnathid-specific changes in conserved regulatory elements associated with the genes ece1 and spry2 . We propose that, while loss of fgf3 expression causes severe craniofacial defects in zebrafish, pharyngeal CNC expression of fgf22 in the percomorph fish lineage provided functional redundancy and relaxed constraint on fgf3/4 , and that altered regulation of Fgf pathway modulators could contribute to craniofacial elaboration. Our findings support a model in which local GRN modifications, rather than widespread network rewiring, underlie the evolution of derived syngnathid craniofacial structures.
Understanding how developmental genetic changes drive the evolution of unique traits remains a long-standing challenge in biology. In the case of syngnathid fishes (pipefishes, seahorses, and seadragons), previous genomic studies identified candidate craniofacial gene losses which are proposed to relate to their elongate and derived heads, but the developmental impact of these losses is unknown. Through gene expression and comparative genomics analyses, we find that these fishes have distinct changes to craniofacial gene regulatory networks including gene content losses and gene expression gains and losses. Our study suggests that morphological adaptations may arise from multiple key changes within largely conserved developmental regulatory networks.

PMID:
42539196
Bibliographic data and abstract were imported from PubMed on 01 Aug 2026.

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