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Woltering, J. M.

Publications and source records attributed to Woltering, J. M..

2 recordsLinked to original sources

Dorsoventral limb patterning in paired appendages emerged via regulatory repurposing of an ancestral posterior fin module

Limbs exhibit adaptive differentiation along their dorsoventral (DV) axis, determined by the dorsal expression of the LIM homeobox gene Lmx1b. The paired appendages (i.e. the pectoral and pelvic fins from which limbs evolved) arose in an early jawless ancestor via co-option of a midline-fin genetic program including modules for anteroposterior (AP) and proximodistal (PD) patterning. Unlike the AP and PD axes, median fins lack an unambiguous DV axis, leaving the origin of this DV pattern in paired appendages unresolved. Here, we describe Lmx1b expression in the posterior midline fins of cichlids, sturgeons and catsharks, revealing an ancestral role for this gene predating the origin of paired appendages. In median fins, Lmx1b activation depends on shh from the ZPA, whereas in paired fins it relies on ectodermal wnt signalling, indicating the evolution of novel regulatory inputs for dorsal patterning. We observe ephA4b, a putative Lmx1b target, is co-expressed with Lmx1b in dorsal pectoral and posterior midline fins and downregulated alongside Lmx1b, suggesting a role in both fin types related to axon guidance. We propose that novel regulation drove the repurposing of Lmx1b from posterior to dorsal fin determinant, with co-option of conserved downstream targets. Altogether, our findings demonstrate that the DV axis of paired appendages represents an evolutionary innovation arising from the integration of ancestral midline fin and flank determinants with novel regulatory inputs.

evolutionary biology↗

A comparative analysis of the ontogeny of syngnathids (pipefishes & seahorses) reveals how heterochrony contributed to their diversification

BackgroundSyngnathids are a highly derived and diverse fish clade comprising the pipefishes, pipe-horses and seahorses. They are characterized by a plethora of iconic traits that increasingly capture the attention of biologists, including geneticists, ecologists and developmental biologists. The current understanding of the origins of their derived body plan is, however, hampered by incomplete and limited descriptions of the early syngnathid ontogeny. ResultsWe provide a comprehensive description of the development of Nerophis ophidion, Syngnathus typhle, Hippocampus erectus from early cleavage stages to release from the male brooding organ and beyond, including juvenile development. We comparatively describe skeletogenesis with a particular focus on dermal bony plates, the snout-like jaw morphology, and appendages. ConclusionsThis most comprehensive and detailed account of syngnathid development to date suggests that convergent phenotypes (e.g. reduction and loss of the caudal fins), likely arose by distinct ontogenetic means in pipefish and seahorses. Comparison of the ontogenetic trajectories of S. typhle and H. erectus provides indications that characteristic features of the seahorse body plan result from developmental truncation. Altogether this work provides a valuable resource and framework for future research to understand the evolution of the outlandish syngnathid morphology from a developmental perspective. Bullet pointsO_LISyngnathids (pipefish, pipe-horses and seahorses) are a highly derived and diverse fish taxon and many of their most iconic traits - and these traits variation across species - develop during their early ontogeny. C_LIO_LIThis study provides a detailed description and staging table of the entire pre-release development (and beyond) of three distinct syngnathids (two phylogenetically distinct pipefishes and a seahorse) with a focus on the skeletal elements forming the cranium, axial skeleton, appendages and the plate armor. C_LIO_LIThe data provided in this study suggests that developmental heterochrony, i.e. alterations in the rate and timing of developmental processes between lineages, might be a central evolutionary process shaping the morphological diversity found in syngnathids today. C_LI

developmental biology↗