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Britz, R.

Publications and source records attributed to Britz, R..

2 recordsLinked to original sources

Evolution and developmental diversity of skin spines in pufferfish

Teleost fishes develop a huge variety of skin ornaments. How these diverse skin structures develop in fishes is unknown. The teleost fish order Tetraodontiformes includes some of the most unusual fishes such as the ocean sunfish, triggerfish and pufferfish, and they all can develop a vast assortment of scale derivatives that cover their bodies. Pufferfish have some of the most extreme scale derivatives, dermal spines, which are erected during their characteristic puffing behavior. Here we show that pufferfish spines develop through conserved gene interactions essential for other vertebrate skin appendage formation, like hair and feathers. However, pufferfish spines form without EDA (ectodysplasin), an essential molecule for the development of most vertebrate skin appendages. Modifying signaling pathways lead to loss or reduction of spine coverage in pufferfish, suggesting a mechanism for skin appendage diversification. We suggest that pufferfish skin spines evolved from a basic teleost scale-type through derived gene network modification in Tetraodontiformes.

developmental biology

The most developmentally truncated fishes show extensive Hox gene loss and miniaturized genomes

Hox genes play a fundamental role in regulating the embryonic development of all animals. Manipulation of these transcription factors in model organisms has unraveled key aspects of evolution, like the transition from fin to limb. However, by virtue of their fundamental role and pleiotropic effects, simultaneous knockouts of several of these genes pose significant challenges. Here, we report on evolutionary simplification in two species of the dwarf minnow genus Paedocypris using whole genome sequencing. The two species feature unprecedented Hox gene loss and genome reduction in association with their massive developmental truncation. We also show how other genes involved in the development of musculature, nervous system, and skeleton have been lost in Paedocypris, mirroring its highly progenetic phenotype. Further, we identify two mechanisms responsible for genome streamlining: severe intron shortening and reduced repeat content. As a naturally simplified system closely related to zebrafish, Paedocypris provides novel insights into vertebrate development.

genomics