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Croce, J. C.

Publications and source records attributed to Croce, J. C..

2 recordsLinked to original sources

Single Nucleus Profiling Highlights the All-Brain Echinoderm Nervous System

Metazoans comprise diverse tissues and cell types, each essential for the survival of the organism. Most of these cell types are established early in embryogenesis and persist into adulthood. However, in indirectly developing sea urchins, the continuity between embryonic and adult stages is thus interrupted by a planktonic larval stage that undergoes complete metamorphosis. In addition, while the gene regulatory networks governing distinct embryonic and larval cell lineages are well studied, the molecular and morphological identities of post-metamorphic sea urchin cell types remain poorly understood. Here, we reconstructed the cell type atlas of post-metamorphic Paracentrotus lividus juveniles using single-nucleus transcriptomics, shedding light on the conservation of genetic regulatory mechanisms in post-metamorphic cell types. We identified cell signatures corresponding to eight distinct cell type groups and analyzed at least twenty-nine neuronal cell families, including fifteen unique photoreceptor cell signatures. By combining single cell transcriptomics with spatial gene expression analysis and high-resolution electron microscopy, we identified homologues of vertebrate neuronal genes and photoreceptive opsins expressed throughout the sea urchin body. These findings provide evidence that the echinoderm body plan is not only predominantly head-like, but also exhibits an all-brain organization in an animal previously considered to have a primitive nervous system.

evolutionary biology↗

An updated staging system for cephalochordate development: one table suits them all

Chordates are divided into three subphyla: Vertebrata, Tunicata and Cephalochordata. Phylogenetically, the Cephalochordata, more commonly known as lancelets or amphioxus, constitute the sister group of Vertebrata and Tunicata. Lancelets are small, benthic, marine filter feeders, and their roughly three dozen described species are divided into three genera: Branchiostoma, Epigonichthys and Asymmetron. Due to their phylogenetic position and their stereotypical chordate morphology and genome architecture, lancelets are key models for understanding the evolutionary history of chordates. Lancelets have thus been studied by generations of scientists, with the first descriptions of adult anatomy and developmental morphology dating back to the 19th century. Today, several different lancelet species are used as laboratory models, predominantly for developmental, molecular and genomic studies. Surprisingly, however, a universal staging system and an unambiguous nomenclature for developing lancelets have not yet been adopted by the scientific community. In this work, we characterized the development of the European amphioxus (Branchiostoma lanceolatum) using confocal microscopy and compiled a streamlined developmental staging system, from fertilization through larval life, including an unambiguous stage nomenclature. By tracing growth curves of the European amphioxus reared at different temperatures, we were able to show that our staging system permitted an easy conversion of any developmental time into a specific stage name. Furthermore, comparisons of embryos and larvae from the European lancelet (B. lanceolatum), the Florida lancelet (B. floridae), the Chinese lancelet (B. belcheri), the Japanese lancelet (B. japonicum) and the Bahamas lancelet (Asymmetron lucayanum) demonstrated that our staging system could readily be applied to other lancelet species. Although the detailed staging description was carried out on developing B. lanceolatum, the comparisons with other lancelet species thus strongly suggested that both staging and nomenclature are applicable to all extant lancelets. We conclude that this description of embryonic and larval development will be of great use for the scientific community and that it should be adopted as the new standard for defining and naming developing lancelets. More generally, we anticipate that this work will facilitate future studies comparing representatives from different chordate lineages.

developmental biology↗