Adult molluscs produce shells with diverse morphologies and ornamentations, different colour patterns and microstructures. The larval shell, however, is a phenotypically more conserved structure. How do developmental and evolutionary processes generate varying diversity at different life-history stages within a species? Using live imaging, histology, scanning electron microscopy and transcriptomic profiling, we have described shell development in a heteroconchian bivalve, the Antarctic clam, and compared it to adult shell secretion processes in the same species Adult downstream shell genes, such as those encoding extracellular matrix proteins and biomineralization enzymes, were largely not expressed during shell development. Instead, a development-specific downstream gene repertoire was expressed. Upstream regulatory genes such as transcription factors and signalling molecules were largely conserved between developmental and adult shell secretion. Comparing heteroconchian data with recently reported pteriomorphian larval shell development data suggests that, despite being phenotypically more conserved, the downstream effectors constituting the larval shell 'tool-kit' may be as diverse as that of adults. Overall, our new data suggest that a larval shell formed using development-specific downstream effector genes is a conserved and ancestral feature of the bivalve lineage, and possibly more broadly across the molluscs.
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http://dx.doi.org/10.1098/rsos.221022 | DOI Listing |
PeerJ
January 2025
CIBIO, Centro de Investigação em Biodiversidade e Recursos Genéticos, InBIO Laboratório Associado, Universidade do Porto, Campus de Vairão, Porto, Portugal.
The rough pen shell Linnaeus, 1758 (family Pinnidae) is a mollusc with an Atlantic-Mediterranean distribution, typically inhabiting coarse sandy substrates. Habitat degradation is considered the primary cause of population decline, leading to the designation 'Vulnerable' in certain regions. In this study, we conducted a genetic analysis of populations of from Cabo Verde and compared them with populations from the Mediterranean and Macaronesia.
View Article and Find Full Text PDFZool Stud
September 2024
German Centre for Marine Biodiversity Research (DZMB), c/o Biozentrum Grindel, Martin-Luther-King-Platz 3, 20146 Hamburg, Germany. E-mail: (Neuhaus) ; (Brix).
Confined by the Mid-Atlantic Ridge and the European continental shelf, the deep-sea acorn barnacle (Hoek, 1883) lives in the northeast Atlantic deep sea, where it has been frequently reported in high current areas. Cemented to a solid substrate during its entire adult life, the species can only disperse by means of planktotrophic nauplius larvae. This study reports on the occurrence, ecology and genetic connectivity of from four sites within the northeastern Iceland Basin and presents the first record of the species living affiliated with hydrothermal vent field on the Reykjanes Ridge axis.
View Article and Find Full Text PDFBMC Res Notes
December 2024
Department of Cell and Molecular Biology, Uppsala University, Box 549, 751 24, Uppsala, Sweden.
Insects
November 2024
Istituto Zooprofilattico Sperimentale della Sardegna, 09125 Cagliari, Italy.
Heliciculture farms are susceptible to significant biotic issues that can impact snail breeding, among them, the entomofauna predation of snails. Predatory insects can cause damage to snail shells during predation, and sometimes, the specific type of damage may be characteristic of certain insect families or species. Under laboratory conditions, we analysed the predatory activity of the species Illiger, 1798 (Coleoptera: Silphidae), (Müller, 1764) (Coleoptera: Staphylinidae), () Kraatz, 1899 (Coleoptera: Carabidae), and Geisthardt, 1987 (Coleoptera: Lampyridae) against the gastropod (Müller, 1774) reared on snail farms located in the Sardinian region.
View Article and Find Full Text PDFJ Hazard Mater
December 2024
Laboratory of Agrobiodiversity and Ecotoxicology, Higher Institute of Agronomy, University of Sousse, Tunisia; Higher Institute of Biotechnology, University of Monastir, Tunisia.
The extensive presence of microplastics (MPs) in marine ecosystems constitutes a major threat to aquatic environments. The gametes of the marine invertebrate Mytilus galloprovincialis, which is essential for coastal ecosystems, are released directly into the water, potentially exposing them to environmental microplastics (EMPs). This study examined the effects of exposing M.
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