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Papadopoulou, S.

Publications and source records attributed to Papadopoulou, S..

2 recordsLinked to original sources

Protist quantitative stable isotope probing identifies diverse active grazers in natural freshwater communities

Bacterivorous protists are central to aquatic food webs, mediating the transfer of carbon and nutrients to higher trophic levels through the microbial loop. In natural communities, a major challenge remains in linking protist grazing activity to environmental sequences and identifying which taxa are actively feeding at the community level. Here, we present the first application of quantitative stable isotope probing (qSIP) in a grazing experiment. By combining qSIP with 18S rRNA gene amplicon sequencing, we linked prey assimilation to the identity of active protist predators at the operational taxonomic unit (OTU) level. In a replicated 36-h bottle-experiment, live 13C, 15N-labeled Limnohabitans planktonicus cells were added to natural samples from a lake pelagic site and its main inlet stream. Although hydrologically connected, protist richness was higher in the inlet than in the lake, yet a similar number of taxa incorporated prey biomass, comprising 108 OTUs in the inlet and 107 OTUs in the lake, including both rare and abundant taxa. Of these, 26 OTUs were labeled at both sites. The most strongly labeled protist in the inlet was a putative phago-mixotrophic prasinophyte, whereas in the lake it was an uncultured chrysophyte. Across sites, prey incorporation occurred in a broad range of taxa, including heterotrophs (e.g., choanoflagellates, cercozoans, ciliates, centrohelids), putative mixotrophs (e.g., cryptophytes, chrysophytes, dictyochophytes), parasitic protists and fungi. These results demonstrate the potential of qSIP to resolve trophic interactions at fine taxonomic resolution in natural communities and highlight new opportunities to study complex microbial food webs across environmental systems.

ecology↗

Vgll4 Proteins limit Organ Size in Zebrafish through Yap1-Dependent and -Independent Mechanisms

Precise control of organ size is crucial during development and homeostasis. Dysregulation of the underlying mechanisms can result in organ malformation and tumorigenesis. Although the Hippo signaling pathway plays a key role in regulating organ growth, the precise regulation of its effectors, YAP1 and WWTR1, remains unclear. To gain insights into tissue growth control during organ formation, we used the zebrafish posterior lateral line primordium (pLLP), a migratory group of epithelial cells that forms sensory organs, as a model. We demonstrate that Yap1 growth-promoting activity in the pLL system is modulated not only in the cytoplasm but also in the nucleus by Vgll4 proteins. We propose a model in which Yap1, together with Tead proteins, ensures that the pLLP contains a sufficient number of cells before migration begins. Vgll4b and Vgll4l, in contrast, function partially redundantly, to limit pLLP cell number, with Vgll4b showing a stronger tumor-suppressor activity. Our data indicate that Vgll4b/4l counteract Yap1 activity by competing with Yap1 for binding to Tead proteins, but also via a Yap1-independent mechanism. Altogether, this study reveals that a precise balance between Yap1 and Vgll4 proteins ensures proper regulation of cell number in the pLLP.

developmental biology↗