@genikhovich.bsky.social

Evolution of developmental mechanisms, especially axial patterning. Experimental embryology. 🪸🪼

The third chapter in our coral single-cell trilogy is here. After mapping cell type diversity in Stylophora (Levy 2021) and exploring facultative symbiosis in Oculina (Levy 2025), we now uncover cell type-specific responses to heat stress. Find out more in @xgrau.bsky.social's thread below.

Cell-resolved transcriptional responses during heat-induced coral bleaching and recovery

Coral reefs depend on an intracellular symbiosis between cnidarian hosts and photosynthetic dinoflagellates that is disrupted by ocean warming, causing coral bleaching. Yet how these responses are dis...

biorxiv.org

Xavier Grau-Bové 🌾@xgrau.bsky.social · 2w ago

I'm happy to share our latest on #coral single-cell biology: a transcriptomic timecourse of heat stress in Stylophora pistillata, from bleaching to recovery 🪸🌊 This project was spearheaded by Shani Levy and carried through in @arnausebe.bsky.social's lab at @crg.eu. www.biorxiv.org/content/10.6...

Stylophora pistillata colony from the Red Sea. Picture by Hagai Nativ.

Prebilaterian Origin of Monoaminergic Signalling is out! This paper represents four years of work, not only mine, but friends and colleagues. I am particularly grateful to Tatiana Mayorova; without her help, this paper would not have been nearly as complete. www.sciencedirect.com/science/arti...

Prebilaterian origin of monoaminergic signaling

Monoamines such as serotonin, dopamine, and tyramine regulate physiological and behavioral processes in bilaterian animals, but the evolutionary origi…

sciencedirect.com

Pleased to share our study on brachiopod genomes and bilaterian dorsal–ventral patterning, now out in Nature Communications. doi.org/10.1038/s414... We present the first chromosome-level genome of a brachiopod and show that the core patterning mechanism is deeply conserved across bilaterians.

Brachiopod genome unveils the evolution of BMP signalling in bilaterian body patterning - Nature Communications

A chromosome-level brachiopod genome reveals deep conservation of BMP-mediated dorsal–ventral patterning and neural inhibition, suggesting the spiralian ancestor retained the ancestral mechanism in bi...

doi.org

www.biorxiv.org/content/10.6...

Morphological, molecular, and functional evidence for a CNS-like oral nerve ring in the sea anemone Nematostella vectensis

The emergence of centralized nervous systems reflects a major inflection point in evolution, enabling animals to integrate diverse inputs and coordinate complex behaviors. Neural centralization is typically associated with Bilateria, whereas their sister group, Cnidaria (jellyfish, anemones, and corals), has long been thought to rely on diffuse nerve nets mediating simple reflexes. This view, reinforced by limited anatomical and molecular data, has left unresolved whether cnidarians can form localized centers for neural processing, a question sharpened by the growing recognition of their diverse behavioral repertoires. Here we show that the sea anemone Nematostella vectensis possesses an oral nerve ring composed of ganglion-like condensations, a hallmark of centralized organization. These neurons are enriched for excitatory, inhibitory, and modulatory receptors but lack sensory or ciliary markers, yielding a molecular profile most consistent with bilaterian interneurons. Genetic disruption of a conserved inhibitory receptor subunit predominantly expressed in the oral nerve ring delayed the initiation of swallowing in a novel feeding paradigm, demonstrating a potential role in behavioral regulation. Together, these findings provide converging anatomical, molecular, and functional evidence that cnidarians can assemble localized integrative centers, suggesting that key elements of neural centralization predated the cnidarian–bilaterian split. ### Competing Interest Statement The authors have declared no competing interest. Stowers Institute for Medical Research

biorxiv.org

We are thrilled to share our new pre-print: “System-wide extraction of cis-regulatory rules from sequence-to-function models in human neural development”. S2F-deeplearning models can accurately encode enhancers, yet decoding these models into human-interpretable rules remains a major challenge.