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Klompen, A. M.

Publications and source records attributed to Klompen, A. M..

2 recordsLinked to original sources

Minicollagen expression dynamics reveal a transcriptional program for cnidogenesis in the sea anemone Nematostella vectensis

Cnidae are explosive harpoon-like organelles localized within stinging cells, or cnidocytes, of the phylum Cnidaria (jellyfish, hydroids, sea anemones, and corals). These unique Golgi-derived vesicular structures define the phylum and are prominent examples of an evolutionary cellular novelty. While recent studies have focused on the developmental specification and regulation of cnidocytes more broadly, less is understood about gene expression patterns, structural variations, and toxin repertoires within distinct cnidae subtypes. Here, we determine the transcriptional profile of two major cnidae subtypes in the sea anemone Nematostella vectensis, nematocytes and spirocytes, using the cnidae-specific structural family of proteins called minicollagens. We first define the in vivo expression patterns for three known and three uncharacterized minicollagen orthologs. We show that four minicollagens are broadly expressed throughout ectodermal cnidocytes in developing larvae and primary polyps while two others are restricted to tentacular cnidocytes. Leveraging whole adult scRNA-seq data and two novel transgenic reporter lines, we then demonstrate that the tentacle-restricted cnidocytes are developing spirocytes that are distinguished by expression of the minicollagen NvNcol5. To deepen our analysis of cnidocyte gene expression, we used a customized RNA-FACS-seq pipeline to determine global transcriptional differences between these two subtypes. This approach identified a suite of differentially expressed genes, illuminating spatial and temporal gene expression dynamics across both developing nematocytes and spirocytes. Altogether, our experiments provide fundamental and novel insights into the specialization of cnidarian stinging cells while establishing a rich set of resources for further investigation.

evolutionary biology↗

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.

evolutionary biology↗