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April 24, 20260 citationsOpen Access

The molecular basis of circadian rhythms in echinoderm larvae

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TATanya Alessandro

Key Points

  • The study aims to uncover the molecular mechanisms of circadian rhythms in echinoderm larvae, focusing on gene expression and clock gene presence.
  • Analyzed genomic, transcriptomic, and proteomic databases from 14 Ambulacraria species.
  • Conducted transcriptome profiling of sea urchin larvae under light-dark cycles.
  • Performed HCR and FISH experiments to study spatial expression of clock genes in three echinoderm species.
  • Identified nearly complete canonical clock genes, except for the absence of Per across all species.
  • 939 genes showed transcriptional oscillations in sea urchin larvae, linked to metabolic processes and redox activity.
  • E-box motifs were enriched in the rhythmic genes, indicating CLOCK/BMAL-mediated control.

Abstract

Most organisms inhabiting land and sea have evolved endogenous circadian clocks to synchronize their physiology with daily light-dark cycles. While extensively studied in terrestrial species, the molecular basis of circadian rhythms in marine invertebrates, particularly echinoderms, remain poorly understood. To address this gap, I analysed genomic, transcriptomic and proteomic databases from 14 Ambulacraria species, identifying nearly the complete set of canonical clock genes, with the notable exception of Per, a crucial component of the negative loop in both protostome and deuterostome oscillators. Although this gene loss was previously reported in four Ambulacraria species, here I expanded the analysis using a dedicated HMM-based approach, confirming the absence of Per across all surveyed species and highlighting a divergent circadian clock architecture within Ambulacraria. I next explored the transcriptome profiling of the sea urchin Paracentrotus lividus larvae exposed to 12L:12D cycles over 48 hours, revealing 939 genes exhibiting robust transcriptional oscillations aligned with the light-dark cycle. The rhythmic transcripts were predominantly associated with metabolic processes, transcriptional regulation, signal transduction, transmembrane transport and redox activity. Notably, intracellular ROS levels exhibited a pronounced nocturnal peak, this marking the first evidence of a diel redox rhythm in sea urchin larvae. HCR and FISH experiments were then performed in the sea urchin P. lividus, the sea star Patiria miniata and the sea cucumber Holothuria tubulosa to explore the spatial expression of conserved clock genes, revealing that different larval territories across species, including the apical organ and the ciliary band, are employed for circadian regulation. Finally, active regulatory regions analysis of the most rhythmic genes in P. lividus larvae revealed strong enrichment of canonical E-box motifs, supporting CLOCK/BMAL-mediated transcriptional control. Elucidating the transcriptional dynamics of circadian rhythms in non-chordate deuterostomes, this study provides valuable insights into the evolution and diversification of salient timekeeping mechanisms in non-model marine organisms.

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Tanya Alessandro (2026) studied this question.

synapsesocial.com/papers/69eb07a4553a5433e34b329bhttps://doi.org/10.21954/ou.ro.00109701
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Exploration of the daily circadian clock genes rhythmicity during early development of Eurasian perch2026
  2. 2A functional light-entrainable molecular clock is revealed in gilthead seabream (Sparus aurata) from early developmental stages using an embryonic stem cell line2024 · 5 citations
  3. 3Peripheral tissues of deep-sea mussels exhibit autonomous circadian timing via an atypical mechanism2025 · 1 citations
  4. 4CLOCK evolved in cnidaria to synchronize internal rhythms with diel environmental cues2024 · 9 citations
  5. 5CLOCK evolved in cnidaria to synchronize internal rhythms with diel environmental cues2024