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March 13, 2026Nature Communications4 citationsOpen Access

Phytochromes facilitate social behaviour in marine diatoms

JFJoan S. Font-MuñozMJMarianne JaubertMSMarc Sourisseau

Key Points

  • This research investigates how phytochromes affect light perception and social behavior in the marine diatom Phaeodactylum tricornutum.
  • Compared wild-type diatoms with phytochrome knockout strains
  • Exposed strains to different light wavelengths including blue and far-red light
  • Observed and analyzed cell movements for synchronization and coordination
  • Activation of phytochromes leads to synchronized wobbling dance among diatoms
  • Phytochrome-deficient mutants do not exhibit coordinated movements
  • Collective motion may involve communication through red and far-red autofluorescence

Abstract

The phytochrome superfamily comprises photosensory proteins that enable organisms to perceive changes in light intensity and quality and is widespread across plants, fungi, algae, and microbes. In terrestrial plants, phytochromes sense red and far-red light to regulate key developmental and physiological processes. In marine environments, however, where red and far-red wavelengths penetrate only the upper few meters of water, the function of phytochromes has remained unclear. Recent work shows that diatom phytochromes exhibit photoreversible responses across a broad spectral range, extending beyond red and far-red, suggesting a role in underwater light sensing. Here, we examine the role of phytochromes in light perception and collective behavior in the marine diatom Phaeodactylum tricornutum. Comparing wild-type and phytochrome knockout strains under different light wavelengths reveals that activation of phytochromes by blue or far-red light synchronizes cell movements into a coordinated "wobbling dance." This behavior is absent in phytochrome-deficient mutants, demonstrating the essential role of phytochromes. Our results further suggest that this collective motion involves intercellular communication, potentially mediated by variable red and far-red autofluorescence. Together, these findings uncover a previously unrecognized light-driven social behavior in marine diatoms and highlight the ecological significance of phytochrome-mediated communication in microbial communities.

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Cite This Study

Font-Muñoz et al. (2026) studied this question.

synapsesocial.com/papers/69b3ac7002a1e69014cce2bfhttps://doi.org/10.1038/s41467-026-70219-3
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Also Consider

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

  1. 1Phytochromes Enable Social Behavior in Marine Diatoms2024
  2. 2Beyond red/far‐red sensing: phytochrome perception of the marine light field by microalgae2026
  3. 3Spectroscopic Investigation of the In Vivo Light‐Dependent Photodynamics of the Marine Diatom <i>Phaeodactylum tricornutum</i>2026
  4. 4Plant Phytochrome Interactions Decode Light and Temperature Signals2024 · 6 citations
  5. 5PHYSIOLOGICAL FOUNDATIONS OF PHOTOPERIODISM AND PHYTOCHROME SYSTEM IN PLANTS2025