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Circadian regulation of key physiological processes by the RITMO1 clock protein in the marine diatom Phaeodactylum tricornutum

Manzotti, A.; Monteil, R.; Cheminant-Navarro, S.; Croteau, D.; Charreton, L.; Hoguin, A.; Strumpen, N. F.; Jallet, D.; Daboussi, F.; Kroth, P.; Bouget, F.-Y.; Jaubert, M.; Bailleul, B.; Bouly, J.-P.; Falciatore, A.

2024-12-23 molecular biology
10.1101/2024.12.23.629939 bioRxiv
Show abstract

O_LIPhasing biological and physiological processes to periodic light-dark cycles is crucial for the life of most organisms. Marine diatoms, as many phytoplanktonic species, exhibit biological rhythms, yet their molecular timekeepers remain largely uncharacterized. Recently, the bHLH-PAS protein RITMO1 has been proposed to act as a regulator of circadian rhythms. C_LIO_LIIn this study, we first determined the physiological conditions to monitor circadian clock activity and its perturbation in the diatom model species Phaeodactylum tricornutum by using cell fluorescence as a circadian output. Employing ectopic overexpression, targeted gene mutagenesis, and functional complementation, we then investigated the role of RITMO1 in various circadian processes. C_LIO_LIOur findings reveal that RITMO1 significantly influences the P. tricornutum circadian rhythms not only of cellular fluorescence, but also of photosynthesis and of the expression of clock-controlled genes, including transcription factors and putative clock input/output components. RITMO1 effects on rhythmicity are unambiguously detectable under free running conditions. C_LIO_LIBy uncovering the complex regulation of biological rhythms in P. tricornutum, these results provide a key step in understanding the endogenous regulators of phytoplankton physiological responses to environmental changes. Furthermore, these studies position diatoms as instrumental and novel model systems for elucidating key mechanistic principles of oscillator functions in marine ecosystems. C_LI

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