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Jaubert, M.

Publications and source records attributed to Jaubert, M..

4 recordsLinked to original sources

A photoprotection dial maps holistic light-stress response in diatoms

Cellular responses to light stress operate on two timescales: short-term responses, driven by dynamic photosynthetic mechanisms such as non-photochemical quenching (NPQ), and long-term responses, characterized by various physiological and metabolic shifts driven by changes in gene expression. Understanding the coordination within and between these layers represents a major challenge in photosynthesis research. We achieved this in the diatom Phaeodactylum tricornutum using an adjustable "photoprotection dial" across 10 mutant strains expressing different constitutive levels of the Lhcx1 protein, which determine their latent NPQ capacity. Crucially, a near-identical initial state is preserved among strains, which allows a precise mapping of the causal chain of events initiated by NPQ induction under high light. This unlocks exceptional leverage to examine holistic interactions between functional photosynthesis and gene expression within their natural regulatory architecture. We observe that increasing NPQ maintains the PSII primary acceptor QA in a more oxidized state with little effect on linear electron flow. This oxidation limits PSII photodamage and promotes cyclic electron flow around PSI, which in turn is consistent with enhanced ATP production supporting PSII repair. Moreover, transcriptomic analysis across high-light exposure time suggests that the expression of nearly half of the genome is modulated via NPQ-driven effects. Gene expression profile clustering reveals distinct and coherent transcriptomic regulatory networks. The short-term response is characterized by a strong downregulation of light-harvesting-related genes -- independently of NPQ -- and an upregulation of oxidative stress response genes that scales inversely with NPQ magnitude. In the long term, most of the transcriptome is deeply impacted by high-light stress in a widely NPQ-dependent manner, highlighting the critical role of this process in shaping photophysiology, which in turn influences gene expression. By engineering a native functional feedback loop into an experimental dial, our approach establishes a generalizable framework for studying the complex interplay between physiology and system-wide biological regulation.

plant biology↗

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

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

molecular biology↗

Phytochromes Enable Social Behavior in Marine Diatoms

The phytochrome superfamily, a group of proteins that enable some organisms to detect changes in light intensity and quality, is widespread in terrestrial and marine microbes, fungi, algae, and plants. In terrestrial plants, these photosensory receptors monitor variations in the light environment by sensing red (R) and far-red (FR) regions of the spectrum and trigger important developmental, metabolic, and physiological responses. However, the role of these photosensors in marine microbes, living in environments where, due to absorption of water molecules R and FR radiation does not penetrate beyond the upper few meters, remains controversial. Here, we investigate the role of phytochromes in light perception of the marine diatom Phaeodactylum tricornutum and their involvement in light-driven collective behavior. We perform experiments comparing the social conduct of wild-type and phytochrome knock-out strains to different light wavelengths. Our results show that cell movements become synchronized in a coordinated wobbling dance upon activation of their phytochromes by blue or far-red light, therefore, demonstrating the key role of phytochrome in light-mediated diatom collective behaviour. Furthermore, our experiments suggest that the observed phytochrome-mediated concerted dance implies a form of intercell communication, proposedly mediated by variable R/FR autofluorescence emission in the frequency range of diatom wobbling movements. Our findings provide new insights into communication pathways in aquatic microorganisms and emphasize the importance of social conduct in the sea at all ecological levels.

ecology↗

Diatom phytochromes integrate the entire visible light spectra for photosensing in marine environments

Aquatic life is strongly structured by light gradients, with gradual decrease in light intensity and differential attenuation of sunlight wavelengths with depth. How phytoplankton perceive these variations is unknown. By providing the first in vivo quantitative assessment of the action of marine diatom phytochrome photoreceptors (DPH), we show that they efficiently trigger photoreversible responses across the entire light spectrum, unlike current models of phytochrome photosensing. The distribution and activity of DPHs in the environment indicate that they are extremely sensitive detectors of spectral light variations related to depth and optical properties of the water column in temperate and polar oceans, revealing a completely novel view of how light is perceived in the marine environment.

plant biology↗