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Biology subjects

Vallet, M.

Publications and source records attributed to Vallet, M..

3 recordsLinked to original sources

Effector Repertoire and Host Transcriptomic Responses in the Tripartite Interaction Between the bloom-forming diatom Coscinodiscus granii, the oomycete Lagenisma coscinodisci and Co-occurring Pedinellale Pteridomonas.

Parasitic interactions play a central role in shaping phytoplankton community dynamics. Diatoms are a major phytoplankton group for which many parasites have been describe including chytrids and oomycetes, yet host defense mechanisms remain poorly studied, limiting our understanding of the factors that constrain or promote infection events in natural environments. Major challenges in investigating diatom-parasite interactions include obtaining cultivable host-parasite pairs, maintain stable co-cultures with synchronized infection stages, and harvesting sufficient biomass for molecular analyses such as transcriptomics and metabolomics. To address these challenges, we focused on the bloom-forming diatom Coscinodiscus granii, a large species ({approx}200 {micro}m) to allow manual isolation of single cells. This diatom is naturally infected by Lagenisma coscinodisci, an abundant oomycete occasionally observed in temperate coastal environments. We assembled high-quality transcriptomes for both C. granii and L. coscinodisci, providing an important resource for future molecular studies. Transcriptome analyses revealed a sophisticated effector repertoire in L. coscinodisci, including canonical oomycete virulence factors such as Crinklers, RxLR effectors, cystatins, transposon-associated proteins, and components of the RNA interference machinery (Argonaute, Dicer, RdRP), as well as cyclophilins. In the differential gene expression analyses, C. granii exhibited a transcriptional response involving proteases and exosome-related pathways, suggesting a deeply conserved, defense mechanism. In parallel, we analysed the differential expression of the heterotrophic flagellate Pteridomonas sp., which consistently co-occurred in culture, and identified a distinct transcriptional profile characterized by the upregulation of motility-related genes, highlighting a striking mobility strategy. Owing to the exceptionally large host size and the availability of both transcriptomic and metabolomic data, this tripartite system provides a unique marine model for exploring oomycete-diatom interactions.

plant biology↗

Two Spore Types in a Marine Parasite of Dinoflagellates

Marine alveolates (MALVs) are diverse, primarily parasitic micro-eukaryotes that significantly impact marine ecosystems. The life cycles of most MALVs remain elusive and the role of sexual reproduction in these organisms is a key question that may determine their ecological success. In this study we focus on a widespread dinoflagellate parasite of bloom-forming dinoflagellates, Amoebophrya. After infection, we identified two distinct spores, differing in size, ultrastructure, swimming behavior, lifespan, gene expression, and metabolite composition. The smaller spores serve as infectious propagules, equipped with an apical complex for host invasion. They exhibit a distinct, shorter, and straighter swimming pattern, likely optimized for an extended lifespan while enhancing dispersion and chance for host encounters. Transcriptomic analysis reveals that these smaller spores are primed for efficient protein synthesis upon initiating a new infection. Conversely, the larger spores cannot infect new hosts and are characterized by the expression of meiotic genes, underscoring their sexual nature. They have a shorter lifespan, exhibit more tortuous movement, along display condensed chromosomes, signaling readiness for mating. Interestingly, infected hosts already express meiotic genes, and a single infected host only produces progeny of the same spore type, suggesting that cell fate is determined prior to spore release. Our study provides one of the first formal demonstrations of a sexually specialized cell in MALVs. Isolating compatible strains for cross-breeding and understanding how environmental conditions favor each reproductive route are the next key questions for elucidating the ecological success of MALVs in marine waters. Significance StatementMarine alveolates (MALVs) are ecologically significant parasites that impact carbon cycling, causing major disease outbreaks affecting fisheries and aquaculture, and influencing the dynamics of harmful algal blooms. Despite their diversity and wide host range, much of our knowledge comes from environmental DNA, leaving important aspects of their biology, such as their life cycles, largely unknown. This study provides the first evidence of sexual reproduction in MALVs, linking spore polymorphism to infective or sexual routes. This discovery is crucial as sexual reproduction increases genetic diversity and adaptability, aiding MALVs resilience in changing environments. Understanding MALVs reproductive strategies deepens our insight into their ecological roles and their broader impact on marine ecosystems.

microbiology↗

Mapping of the viral shunt across widespread coccolithophore blooms using metabolic biomarkers

The viral shunt is a fundamental ecosystem process which diverts the flux of organic carbon from grazers to heterotrophic microorganisms. Through the extracellular release of metabolites, lytic viral infections supply 2-10% of photosynthetically fixed carbon in the ocean for bacterial respiration. Despite its significance for the carbon cycle, we lack tools to detect the viral shunt in the natural environment and assess its ecological impact. Here, we study the use of exometabolites as biomarkers for the viral shunt by applying molecular, metabolomics, and oceanographic tools in blooms of the cosmopolitan microalga Gephyrocapsa huxleyi across the Atlantic Ocean, spanning four biogeochemical provinces between Iceland and Patagonia. We mapped the distinct metabolic footprint of its viral infections using exo- and endometabolomics approaches and detected nineteen organohalogen metabolites across the blooms, showing their global formation. Time-resolved comparison of particulate and dissolved metabolite pools during an induced mesocosm bloom indicated virocells - actively infected host cells - as the source of the halogenated metabolites. Three trichloro-iodo metabolites were present during demise of all virus-infected blooms, highlighting them as suitable metabolic biomarkers. The environmental stability of these halometabolites in the DOM pool over a few days can recapitulate viral infections at earlier stages of phytoplankton bloom succession.

ecology↗