Céline Dimier
Centre national de la recherche scientifique
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Publication
Featured researches published by Céline Dimier.
Science | 2015
Colomban de Vargas; Stéphane Audic; Nicolas Henry; Johan Decelle; Frédéric Mahé; Ramiro Logares; Enrique Lara; Cédric Berney; Noan Le Bescot; Ian Probert; Margaux Carmichael; Julie Poulain; Sarah Romac; Sébastien Colin; Jean-Marc Aury; Lucie Bittner; Samuel Chaffron; Micah Dunthorn; Stefan Engelen; Olga Flegontova; Lionel Guidi; Aleš Horák; Olivier Jaillon; Gipsi Lima-Mendez; Julius Lukeš; Shruti Malviya; Raphaël Morard; Matthieu Mulot; Eleonora Scalco; Raffaele Siano
Marine plankton support global biological and geochemical processes. Surveys of their biodiversity have hitherto been geographically restricted and have not accounted for the full range of plankton size. We assessed eukaryotic diversity from 334 size-fractionated photic-zone plankton communities collected across tropical and temperate oceans during the circumglobal Tara Oceans expedition. We analyzed 18S ribosomal DNA sequences across the intermediate plankton-size spectrum from the smallest unicellular eukaryotes (protists, >0.8 micrometers) to small animals of a few millimeters. Eukaryotic ribosomal diversity saturated at ~150,000 operational taxonomic units, about one-third of which could not be assigned to known eukaryotic groups. Diversity emerged at all taxonomic levels, both within the groups comprising the ~11,200 cataloged morphospecies of eukaryotic plankton and among twice as many other deep-branching lineages of unappreciated importance in plankton ecology studies. Most eukaryotic plankton biodiversity belonged to heterotrophic protistan groups, particularly those known to be parasites or symbiotic hosts.
Science | 2015
Shinichi Sunagawa; Luis Pedro Coelho; Samuel Chaffron; Jens Roat Kultima; Karine Labadie; Guillem Salazar; Bardya Djahanschiri; Georg Zeller; Daniel R. Mende; Adriana Alberti; Francisco M. Cornejo-Castillo; Paul Igor Costea; Corinne Cruaud; Francesco d'Ovidio; Stefan Engelen; Isabel Ferrera; Josep M. Gasol; Lionel Guidi; Falk Hildebrand; Florian Kokoszka; Cyrille Lepoivre; Gipsi Lima-Mendez; Julie Poulain; Bonnie T. Poulos; Marta Royo-Llonch; Hugo Sarmento; Sara Vieira-Silva; Céline Dimier; Marc Picheral; Sarah Searson
Microbes are dominant drivers of biogeochemical processes, yet drawing a global picture of functional diversity, microbial community structure, and their ecological determinants remains a grand challenge. We analyzed 7.2 terabases of metagenomic data from 243 Tara Oceans samples from 68 locations in epipelagic and mesopelagic waters across the globe to generate an ocean microbial reference gene catalog with >40 million nonredundant, mostly novel sequences from viruses, prokaryotes, and picoeukaryotes. Using 139 prokaryote-enriched samples, containing >35,000 species, we show vertical stratification with epipelagic community composition mostly driven by temperature rather than other environmental factors or geography. We identify ocean microbial core functionality and reveal that >73% of its abundance is shared with the human gut microbiome despite the physicochemical differences between these two ecosystems.
Science | 2015
Gipsi Lima-Mendez; Karoline Faust; Nicolas Henry; Johan Decelle; Sébastien Colin; Fabrizio Carcillo; Samuel Chaffron; J. Cesar Ignacio-Espinosa; Simon Roux; Flora Vincent; Lucie Bittner; Youssef Darzi; Jun Wang; Stéphane Audic; Léo Berline; Gianluca Bontempi; Ana María Cabello; Laurent Coppola; Francisco M. Cornejo-Castillo; Francesco d'Ovidio; Luc De Meester; Isabel Ferrera; Marie-José Garet-Delmas; Lionel Guidi; Elena Lara; Stephane Pesant; Marta Royo-Llonch; Guillem Salazar; Pablo Sánchez; Marta Sebastián
Species interaction networks are shaped by abiotic and biotic factors. Here, as part of the Tara Oceans project, we studied the photic zone interactome using environmental factors and organismal abundance profiles and found that environmental factors are incomplete predictors of community structure. We found associations across plankton functional types and phylogenetic groups to be nonrandomly distributed on the network and driven by both local and global patterns. We identified interactions among grazers, primary producers, viruses, and (mainly parasitic) symbionts and validated network-generated hypotheses using microscopy to confirm symbiotic relationships. We have thus provided a resource to support further research on ocean food webs and integrating biological components into ocean models.
Science | 2015
Jennifer R. Brum; J. Cesar Ignacio-Espinoza; Simon Roux; Guilhem Doulcier; Silvia G. Acinas; Adriana Alberti; Samuel Chaffron; Corinne Cruaud; Colomban de Vargas; Josep M. Gasol; Gabriel Gorsky; Ann C. Gregory; Lionel Guidi; Pascal Hingamp; Daniele Iudicone; Fabrice Not; Hiroyuki Ogata; Stephane Pesant; Bonnie T. Poulos; Sarah M. Schwenck; Sabrina Speich; Céline Dimier; Stefanie Kandels-Lewis; Marc Picheral; Sarah Searson; Tara Oceans Coordinators; Peer Bork; Chris Bowler; Shinichi Sunagawa; Patrick Wincker
Viruses influence ecosystems by modulating microbial population size, diversity, metabolic outputs, and gene flow. Here, we use quantitative double-stranded DNA (dsDNA) viral-fraction metagenomes (viromes) and whole viral community morphological data sets from 43 Tara Oceans expedition samples to assess viral community patterns and structure in the upper ocean. Protein cluster cataloging defined pelagic upper-ocean viral community pan and core gene sets and suggested that this sequence space is well-sampled. Analyses of viral protein clusters, populations, and morphology revealed biogeographic patterns whereby viral communities were passively transported on oceanic currents and locally structured by environmental conditions that affect host community structure. Together, these investigations establish a global ocean dsDNA viromic data set with analyses supporting the seed-bank hypothesis to explain how oceanic viral communities maintain high local diversity.
Nature | 2016
Lionel Guidi; Samuel Chaffron; Lucie Bittner; Damien Eveillard; Abdelhalim Larhlimi; Simon Roux; Youssef Darzi; Stéphane Audic; Léo Berline; Jennifer R. Brum; Luis Pedro Coelho; Julio Cesar Ignacio Espinoza; Shruti Malviya; Shinichi Sunagawa; Céline Dimier; Stefanie Kandels-Lewis; Marc Picheral; Julie Poulain; Sarah Searson; Lars Stemmann; Fabrice Not; Pascal Hingamp; Sabrina Speich; M. J. Follows; Lee Karp-Boss; Emmanuel Boss; Hiroyuki Ogata; Stephane Pesant; Jean Weissenbach; Patrick Wincker
The biological carbon pump is the process by which CO2 is transformed to organic carbon via photosynthesis, exported through sinking particles, and finally sequestered in the deep ocean. While the intensity of the pump correlates with plankton community composition, the underlying ecosystem structure driving the process remains largely uncharacterized. Here we use environmental and metagenomic data gathered during the Tara Oceans expedition to improve our understanding of carbon export in the oligotrophic ocean. We show that specific plankton communities, from the surface and deep chlorophyll maximum, correlate with carbon export at 150 m and highlight unexpected taxa such as Radiolaria and alveolate parasites, as well as Synechococcus and their phages, as lineages most strongly associated with carbon export in the subtropical, nutrient-depleted, oligotrophic ocean. Additionally, we show that the relative abundance of a few bacterial and viral genes can predict a significant fraction of the variability in carbon export in these regions.
Science | 2015
Emilie Villar; Gregory K. Farrant; Michael J. Follows; Laurence Garczarek; Sabrina Speich; Stéphane Audic; Lucie Bittner; Bruno Blanke; Jennifer R. Brum; Christophe Brunet; Raffaella Casotti; Alison Chase; John R. Dolan; Jean-Pierre Gattuso; Nicolas Grima; Lionel Guidi; Chris Hill; Oliver Jahn; Jean-Louis Jamet; Cyrille Lepoivre; Shruti Malviya; Eric Pelletier; Jean-Baptiste Romagnan; Simon Roux; Sébastien Santini; Eleonora Scalco; Sarah M. Schwenck; Atsuko Tanaka; Pierre Testor; Thomas Vannier
Agulhas rings provide the principal route for ocean waters to circulate from the Indo-Pacific to the Atlantic basin. Their influence on global ocean circulation is well known, but their role in plankton transport is largely unexplored. We show that, although the coarse taxonomic structure of plankton communities is continuous across the Agulhas choke point, South Atlantic plankton diversity is altered compared with Indian Ocean source populations. Modeling and in situ sampling of a young Agulhas ring indicate that strong vertical mixing drives complex nitrogen cycling, shaping community metabolism and biogeochemical signatures as the ring and associated plankton transit westward. The peculiar local environment inside Agulhas rings may provide a selective mechanism contributing to the limited dispersal of Indian Ocean plankton populations into the Atlantic.
Environmental Microbiology | 2016
Noan Le Bescot; Frédéric Mahé; Stéphane Audic; Céline Dimier; Marie-José Garet; Julie Poulain; Patrick Wincker; Colomban de Vargas; Raffaele Siano
Dinoflagellates (Alveolata) are one of the ecologically most important groups of modern phytoplankton. Their biological complexity makes assessment of their global diversity and community structure difficult. We used massive V9 18S rDNA sequencing from 106 size-fractionated plankton communities collected across the worlds surface oceans during the Tara Oceans expedition (2009-2012) to assess patterns of pelagic dinoflagellate diversity and community structuring over global taxonomic and ecological scales. Our data and analyses suggest that dinoflagellate diversity has been largely underestimated, representing overall ∼ 1/2 of protistan rDNA metabarcode richness assigned at ≥ 90% to a reference sequence in the worlds surface oceans. Dinoflagellate metabarcode diversity and abundance display regular patterns across the global scale, with different order-level taxonomic compositions across organismal size fractions. While the pico to nano-planktonic communities are composed of an extreme diversity of metabarcodes assigned to Gymnodiniales or are simply undetermined, most micro-dinoflagellate metabarcodes relate to the well-referenced Gonyaulacales and Peridiniales orders, and a lower abundance and diversity of essentially symbiotic Peridiniales is unveiled in the meso-plankton. Our analyses could help future development of biogeochemical models of pelagic systems integrating the separation of dinoflagellates into functional groups according to plankton size classes.
Nature Communications | 2018
Quentin Carradec; Eric Pelletier; Corinne Da Silva; Adriana Alberti; Yoann Seeleuthner; Romain Blanc-Mathieu; Gipsi Lima-Mendez; Fabio Rocha; Leila Tirichine; Karine Labadie; Amos Kirilovsky; Alexis Bertrand; Stefan Engelen; Mohammed-Amin Madoui; Raphaël Méheust; Julie Poulain; Sarah Romac; Daniel Richter; Genki Yoshikawa; Céline Dimier; Stefanie Kandels-Lewis; Marc Picheral; Sarah Searson; Olivier Jaillon; Jean-Marc Aury; Eric Karsenti; Matthew B. Sullivan; Shinichi Sunagawa; Peer Bork; Fabrice Not
While our knowledge about the roles of microbes and viruses in the ocean has increased tremendously due to recent advances in genomics and metagenomics, research on marine microbial eukaryotes and zooplankton has benefited much less from these new technologies because of their larger genomes, their enormous diversity, and largely unexplored physiologies. Here, we use a metatranscriptomics approach to capture expressed genes in open ocean Tara Oceans stations across four organismal size fractions. The individual sequence reads cluster into 116 million unigenes representing the largest reference collection of eukaryotic transcripts from any single biome. The catalog is used to unveil functions expressed by eukaryotic marine plankton, and to assess their functional biogeography. Almost half of the sequences have no similarity with known proteins, and a great number belong to new gene families with a restricted distribution in the ocean. Overall, the resource provides the foundations for exploring the roles of marine eukaryotes in ocean ecology and biogeochemistry.Marine microbial eukaryotes and zooplankton display enormous diversity and largely unexplored physiologies. Here, the authors use metatranscriptomics to analyze four organismal size fractions from open-ocean stations, providing the largest reference collection of eukaryotic transcripts from any single biome.
bioRxiv | 2016
Simon Roux; Jennifer R. Brum; Bas E. Dutilh; Shinichi Sunagawa; Melissa B. Duhaime; Alexander Loy; Bonnie T. Poulos; Natalie Solonenko; Elena Lara; Julie Poulain; Stephane Pesant; Stefanie Kandels-Lewis; Céline Dimier; Marc Picheral; Sarah Searson; Corinne Cruaud; Adriana Alberti; Carlos M. Duarte; Josep M. Gasol; Dolors Vaqué; Peer Bork; Silvia G. Acinas; Patrick Wincker; Matthew B. Sullivan
Ocean microbes drive global-scale biogeochemical cycling1, but do so under constraints imposed by viruses on host community composition, metabolism, and evolutionary trajectories2–5. Due to sampling and cultivation challenges, genome-level viral diversity remains poorly described and grossly understudied in nature such that <1% of observed surface ocean viruses, even those that are abundant and ubiquitous, are ‘known’5. Here we analyze a global map of abundant, double stranded DNA (dsDNA) viruses and viral-encoded auxiliary metabolic genes (AMGs) with genomic and ecological contexts through the Global Ocean Viromes (GOV) dataset, which includes complete genomes and large genomic fragments from both surface and deep ocean viruses sampled during the Tara Oceans and Malaspina research expeditions6,7. A total of 15,222 epi- and mesopelagic viral populations were identified that comprised 867 viral clusters (VCs, approximately genus-level groups8,9). This roughly triples known ocean viral populations10, doubles known candidate bacterial and archaeal virus genera9, and near-completely samples epipelagic communities at both the population and VC level. Thirty-eight of the 867 VCs were identified as the most impactful dsDNA viral groups in the oceans, as these were locally or globally abundant and accounted together for nearly half of the viral populations in any GOV sample. Most of these were predicted in silico to infect dominant, ecologically relevant microbes, while two thirds of them represent newly described viruses that lacked any cultivated representative. Beyond these taxon-specific ecological observations, we identified 243 viral-encoded AMGs in GOV, only 95 of which were known. Deeper analyses of 4 of these AMGs revealed that abundant viruses directly manipulate sulfur and nitrogen cycling, and do so throughout the epipelagic ocean. Together these data provide a critically-needed organismal catalog and functional context to begin meaningfully integrating viruses into ecosystem models as key players in nutrient cycling and trophic networks.
Nature Communications | 2018
Yoann Seeleuthner; Samuel Mondy; Vincent Lombard; Quentin Carradec; Eric Pelletier; Marc Wessner; Jade Leconte; Jean-François Mangot; Julie Poulain; Karine Labadie; Ramiro Logares; Shinichi Sunagawa; Véronique de Berardinis; Marcel Salanoubat; Céline Dimier; Stefanie Kandels-Lewis; Marc Picheral; Sarah Searson; Stephane Pesant; Nicole J. Poulton; Ramunas Stepanauskas; Peer Bork; Chris Bowler; Pascal Hingamp; Matthew B. Sullivan; Daniele Iudicone; Ramon Massana; Jean-Marc Aury; Bernard Henrissat; Eric Karsenti
Single-celled eukaryotes (protists) are critical players in global biogeochemical cycling of nutrients and energy in the oceans. While their roles as primary producers and grazers are well appreciated, other aspects of their life histories remain obscure due to challenges in culturing and sequencing their natural diversity. Here, we exploit single-cell genomics and metagenomics data from the circumglobal Tara Oceans expedition to analyze the genome content and apparent oceanic distribution of seven prevalent lineages of uncultured heterotrophic stramenopiles. Based on the available data, each sequenced genome or genotype appears to have a specific oceanic distribution, principally correlated with water temperature and depth. The genome content provides hypotheses for specialization in terms of cell motility, food spectra, and trophic stages, including the potential impact on their lifestyles of horizontal gene transfer from prokaryotes. Our results support the idea that prominent heterotrophic marine protists perform diverse functions in ocean ecology.The biology of many marine protists, such as stramenopiles, remains obscure. Here, the authors exploit single-cell genomics and metagenomics to analyze the genome content and apparent oceanic distribution of seven prevalent lineages of uncultured heterotrophic stramenopiles.