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Featured researches published by Nicolas Mayot.


Journal of Geophysical Research | 2017

Physical and Biogeochemical Controls of the Phytoplankton Blooms in North Western Mediterranean Sea: A Multiplatform Approach Over a Complete Annual Cycle (2012–2013 DEWEX Experiment)

Nicolas Mayot; Fabrizio D'Ortenzio; Vincent Taillandier; Louis Prieur; Orens Pasqueron de Fommervault; Hervé Claustre; Anthony Bosse; Pierre Testor; Pascal Conan

The North Western Mediterranean Sea exhibits recurrent and significant autumnal and spring phytoplankton blooms. The existence of these two blooms coincide with typical temperate dynamics. To determine the potential control of physical and biogeochemical factors on these phytoplankton blooms, data from a multiplatform approach (combining ships, Argo and BGC-Argo floats, and bio-optical gliders) were analyzed in association with satellite observations in 2012-2013. The satellite framework allowed a simultaneous analysis over the whole annual cycle of in situ observations of mixed layer depth, photosynthetical available radiation, particle backscattering, nutrients (nitrate and silicate) and chlorophyll-a concentrations. During the year 2012-2013, satellite ocean color observations, confirmed by in situ data, have revealed the existence of two areas (or bioregions) with comparable autumnal blooms but contrasting spring blooms. In both bioregions, the ratio of the euphotic zone (defined as the isolume 0.415 mol photons m−2 d−1, Z0.415) and the MLD identified the initiation of the autumnal bloom, as well as the maximal annual increase in [Chl-a] in spring. In fact, the autumnal phytoplankton bloom might be initiated by mixing of the summer shallowing deep chlorophyll maximum, while the spring restratification (when Z0.415/MLD ratio became > 1) might induce surface phytoplankton production that largely overcomes the losses. Finally, winter deep convection events that took place in one of the bioregions induced higher net accumulation rate of phytoplankton in spring associated with a diatom-dominated phytoplankton community principally. We suggest that very deep winter MLD lead to an increase in surface silicates availability, which favored the development of diatoms.


Journal of Geophysical Research | 2017

Multiscale Observations of Deep Convection in the Northwestern Mediterranean Sea during Winter 2012–2013 Using Multiple Platforms

Pierre Testor; Anthony Bosse; Loïc Houpert; Félix Margirier; Laurent Mortier; Hervé Legoff; Denis Dausse; Matthieu Labaste; Johannes Karstensen; Daniel J. Hayes; Antonio Olita; Alberto Ribotti; Katrin Schroeder; Jacopo Chiggiato; Reiner Onken; Emma Heslop; Baptiste Mourre; Fabrizio D'Ortenzio; Nicolas Mayot; Héloïse Lavigne; Orens Pasqueron de Fommervault; Laurent Coppola; Louis Prieur; Vincent Taillandier; Xavier Durrieu de Madron; François Bourrin; Gaël Many; Pierre Damien; Claude Estournel; Patrick Marsaleix

During winter 2012–2013, open‐ocean deep convection which is a major driver for the thermohaline circulation and ventilation of the ocean, occurred in the Gulf of Lions (Northwestern Mediterranean Sea) and has been thoroughly documented thanks in particular to the deployment of several gliders, Argo profiling floats, several dedicated ship cruises, and a mooring array during a period of about a year. Thanks to these intense observational efforts, we show that deep convection reached the bottom in winter early in February 2013 in a area of maximum 28 ± 3 109 m2. We present new quantitative results with estimates of heat and salt content at the subbasin scale at different time scales (on the seasonal scale to a 10 days basis) through optimal interpolation techniques, and robust estimates of the deep water formation rate of 2.0 ± 0.2 Sv. We provide an overview of the spatiotemporal coverage that has been reached throughout the seasons this year and we highlight some results based on data analysis and numerical modeling that are presented in this special issue. They concern key circulation features for the deep convection and the subsequent bloom such as Submesoscale Coherent Vortices (SCVs), the plumes, and symmetric instability at the edge of the deep convection area.


Journal of Geophysical Research | 2017

Open‐ocean convection process: A driver of the winter nutrient supply and the spring phytoplankton distribution in the Northwestern Mediterranean Sea

Tatiana Severin; Faycal Kessouri; Mathieu Rembauville; Elvia D. Sanchez-Perez; Louise Oriol; Jocelyne Caparros; Mireille Pujo-Pay; Jean-François Ghiglione; Fabrizio D'Ortenzio; Vincent Taillandier; Nicolas Mayot; Xavier Durrieu de Madron; Caroline Ulses; Claude Estournel; Pascal Conan

This study was a part of the DeWEX project (Deep Water formation EXperiment), designed to better understand the impact of dense water formation on the marine biogeochemical cycles. Here, nutrient and phytoplankton vertical and horizontal distributions were investigated during a deep open-ocean convection event and during the following spring bloom in the Northwestern Mediterranean Sea (NWM). In February 2013, the deep convection event established a surface nutrient gradient from the center of the deep convection patch to the surrounding mixed and stratified areas. In the center of the convection area, a slight but significant difference of nitrate, phosphate and silicate concentrations was observed possibly due to the different volume of deep waters included in the mixing or to the sediment resuspension occurring where the mixing reached the bottom. One of this process, or a combination of both, enriched the water column in silicate and phosphate, and altered significantly the stoichiometry in the center of the deep convection area. This alteration favored the local development of microphytoplankton in spring, whereas nanophytoplankton dominated neighboring locations where the convection reached the deep layer but not the bottom. This study shows that the convection process influences both winter nutrients distribution and spring phytoplankton distribution and community structure. Modifications of the convection spatial scale and intensity (i.e. convective mixing depth) is likely to have strong consequences on phytoplankton community structure and distribution in the NWM, and thus on the marine food web.


Journal of Geophysical Research | 2017

Influence of the Phytoplankton Community Structure on the Spring and Annual Primary Production in the Northwestern Mediterranean Sea

Nicolas Mayot; Fabrizio D'Ortenzio; Julia Uitz; Bernard Gentili; Josephine Ras; Vincenzo Vellucci; Melek Golbol; David Antoine; Hervé Claustre

Satellite ocean color observations revealed that unusually deep convection events in 2005, 2006, 2010, and 2013 led to an increased phytoplankton biomass during the spring bloom over a large area of the northwestern Mediterranean Sea (NWM). Here we investigate the effects of these events on the seasonal phytoplankton community structure, we quantify their influence on primary production, and we discuss the potential biogeochemical impact. For this purpose, we compiled in situ phytoplankton pigment data from five ship surveys performed in the NWM and from monthly cruises at a fixed station in the Ligurian Sea. We derived primary production rates from a light photosynthesis model applied to these in situ data. Our results confirm that the maximum phytoplankton biomass during the spring bloom is larger in years associated with intense deep convection events (+51%). During these enhanced spring blooms, the contribution of diatoms to total phytoplankton biomass increased (+33%), as well as the primary production rate (+115%). The occurrence of a highly productive bloom is also related to an increase in the phytoplankton bloom area (+155%) and in the relative contribution of diatoms to primary production (+63%). Therefore, assuming that deep convection in the NWM could be significantly weakened by future climate changes, substantial decreases in the spring production of organic carbon and of its export to deep waters can be expected.


Journal of Geophysical Research | 2017

A submesoscale coherent vortex in the Ligurian Sea: From dynamical barriers to biological implications

Anthony Bosse; Pierre Testor; Nicolas Mayot; Louis Prieur; Fabrizio D'Ortenzio; Laurent Mortier; Hervé Le Goff; Claire Gourcuff; Laurent Coppola; Héloïse Lavigne; Patrick Raimbault

In June 2013, a glider equipped with oxygen and fluorescence sensors has been used to extensively sample an anticyclonic Submesoscale Coherent Vortex (SCV) in the Ligurian Sea (NW Mediterranean Sea). Those measurements are complemented by full-depth CTD casts (T, S, and oxygen) and water samples documenting nutrients and phytoplankton pigments within the SCV and outside. The SCV has a very homogeneous core of oxygenated waters between 300 and 1200 m formed 4.5 months earlier during the winter deep convection event. It has a strong dynamical signature with peak velocities at 700 m depth of 13.9 cm s−1 in cyclogeostrophic balance. The eddy has a small radius of 6.2 km corresponding to high Rossby number of −0.45. The vorticity at the eddy center reaches −0.8f. Cross-stream isopycnic diffusion of tracers between the eddy core and the surroundings is found to be very limited due to dynamical barriers set by the SCV associated with a diffusivity coefficient of about 0.2 m2 s−1. The deep core is nutrients-depleted with concentrations of nitrate, phosphate, and silicate, 13–18% lower than the rich surrounding waters. However, the nutriclines are shifted of about 20–50 m toward the surface thus increasing the nutrients availability for phytoplankton. Chlorophyll-a concentrations at the deep chlorophyll maximum are subsequently about twice bigger as compared to outside. Pigments further reveal the predominance of nanophytoplankton inside the eddy and an enhancement of the primary productivity. This study demonstrates the important impact of postconvective SCVs on nutrients distribution and phytoplankton community, as well as on the subsequent primary production and carbon sequestration.


Biogeosciences | 2016

Interannual variability of the Mediterranean trophic regimes from ocean color satellites

Nicolas Mayot; Fabrizio D'Ortenzio; Maurizio Ribera d'Alcalà; Héloïse Lavigne; Hervé Claustre


Progress in Oceanography | 2017

Regionalisation of the Mediterranean basin, a MERMEX synthesis

Sakina Dorothée Ayata; Jean Olivier Irisson; Anaïs Aubert; Léo Berline; Jean Claude Dutay; Nicolas Mayot; Anne Elise Nieblas; Fabrizio D'Ortenzio; Julien Palmiéri; Gabriel Reygondeau; Vincent Rossi; Cécile Guieu


Journal of Geophysical Research | 2018

Multiscale Observations of Deep Convection in the Northwestern Mediterranean Sea During Winter 2012-2013 Using Multiple Platforms: MULTISCALE DEEP CONVECTION OBSERVATIONS

Pierre Testor; Anthony Bosse; Loïc Houpert; Félix Margirier; Laurent Mortier; Hervé Legoff; Denis Dausse; Matthieu Labaste; Johannes Karstensen; Daniel Hayes; Antonio Olita; Alberto Ribotti; Katrin Schroeder; Jacopo Chiggiato; Reiner Onken; Emma Heslop; Baptiste Mourre; Fabrizio D'Ortenzio; Nicolas Mayot; Héloïse Lavigne; Orens Pasqueron de Fommervault; Laurent Coppola; Louis Prieur; Vincent Taillandier; Xavier Durrieu de Madron; François Bourrin; Gaël Many; Pierre Damien; Claude Estournel; Patrick Marsaleix


Earth System Science Data | 2018

Hydrography and biogeochemistry dedicated to the Mediterranean BGC-Argo network during a cruise with RV Tethys 2 in May 2015

Vincent Taillandier; Thibaut Wagener; Fabrizio D'Ortenzio; Nicolas Mayot; Hervé Legoff; Josephine Ras; Laurent Coppola; Orens Pasqueron de Fommervault; Catherine Schmechtig; Emilie Diamond; Henry C. Bittig; D. Lefèvre; Edouard Leymarie; Antoine Poteau; Louis Prieur


Journal of Geophysical Research | 2017

Influence of the phytoplankton community structure on the spring and annual primary production in the northwestern Mediterranean Sea: PHYTOPLANKTON DYNAMICS IN THE NWM

Nicolas Mayot; Fabrizio D'Ortenzio; Julia Uitz; Bernard Gentili; Josephine Ras; Vincenzo Vellucci; Melek Golbol; David Antoine; Hervé Claustre

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Héloïse Lavigne

Centre national de la recherche scientifique

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