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Biology subjects

Rouxel, O.

Publications and source records attributed to Rouxel, O..

2 recordsLinked to original sources

A step towards measuring connectivity in the deep-sea: elemental fingerprints of mollusk larval shells discriminate hydrothermal sites

Deep-sea hydrothermal-vent systems are under investigation for base and precious metal exploitations. The impact of mining will depend critically on the ability of larval dispersal to connect and replenish endemic populations. However, assessing connectivity is extremely challenging, especially in the deep sea. Here, we investigate the potential of elemental fingerprinting of mollusc larval shells to discriminate larval origins between multiple hydrothermal sites in the Southwest Pacific Ocean. The gastropod Shinkailepas tollmanni represents a suitable candidate as it uses capsules to hold larvae before dispersal, which facilitates sampling and ensures mineralization occurs on the site of origin. Multielemental microchemistry was performed using cutting-edge femtosecond laser ablation Inductively Coupled Plasma Mass Spectrometry analysis to obtain individual measurements on 600 encapsulated larval shells. We used classification methods to discriminate the origin of individuals from 14 hydrothermal sites spanning over 3,500 km, with an overall success rate of 70%. When considering less sites within more restricted areas, reflecting dispersal distances reported by genetic and modelling approaches, the success rate increased up to 86%. We conclude that individual larval shells register site-specific elemental signatures that can be used to assess their origin. These results open new perspectives to get direct estimates on population connectivity from the geochemistry of pre-dispersal shell of recently settled juveniles.

ecology↗

Anatomy and Symbiosis of the digestive system of the vent shrimps Rimicaris exoculata and Rimicaris chacei revealed through imaging approaches.

The shrimps Rimicaris exoculata and Rimicaris chacei are visually dominant fauna co-occurring at deep-sea hydrothermal sites of the Mid-Atlantic Ridge (MAR). Their co-existence was related to contrasted life-history traits, among which differences in their diet and reliance on chemoautotrophic symbionts at adult stage. Both shrimps are colonized by diversified chemosynthetic symbiotic microbial communities in their cephalothoracic cavity. Symbiotic association with bacteria was also evidenced in their digestive system, and the major lineages were identified through sequencing (Mycoplasmatales lineages mainly in the foregut and Deferribacteres lineages mainly in the midgut) but their clear distribution within each host species was not assessed. For the first time, we used Fluorescence in situ Hybridization (FISH) to visualize these lineages. Then, we described their association with digestive structures of both Rimicaris species. The aim was to identify possible differences between host species that could be related to their different life-history traits. For this purpose, we first developed specific FISH probes targeting Deferribacteres and Mycoplasmatales lineages identified in the digestive system of these shrimps. After signal specificity validation for each the new probe, we showed a partitioning of the bacterial lineages according to the digestive organ. Despite morphological differences between the foregut of R. exoculata and R. chacei that could be related to the adult diet, our FISH results showed overall similar distribution of digestive symbionts for the two host species. However, a more comprehensive study is needed with specimens at different life or molt stages to bring potentially host specific patterns out. Such comparative approach using FISH is now warranted thanks to our newly designed probes. These will be valuable tools to track symbiont lineages in the environment, allowing a better understanding of their relationship with their host along its life cycle, including acquisition mechanisms.

microbiology↗