References
“The Use Of Lipid Markers To Define Sources Of Organic Matter In Sediment And Food Web Of The Intertidal Salt-Marsh-Flat Ecosystem Of Mont-Saint-Michel Bay, France”. Journal Of Sea Research 38 (1-2): 47 - 58. doi:10.1016/S1385-1101(97)00035-X. https://linkinghub.elsevier.com/retrieve/pii/S138511019700035X.
. 1997. “Fatty Acids As Tracers Of Organic Matter In The Sediment And Food Web Of A Mangrove/Intertidal Flat Ecosystem, Okinawa, Japan”. Marine Ecology Progress Series 200: 49 - 57. doi:10.3354/meps200049. http://www.int-res.com/abstracts/meps/v200/p49-57/.
. 2000. “Feeding Deterrence Of Azolla In Relation To Deoxyanthocyanin And Fatty Acid Composition”. Aquatic Botany 74 (2): 181 - 187. doi:10.1016/S0304-3770(02)00077-3. https://linkinghub.elsevier.com/retrieve/pii/S0304377002000773.
. 2002. “Organic Matter In A Subtropical Mangrove-Estuary Subjected To Wastewater Discharge: Origin And Utilisation By Two Macrozoobenthic Species”. Journal Of Sea Research 47 (1): 1 - 11. doi:10.1016/S1385-1101(01)00092-2. https://linkinghub.elsevier.com/retrieve/pii/S1385110101000922.
. 2002. “Fatty Acids In Decomposing Mangrove Leaves: Microbial Activity, Decay And Nutritional Quality”. Marine Ecology Progress Series 265: 97 - 105. doi:10.3354/meps265097. http://www.int-res.com/abstracts/meps/v265/p97-105/.
. 2003. “Litter Dynamics And Particulate Organic Matter Outwelling From A Subtropical Mangrove In Okinawa Island, South Japan”. Estuarine, Coastal And Shelf Science 63 (1-2): 301 - 313. doi:10.1016/j.ecss.2004.11.022. https://linkinghub.elsevier.com/retrieve/pii/S0272771404003543.
. 2005. “Total Lipid And Fatty Acid Classes In Decomposing Mangrove Leaves Of Bruguiera Gymnorrhiza And Kandelia Candel: Significance With Respect To Lipid Input”. Journal Of Oceanography 61 (3): 613 - 622. doi:10.1007/s10872-005-0069-4. http://link.springer.com/10.1007/s10872-005-0069-4.
. 2005. “Inter-Specific And Geographical Variations In The Fatty Acid Composition Of Mangrove Leaves: Implications For Using Fatty Acids As A Taxonomic Tool And Tracers Of Organic Matter”. Marine Biology 150 (6): 1103 - 1113. doi:10.1007/s00227-006-0424-z. http://link.springer.com/10.1007/s00227-006-0424-z.
. 2007. “Fatty Acid Markers As An Indicator For Temporal Changes In Food Sources Of The Bivalve Quidnipagus Palatum”. Aquatic Ecosystem Health & Management 12 (4): 390 - 400. doi:10.1080/14634980903347589. http://www.tandfonline.com/doi/abs/10.1080/14634980903347589.
. 2009. “Climate-Driven Changes In Coastal Marine Systems Of Western Europe”. doi:10.3354/meps08564.
. 2010. 
“Early Evaluation Of Coastal Nutrient Over-Enrichment: New Procedures And Indicators”. Marine Pollution Bulletin 62: 1751–1761.
. 2011. 
“Evaluation Of Coastal Perturbations: A New Mathematical Procedure To Detect Changes In The Reference State Of Coastal Systems”. Ecological Indicators 11: 1290–1300.
. 2011. 
“123. Effects Of Cyanobacterial Bloom On Fish: Proteomics And Histological Investigation On The Medaka Oryzias Latipes”. Toxicon 60 (2): 157. doi:10.1016/j.toxicon.2012.04.124. https://linkinghub.elsevier.com/retrieve/pii/S0041010112002206.
. 2012. “Collaborative Study For The Detection Of Toxic Compounds In Shellfish Extracts Using Cell-Based Assays. Part Ii: Application To Shellfish Extracts Spiked With Lipophilic Marine Toxins”. Analytical And Bioanalytical Chemistry 403 (7): 1995 - 2007. doi:10.1007/s00216-012-6029-0. http://link.springer.com/10.1007/s00216-012-6029-0.
. 2012. 
“Collaborative Study For The Detection Of Toxic Compounds In Shellfish Extracts Using Cell-Based Assays. Part I: Screening Strategy And Pre-Validation Study With Lipophilic Marine Toxins”. Analytical And Bioanalytical Chemistry 403 (7): 1983 - 1993. doi:10.1007/s00216-012-6028-1. http://link.springer.com/10.1007/s00216-012-6028-1.
. 2012. 
“Ontogenetic Change In The Lipid And Fatty Acid Composition Of Scleractinian Coral Larvae”. Coral Reefs 31 (2): 613 - 619. doi:10.1007/s00338-012-0874-3. http://link.springer.com/10.1007/s00338-012-0874-3.
. 2012. . 2013.
Jaffré et al. 2013.pdf (1.04 MB)

“Trophic Resources Of The Bivalve, Venus Verrucosa , In The Chausey Archipelago (Normandy, France) Determined By Stable Isotopes And Fatty Acids”. Aquatic Living Resources 26 (3): 229 - 239. doi:10.1051/alr/2013058. http://www.alr-journal.org/10.1051/alr/2013058.
. 2013. “Trophic Resources Of The Bivalve, Venus Verrucosa , In The Chausey Archipelago (Normandy, France) Determined By Stable Isotopes And Fatty Acids”. Aquatic Living Resources 26 (3): 229 - 239. doi:10.1051/alr/2013058. http://www.alr-journal.org/10.1051/alr/2013058.
. 2013. “Amphidromy And Marine Larval Phase Of Ancestral Gobioids Rhyacichthys Guilberti And Protogobius Attiti (Teleostei: Rhyacichthyidae).”. Marine And Freshwater Research 65: 776–783.
. 2014. 
“Amphidromy And Marine Larval Phase Of Ancestral Gobioids Rhyacichthys Guilberti And Protogobius Attiti (Teleostei: Rhyacichthyidae).”. Marine And Freshwater Research 65: 776–783.
. 2014. 
“Amphidromy And Marine Larval Phase Of Ancestral Gobioids Rhyacichthys Guilberti And Protogobius Attiti (Teleostei: Rhyacichthyidae).”. Marine And Freshwater Research 65: 776–783.
. 2014. 
“Cephalopods In Neuroscience: Regulations, Research And The 3Rs.”. Invert Neurosci 14 (1): 13-36. doi:10.1007/s10158-013-0165-x.
. 2014. “Combining Quantitative And Qualitative Models To Identify Functional Groups For Monitoring Changes In The Bay Of Biscay Continental Shelf Exploited Foodweb”. Ices Journal Of Marine Science 71: 105–117. doi:10.1093/icesjms/fst107.
. 2014. “Could Farp-Like Peptides Participate In Regulation Of Hyperosmotic Stress Responses In Plants?”. Front Endocrinol (Lausanne) 5: 132. doi:10.3389/fendo.2014.00132.
. 2014. “Emergence Of Sensory Structures In The Developing Epidermis In Sepia Officinalis And Other Coleoid Cephalopods.”. J Comp Neurol 522 (13): 3004-19. doi:10.1002/cne.23562.
. 2014. “Estimating How Many Undescribed Species Have Gone Extinct.”. Conserv Biol 28 (5): 1360-70. doi:10.1111/cobi.12285.
. 2014. “Global Imprint Of Historical Connectivity On Freshwater Fish Biodiversity.”. Ecol Lett 17 (9): 1130-40. doi:10.1111/ele.12319.
. 2014. “Histological Development Of The Digestive System Of The Amazonian Pimelodid Catfish Pseudoplatystoma Punctifer.”. Animal 8 (11): 1765-76. doi:10.1017/S1751731114001797.
. 2014. 
“Historical Assemblage Distinctiveness And The Introduction Of Widespread Non-Native Species Explain Worldwide Change In Freshwater Fish Taxonomic Dissimilarity”. Global Ecology And Biogeography 23 (5): 574-584. doi:DOI: 10.1111/geb.12141.
. 2014. “Historical Assemblage Distinctiveness And The Introduction Of Widespread Non-Native Species Explain Worldwide Change In Freshwater Fish Taxonomic Dissimilarity”. Global Ecology And Biogeography 23 (5): 574-584. doi:DOI: 10.1111/geb.12141.
. 2014. “Interactive Effects Of Irradiance And Temperature On Growth And Domoic Acid Production Of The Toxic Diatom Pseudo-Nitzschia Australis (Bacillariophyceae)”. Harmful Algae 39: 232-241.
. 2014. 
. 2014.
“Large And Local-Scale Influences On Physical And Chemical Characteristics Of Coastal Waters Of Western Europe During Winter”. Journal Of Marine Systems 139: 79–90.
. 2014. 
. 2014.
“ Mitigating Killer Whale Depredation On Demersal Longline Fisheries By Changing Fishing Practice.”. Ices Journal Of Marine Science.
. 2014. “Multiscale Patterns In The Diversity And Organization Of Benthic Intertidal Fauna Among French Atlantic Estuaries”. Journal Of Sea Research 90: 95 - 110. doi:http://dx.doi.org/10.1016/j.seares.2014.02.014. http://www.sciencedirect.com/science/article/pii/S1385110114000495.
. 2014. 
“New Data On Freshwater Fish Of New Caledonia”. In In Guilbert É., Robillard T., Jourdan H., & Grandcolas P.(Eds), Zoologia Neocaledonica 8. Biodiversity Studies In New Caledonia. , Mémoires du Muséum national d’Histoire naturelle , 127-132 . Paris : Muséum national d’Histoire naturelle.
. 2014. 
“New Sicydiinae Phylogeny (Teleostei: Gobioidei) Inferred From Mitochondrial And Nuclear Genes: Insights On Systematics And Ancestral Areas.”. Mol Phylogenet Evol 70: 260-71. doi:10.1016/j.ympev.2013.09.026.
. 2014. 
“Quantifying Seasonality Along A Latitudinal Gradient: From Stream Temperature To Growth Of Invasive Mosquitofish”. Ecosphere 5: art134. doi:10.1890/ES14-00163.1. http://www.esajournals.org/doi/abs/10.1890/ES14-00163.1.
. 2014. “Seasonal Variation Of Marine Snow-Associated And Ambient Water Prokaryotic Communities In The Northern Adriatic Sea”. Aquatic Microbial Ecology 73: 211-224.
. 2014. “Status And Distribution Of Smilosicyopus Species (Teleostei, Gobioidei)”. Cybium 38 (1): 69-73.
. 2014. 
“Temperature Modulates The Progression Of Vitellogenesis In The European Eel”. Aquaculture 434: 38-47.
. 2014. 
“Tidal And Seasonal Effects On The Short-Term Temporal Patterns Of Bacteria, Microphytobenthos And Exopolymers In Natural Intertidal Biofilms (Brouage, France)”. Journal Of Sea Research 92: 6-18.
. 2014. 
“Tropical And Temperate Freshwater Amphidromy: A Comparison Between Life History Characteristics Of Sicydiinae, Ayu, Sculpins And Galaxiids.”. Rev Fish Biol Fisheries 24: 1:14. doi:DOI 10.1007/s11160-013-9316-8.
. 2014. 
“Veliger Size At Metamorphosis And Temporal Variability In Prodissoconch Ii Morphometry In The Blue Mussel (Mytilus Edulis): Potential Impact On Recruitment”. Journal Of Shellfish Research 33 (2): 443-455. doi:http://dx.doi.org/10.2983/035.033.0213. http://www.bioone.org/doi/full/10.2983/035.033.0213.
. 2014. 
“Veliger Size At Metamorphosis And Temporal Variability In Prodissoconch Ii Morphometry In The Blue Mussel (Mytilus Edulis): Potential Impact On Recruitment”. Journal Of Shellfish Research 33 (2): 443-455. doi:http://dx.doi.org/10.2983/035.033.0213. http://www.bioone.org/doi/full/10.2983/035.033.0213.
. 2014. 
“Vulnerability Of Biodiversity Hotspots To Global Change”. Global Ecology And Biogeography 23 (12): 1376 - 1386. doi:10.1111/geb.2014.23.issue-1210.1111/geb.12228. https://onlinelibrary.wiley.com/toc/14668238/23/12.
. 2014. 
“Acute Combined Pressure And Temperature Exposures On A Shallow-Water Crustacean: Novel Insights Into The Stress Response And High Pressure Neurological Syndrome.”. Comp Biochem Physiol A Mol Integr Physiol 181: 9-17. doi:10.1016/j.cbpa.2014.10.028.
. 2015.