Different environmental response strategies in sympatric corals from Pacific Islands
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S. Sunagawa | J. Poulain | P. Wincker | R. V. Thurber | S. Pesant | B. Banaigs | S. Romac | C. de Vargas | P. Galand | C. Voolstra | É. Röttinger | S. Agostini | F. Lombard | E. Douville | D. Zoccola | P. Furla | T. Zamoum | E. Boss | Barbara Porro | B. Hume | R. Troublé | Matthew B. Sullivan | E. Gilson | O. Thomas | D. Allemand | G. Iwankow | Michel Flores | É. Boissin | Chris Bowler | Adrien Poquet | Guillaume Bourdin | Serge Planes | Clémentine Moulin | Romain Troublé | Didier Forcioli | Eugenio Di Franco | Stéphanie Barnay-Verdier | Fabien Lombard | Stéphanie Reynaud
[1] S. Sunagawa,et al. Disparate genetic divergence patterns in three corals across a pan-Pacific environmental gradient highlight species-specific adaptation , 2023, npj biodiversity.
[2] S. Sunagawa,et al. Diversity of the Pacific Ocean coral reef microbiome , 2023, Nature communications.
[3] Yanjie Zhang,et al. Comparative transcriptomics of two coral holobionts collected during the 2017 El Niño heat wave reveal differential stress response mechanisms. , 2022, Marine pollution bulletin.
[4] S. Sunagawa,et al. Open science resources from the Tara Pacific expedition across coral reef and surface ocean ecosystems , 2022, bioRxiv.
[5] Jesse R. Zaneveld,et al. Coral‐bleaching responses to climate change across biological scales , 2022, Global change biology.
[6] J. Veron,et al. Field measurements of a massive Porites coral at Goolboodi (Orpheus Island), Great Barrier Reef , 2021, Scientific Reports.
[7] D. Wuitchik,et al. Characterizing environmental stress responses of aposymbiotic Astrangia poculata to divergent thermal challenges , 2021, Molecular ecology.
[8] K. Nelson,et al. Coral microbiome manipulation elicits metabolic and genetic restructuring to mitigate heat stress and evade mortality , 2021, Science Advances.
[9] J. Eirín-López,et al. Coral environmental memory: causes, mechanisms, and consequences for future reefs. , 2021, Trends in ecology & evolution.
[10] E. Sampayo,et al. Mutualistic microalgae co-diversify with reef corals that acquire symbionts during egg development , 2021, The ISME Journal.
[11] A. Altieri,et al. Resilience of Tropical Ecosystems to Ocean Deoxygenation. , 2020, Trends in ecology & evolution.
[12] Joleah B. Lamb,et al. Deciphering Coral Disease Dynamics: Integrating Host, Microbiome, and the Changing Environment , 2020, Frontiers in Ecology and Evolution.
[13] M. Kühl,et al. Divergent expression of hypoxia response systems under deoxygenation in reef‐forming corals aligns with bleaching susceptibility , 2020, Global change biology.
[14] Z. Forsman,et al. Host-symbiont coevolution, cryptic structure, and bleaching susceptibility, in a coral species complex (Scleractinia; Poritidae) , 2020, Scientific Reports.
[15] G. Shedrawi,et al. Large geographic variability in the resistance of corals to thermal stress , 2020 .
[16] J. Ellis,et al. Nutrient-supplying ocean currents modulate coral bleaching susceptibility , 2020, Science Advances.
[17] C. Bulgin,et al. Tendencies, variability and persistence of sea surface temperature anomalies , 2020, Scientific Reports.
[18] Kefu Yu,et al. Latitudinal variation in reef coral tissue thickness in the South China Sea: Potential linkage with coral tolerance to environmental stress. , 2020, The Science of the total environment.
[19] D. Baker,et al. Trophic strategy and bleaching resistance in reef-building corals , 2020, Science Advances.
[20] M. Patterson,et al. Resistance and robustness of the global coral–symbiont network , 2020, Ecology.
[21] H. Cabral,et al. Oxidative stress on scleractinian coral fragments following exposure to high temperature and low salinity , 2019 .
[22] David J. Smith,et al. Coral bleaching patterns are the outcome of complex biological and environmental networking , 2019, Global change biology.
[23] C. Ferrier‐Pagès,et al. Peroxynitrite Generation and Increased Heterotrophic Capacity Are Linked to the Disruption of the Coral–Dinoflagellate Symbiosis in a Scleractinian and Hydrocoral Species , 2019, Microorganisms.
[24] Stacy D. Jupiter,et al. Temperature patterns and mechanisms influencing coral bleaching during the 2016 El Niño , 2019, Nature Climate Change.
[25] S. Sunagawa,et al. The Tara Pacific expedition—A pan-ecosystemic approach of the “-omics” complexity of coral reef holobionts across the Pacific Ocean , 2019, PLoS Biology.
[26] D. Bourne,et al. Nutrient Availability and Metabolism Affect the Stability of Coral-Symbiodiniaceae Symbioses. , 2019, Trends in microbiology.
[27] G. S. Kiran,et al. Differential bleaching and recovery pattern of southeast Indian coral reef to 2016 global mass bleaching event: Occurrence of stress-tolerant symbiont Durusdinium (Clade D) in corals of Palk Bay. , 2019, Marine pollution bulletin.
[28] X. Pochon,et al. Unique quantitative Symbiodiniaceae signature of coral colonies revealed through spatio-temporal survey in Moorea , 2019, Scientific Reports.
[29] T. DeCarlo,et al. An enigmatic decoupling between heat stress and coral bleaching on the Great Barrier Reef , 2019, PeerJ.
[30] D. Burkepile,et al. A global analysis of coral bleaching over the past two decades , 2019, Nature Communications.
[31] O. Hoegh‐Guldberg,et al. Securing a Long-term Future for Coral Reefs. , 2018, Trends in ecology & evolution.
[32] U. Roessner,et al. Partner switching and metabolic flux in a model cnidarian–dinoflagellate symbiosis , 2018, Proceedings of the Royal Society B.
[33] Nathan A. Johnson,et al. Integrative taxonomy resolves taxonomic uncertainty for freshwater mussels being considered for protection under the U.S. Endangered Species Act , 2018, Scientific Reports.
[34] T. Kirkwood,et al. Do reef corals age? , 2018, Biological reviews of the Cambridge Philosophical Society.
[35] C. Castro,et al. Oxidative stress in the hydrocoral Millepora alcicornis exposed to CO2-driven seawater acidification , 2018, Coral Reefs.
[36] P. Wincker,et al. Status of coral reefs of Upolu (Independent State of Samoa) in the South West Pacific and recommendations to promote resilience and recovery of coastal ecosystems. , 2018, Marine pollution bulletin.
[37] P. Marshall,et al. Species identity and depth predict bleaching severity in reef-building corals: shall the deep inherit the reef? , 2017, Proceedings of the Royal Society B: Biological Sciences.
[38] Guangmei Chen,et al. Suppression of NF‐&kgr;B signal pathway by NLRC3‐like protein in stony coral Acropora aculeus under heat stress , 2017, Fish & shellfish immunology.
[39] Z. Forsman,et al. A genomic glance through the fog of plasticity and diversification in Pocillopora , 2017, Scientific Reports.
[40] M. Matz,et al. Intraspecific differences in molecular stress responses and coral pathobiome contribute to mortality under bacterial challenge in Acropora millepora , 2017, Scientific Reports.
[41] Kim-Anh Lê Cao,et al. mixOmics: An R package for ‘omics feature selection and multiple data integration , 2017, bioRxiv.
[42] F. Al-Horani,et al. Assessing stress response of Stylophora pistillata towards oil and phosphate pollution in the Gulf of Aqaba, using molecular and biochemical markers , 2017 .
[43] S. Smithers,et al. Evidence of extensive reef development and high coral cover in nearshore environments: implications for understanding coral adaptation in turbid settings , 2016, Scientific Reports.
[44] Joshua S Madin,et al. A Trait-Based Approach to Advance Coral Reef Science. , 2016, Trends in ecology & evolution.
[45] S. Wooldridge. Excess seawater nutrients, enlarged algal symbiont densities and bleaching sensitive reef locations: 1. Identifying thresholds of concern for the Great Barrier Reef, Australia. , 2016, Marine pollution bulletin.
[46] Eric E. Schadt,et al. variancePartition: interpreting drivers of variation in complex gene expression studies , 2016, BMC Bioinformatics.
[47] O. Hoegh‐Guldberg,et al. Differential coral bleaching-Contrasting the activity and response of enzymatic antioxidants in symbiotic partners under thermal stress. , 2015, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[48] C. Voolstra,et al. Niche acclimatization in Red Sea corals is dependent on flexibility of host-symbiont association , 2015 .
[49] Z. Dubinsky,et al. Coral photobiology: new light on old views. , 2015, Zoology.
[50] Yohei Matsui,et al. The cumulative impact of annual coral bleaching can turn some coral species winners into losers , 2014, Global change biology.
[51] O. Hoegh‐Guldberg,et al. Antioxidant plasticity and thermal sensitivity in four types of Symbiodinium sp. , 2014, Journal of phycology.
[52] L. Mydlarz,et al. Relationship between Phylogeny and Immunity Suggests Older Caribbean Coral Lineages Are More Resistant to Disease , 2014, PloS one.
[53] P. Todd,et al. Photo-physiological costs associated with acute sediment stress events in three near-shore turbid water corals , 2014 .
[54] Jörg Wiedenmann,et al. Impacts of nutrient enrichment on coral reefs: new perspectives and implications for coastal management and reef survival , 2014 .
[55] M. Liñán‐Cabello,et al. Physiological responses to oxidative stress associated with pH variations in host tissue and zooxanthellae of hermatypic coral Pocillopora capitata , 2013 .
[56] A. Buttler,et al. The Response of the Mediterranean Gorgonian Eunicella singularis to Thermal Stress Is Independent of Its Nutritional Regime , 2013, PloS one.
[57] C. Osburn,et al. Physiological and Biogeochemical Traits of Bleaching and Recovery in the Mounding Species of Coral Porites lobata: Implications for Resilience in Mounding Corals , 2013, PloS one.
[58] P. Glynn,et al. Flexible associations between Pocillopora corals and Symbiodinium limit utility of symbiosis ecology in defining species , 2013, Coral Reefs.
[59] N. Altman,et al. Variation in the transcriptional response of threatened coral larvae to elevated temperatures , 2013, Molecular ecology.
[60] Edward G. Smith,et al. Nutrient enrichment can increase the susceptibility of reef corals to bleaching , 2013 .
[61] D. Bellwood,et al. Evaluating life-history strategies of reef corals from species traits. , 2012, Ecology letters.
[62] S. Smithers,et al. Coral reefs of the turbid inner-shelf of the Great Barrier Reef, Australia: An environmental and geomorphic perspective on their occurrence, composition and growth , 2012 .
[63] L. Mydlarz,et al. Variations in Reactive Oxygen Release and Antioxidant Activity in Multiple Symbiodinium Types in Response to Elevated Temperature , 2012, Microbial Ecology.
[64] E. Franklin,et al. Hosts of the Plio-Pleistocene past reflect modern-day coral vulnerability , 2012, Proceedings of the Royal Society B: Biological Sciences.
[65] P. Sammarco,et al. Effects of phosphate on growth and skeletal density in the scleractinian coral Acropora muricata: A controlled experimental approach , 2012 .
[66] B. D. Todd,et al. A Connection between Colony Biomass and Death in Caribbean Reef-Building Corals , 2011, PloS one.
[67] D. Allemand,et al. Depth-dependant thermotolerance of the symbiotic Mediterranean gorgonian Eunicella singularis: Evidence from cellular stress markers , 2011 .
[68] Y. Loya,et al. Revisiting the winners and the losers a decade after coral bleaching , 2011 .
[69] Y. Loya,et al. Carbon and nitrogen utilization in two species of Red Sea corals along a depth gradient: Insights from stable isotope analysis of total organic material and lipids , 2009 .
[70] X. Pochon,et al. Specificity in communities of Symbiodinium in corals from Johnston Atoll , 2009 .
[71] D. J. Franklin,et al. Response of two species of Indo-Pacific corals, Porites cylindrica and Stylophora pistillata, to short-term thermal stress: The host does matter in determining the tolerance of corals to bleaching , 2009 .
[72] B. Willis,et al. Systematic and Biogeographical Patterns in the Reproductive Biology of Scleractinian Corals , 2009 .
[73] Sébastien Lê,et al. FactoMineR: An R Package for Multivariate Analysis , 2008 .
[74] D. Allemand,et al. Depth-dependant response to light of the reef building coral, Pocillopora verrucosa: Implication of oxidative stress , 2008 .
[75] L. D'croz,et al. Variability in upwelling along the Pacific shelf of Panama and implications for the distribution of nutrients and chlorophyll , 2007 .
[76] D. Allemand,et al. Oxidative stress and apoptotic events during thermal stress in the symbiotic sea anemone, Anemonia viridis , 2006, The FEBS journal.
[77] James E. Palardy,et al. Heterotrophic plasticity and resilience in bleached corals , 2006, Nature.
[78] D. Allemand,et al. Symbiosis-induced adaptation to oxidative stress , 2005, Journal of Experimental Biology.
[79] Michael P. Lesser,et al. Exposure to solar radiation increases damage to both host tissues and algal symbionts of corals during thermal stress , 2004, Coral Reefs.
[80] W. Dennison,et al. Photosynthetic responses of the coral Montipora digitata to cold temperature stress , 2003 .
[81] A. Douglas,et al. Experience shapes the susceptibility of a reef coral to bleaching , 2002, Coral Reefs.
[82] K. Yamazato,et al. Coral bleaching: the winners and the losers , 2001 .
[83] N. Holbrook,et al. Oxidants, oxidative stress and the biology of ageing , 2000, Nature.
[84] Y. Naguib. A fluorometric method for measurement of oxygen radical-scavenging activity of water-soluble antioxidants. , 2000, Analytical biochemistry.
[85] J. Lough,et al. Systematic variations in the depth of skeleton occupied by coral tissue in massive colonies of Porites from the Great Barrier Reef , 1992 .
[86] L. Muscatine,et al. Estimating the daily contribution of carbon from zooxanthellae to coral animal respiration1 , 1981 .
[87] P. Glynn,et al. Coral Reefs of the Eastern Tropical Pacific: Persistence and Loss in a Dynamic Environment , 2017 .
[88] O. Hoegh‐Guldberg,et al. Kinetics of photoacclimation in corals , 2002, Oecologia.