Respuesta fisiológica de corales susceptibles al estrés con la aplicación de bacterias probióticas
| dc.contributor.advisor | Ruiz Toquica, Jordan Steven | |
| dc.creator | Socarrás Castillo, Alejandra | |
| dc.date.accessioned | 2024-08-22T15:49:45Z | |
| dc.date.available | 2024-08-22T15:49:45Z | |
| dc.date.created | 2024-05-02 | |
| dc.description.abstract | Los arrecifes de coral están bajo diferentes grados de perturbación (natural y antropogénica) que amenazan su salud y persistencia, entre ellas, el aumento de la temperatura del mar. Por lo que se buscan estrategias para preservar este ecosistema. Este trabajo evaluó la respuesta de corales cuando se trasplantan a un sitio de mayor perturbación y cuando se les adicionan bacterias con potencial probiótico en un experimento de estrés por calor. Se recolectaron fragmentos sanos de los corales Madracis auretenra y Porites spp. en bahía Chengue y Playa Grande, Santa Marta. Algunos fragmentos de M. auretenra se trasplantaron al sector de Inca Inca, Santa Marta, y se observó la aparición de signos de deterioro (pérdida del color y mortalidad) como indicadores de la susceptibilidad a las condiciones de estrés del lugar. Otros fragmentos de estas especies se aclimataron por tres meses en un sistema vivero, en donde mostraron una sobrevivencia del 100 %. Los fragmentos aclimatados se expusieron a un régimen de calor (30 y 31 °C) y se trataron con un consorcio probiótico y un placebo (solución salina estéril) desde el inicio del experimento y hasta el periodo de recuperación. Se consiguió una sobrevivencia del 100 % y se redujo el blanqueamiento y la pérdida de color para ambas especies con la adición del probiótico, y con relación al placebo. Además, la adición del consorcio tuvo un efecto sobre la densidad de Symbiodiniaceae y la clorofila a, especialmente durante el estrés por calor y el post estrés, pero se observaron diferencias entre ambos tratamientos únicamente para los fragmentos de M. auretenra. Estos resultados sugieren que es posible modular la respuesta de fragmentos de coral susceptibles al estrés, a través de la adición de bacterias probióticas, y conseguir atenuar el blanqueamiento, prolongar la resistencia e incrementar la sobrevivencia incluso en corales de diferentes especies. | spa |
| dc.description.abstractenglish | Coral reefs are under different levels of disturbance (natural and anthropogenic) that threaten their health and persistence, including rising sea temperatures. Therefore, strategies are sought to preserve this ecosystem. This work evaluated corals' response when transplanted to a site of higher disturbance and when bacteria with probiotic potential were added in a heat stress experiment. Healthy fragments of the corals Madracis auretenra and Porites spp. were collected in Chengue Bay and Playa Grande, Santa Marta. Some fragments of M. auretenra were transplanted to the Inca Inca sector, Santa Marta, and displayed signs of deterioration as indicators of susceptibility to the stress conditions of the site. Other fragments of these species were acclimatized for three months in a nursery system, where they showed 100% survival. Acclimatized fragments were exposed to a heat regime (30 and 31°C) and treated with a probiotic consortium and a placebo (sterile saline solution) from the beginning of the experiment until the recovery period. Survival was achieved by 100% and bleaching and color loss were reduced for both species with the addition of the probiotic, and in relation to the placebo. Furthermore, adding the consortium had an effect on the density of Symbiodiniaceae and chlorophyll a, especially during heat stress and post stress, but differences between both treatments were observed only for M. auretenra fragments. These results suggest that it is possible to modulate the response of coral fragments susceptible to stress, through the addition of probiotic bacteria, and manage to attenuate bleaching, extend resistance and increase survival even in coral from different species. | spa |
| dc.format.extent | 48 páginas | spa |
| dc.format.mimetype | application/pdf | spa |
| dc.identifier.uri | https://hdl.handle.net/20.500.12010/34989 | |
| dc.language.iso | spa | spa |
| dc.relation.references | Ainsworth, T.D., O. Hoegh-Guldberg, S.F. Heron, W.J. Skirving y W. Leggat. 2008. Early cellular changes are indicators of pre-bleaching thermal stress in the coral host. J. Exp. Mar. Biol. Ecol., 364(2): 63–71. https://doi.org/10.1016/j.jembe.2008.06.032 | spa |
| dc.relation.references | Alvarado-Chacón, E.M., L.A. Gómez-Lemos, N.P. Sierra-Sabalza, A.M. Hernández-Chamorro, J.P. Lozano-Peña, C.A. Valcárcel-Castellanos, V. Pizarro, R. García-Urueña, J.C. Zárate-Arévalo y J.A. Rojas. 2020. Early life history of the Caribbean coral Orbicella faveolata (Scleractinia: Merulinidae). Rev. Biol. Trop. (Int. J. Trop. Biol.), 68(4): 1262–1274. https://doi.org/10.15517/rbt.v68i4.40805 | spa |
| dc.relation.references | Alvarado-Chacón, E.M., R. García-Ureña, S.L. Sierra-Escrigas, M.A. Garzón-Machado, J.C. Zárate-Arévalo, N.P. Sierra-Sabalza, C. Cely y N. Rincón-Díaz. 2023. Embriogénesis, desarrollo larval y sobrevivencia post-asentamiento del coral Orbicella annularis (Scleractinia: Merulinidae). Rev. Biol. Trop, 71: e54793. https://doi.org/10.15517/rev.biol.trop..v71is1.54793 | spa |
| dc.relation.references | Assis, J.M., F. Abreu, H.M.D. Villela, A. Barno, R.F. Valle, R. Vieira, I. Taveira, G. Duarte, D.G. Bourne, L. Høj y R.S. Peixoto. 2020. Delivering beneficial microorganisms for corals: rotifers as carriers of probiotic bacteria. Front. Microbiol., 11: 608506. https://doi.org/10.3389/fmicb.2020.608506 | spa |
| dc.relation.references | Banaszak, A.T., K.L. Marhaver, M.W. Miller, A.C. Hartmann, R. Albright, M. Hagedorn, P.L. Harrison, K.R.W. Latijnhouwers, S. Mendoza Quiroz, V. Pizarro y V.F. Chamberland. 2023. Applying coral breeding to reef restoration: best practices, knowledge gaps, and priority actions in a rapidly-evolving field. Restor. Ecol., 31(7): e13913. https://doi.org/10.1111/rec.13913 | spa |
| dc.relation.references | Barton, J.A., B.L. Willis y K.S. Hutson. 2017. Coral propagation: a review of techniques for ornamental trade and reef restoration. Rev. Aquac., 9(3): 238-256. https://doi.org/10.1111/raq.12135 | spa |
| dc.relation.references | Bell, J.J., C. Shaw y J.R. Turner. 2006. Factors controlling the tentacle and polyp expansion behaviour of selected temperate Anthozoa. J. Mar. Biol. Assoc. U.K., 86(5): 977–992. https://doi.org/10.1017/S0025315406013956 | spa |
| dc.relation.references | Bellworthy, J. y M. Fine. 2018. The Red Sea Simulator: A high-precision climate change mesocosm with automated monitoring for the long-term study of coral reef organisms. Limnol. Oceanogr-Meth., 16(6): 367–375. https://doi.org/10.1002/lom3.10250 | spa |
| dc.relation.references | Boilard, A., C.E. Dubé, C. Gruet, A. Mercière, A. Hernandez-Agreda y N. Derome. 2020. Defining coral bleaching as a microbial dysbiosis within the coral holobiont. Microorganisms, 8(11): 1682. https://doi.org/10.3390/microorganisms8111682 | spa |
| dc.relation.references | Borneman, E., 2008. Advances in coral husbandry in public aquariums. 3-438. En: Lewis, R. y M. Janse (Eds.). Public Aquarium Husbandry Series, vol. 2. Burgers’ Zoo, Arnhem, Paises Bajos. 438 p. | spa |
| dc.relation.references | Brown, B. y J. Bythell. 2005. Perspectives on mucus secretion in reef corals. Mar. Ecol. Prog. Ser., 296: 291–309. doi:10.3354/meps296291 | spa |
| dc.relation.references | Brown, N.P., Z.H. Forsman, K.T. Tisthammer y R.H. Richmond. 2020. A resilient brooding coral in the broadcast spawning Porites lobata species complex: a new endemic, introduced species, mutant, or new adaptive potential? Coral Reefs, 39(3): 809–818. https://doi.org/10.1007/s00338-020-01922-w | spa |
| dc.relation.references | Bustos-Usta, D.F. y R.R. Torres-Parra. 2021. Ocean and atmosphere changes in the Caribbean Sea during the twenty-first century using CMIP5 models. Ocean. Dyn., 71(6): 757–777. https://doi.org/10.1007/s10236-021-01462-z | spa |
| dc.relation.references | Chamberland, V.F., M.J.A Vermeij, M. Brittsan, M. Carl, M. Schick, S. Snowden, A. Schrier y D. Peterse. 2015. Restoration of critically endangered elkhorn coral (Acropora palmata) populations using larvae reared from wild-caught gametes. Glob. Ecol. Conserv., 4: 526–537. https://doi.org/10.1016/j.gecco.2015.10.005 | spa |
| dc.relation.references | Chuang, P.S. y S. Mitarai. 2020. Signaling pathways in the coral polyp bail-out response. Coral Reefs, 39(6): 1535–1548. https://doi.org/10.1007/s00338-020-01983-x | spa |
| dc.relation.references | Conley, D.D. y E.N.R. Hollander. 2021. A non-destructive method to create a time series of surface area for coral using 3D photogrammetry. Front. Mar. Sci., 8: 660846. https://doi.org/10.3389/fmars.2021.660846 | spa |
| dc.relation.references | Connell, S.D. 2007. Water quality and the loss of coral reefs and kelp forests: alternative states and the influence of fishing. 556-568. En: Connell, S.D. y B.M. Gillanders (Eds.). Mar. Ecol. Oxford University Press, Melbourne. 650 p. | spa |
| dc.relation.references | Craggs, J., J.R. Guest, M. Davis, J. Simmons, E. Dashti y M. Sweet. 2017. Inducing broadcast coral spawning ex situ: Closed system mesocosm design and husbandry protocol. Ecol. Evol., 7(24): 11066–11078. https://doi.org/10.1002/ece3.3538 | spa |
| dc.relation.references | Cruz, D.W. Dela y P.L Harrison. 2017. Enhanced larval supply and recruitment can replenish reef corals on degraded reefs. Sci. Rep., 7(1): 13985. https://doi.org/10.1038/s41598-017-14546-y | spa |
| dc.relation.references | Cruz-Piñón, G., J.P. Carricart-Ganivet, y J. Espinoza-Avalos. 2003. Monthly skeletal extension rates of the hermatypic corals Montastraea annularis and Montastraea faveolata: Biological and environmental controls. Mar. Biol., 143: 491–500. https://doi.org/10.1007/s00227-003-1127-3 | spa |
| dc.relation.references | D’Angelo, C. y J. Wiedenmann. 2012. An experimental mesocosm for long-term studies of reef corals. J. Mar. Biolog. Assoc. U.K., 92(4): 769–775. https://doi.org/10.1017/S0025315411001883 | spa |
| dc.relation.references | D’Angelo, C., A. Denzel, A. Vogt, M.V. Matz, F. Oswald, A. Salih, G.U. Nienhaus, G.U y J. Wiedenmann. 2008. Blue light regulation of host pigment in reef-building corals. Mar. Ecol. Prog. Ser., 364: 97–106. https://doi.org/10.3354/meps07588 | spa |
| dc.relation.references | D’Croz, L., J.L. Maté y J.E. Ok. 2001. Responses to elevated sea water temperature and UV radiation in the coral Porites lobata from upwelling and non-upwelling environments on the Pacific coast of Panama. Bull. Mar. Sci., 69(1): 203–214. | spa |
| dc.relation.references | Dang, K. Van, M. Pierangelini, S. Roberty y P. Cardol. 2019. Alternative photosynthetic electron transfers and bleaching phenotypes upon acute heat stress in Symbiodinium and Breviolum spp. (Symbiodiniaceae) in culture. Front. Mar. Sci., 6: 656. https://doi.org/10.3389/fmars.2019.00656 | spa |
| dc.relation.references | Delgadillo-Ordoñez, N., N. Garcias-Bonet, I. Raimundo, F. García, H. Villela, E. Osman, E. Santoro, J. Curdia, J. Rosado, P. Cardoso, A. Alsaggaf, A. Barno, C. Antony, C. Bocanegra, M. Berumen, C. Voolstra, F. Benzoni, S. Carvalho y R.S. Peixoto. 2024. Probiotics reshape the coral microbiome in situ without affecting the surrounding environment. Commun. Biol., 7: 434. https://doi.org/10.1038/s42003-024-06135-03 | spa |
| dc.relation.references | Díaz-Almeyda, E.M., C. Prada, A.H. Ohdera, H. Moran, D.J. Civitello, R. Iglesias-Prieto, T.A. Carlo, T.C. Lajeuness y M. Medina. 2017. Intraspecific and interspecific variation in thermotolerance and photoacclimation in Symbiodinium dinoflagellates. Proc. R. Soc. Lond. B. Biol. Sci., 284(1868): 20171767. https://doi.org/10.1098/rspb.2017.1767 | spa |
| dc.relation.references | Diaz-Romero, J.M., M. Tonetti-Botana, A. de Carvalho-Elias, C. Seimi-Nomura, F. Saldanha-Corrêa y B.P. Pannia-Espósito. 2022. Effect of iron speciation on growth and heat resistance of Symbiodiniaceae. Ocean Coast. Res., 70: e22016. https://doi.org/10.1590/2675-2824070.21103JMDR | spa |
| dc.relation.references | Douglas, A.E. 2003. Coral bleaching - How and why? Mar. Pollut. Bull., 46(4): 385–392. https://doi.org/10.1016/S0025-326X(03)00037-7 | spa |
| dc.relation.references | Dubé, C.E., M. Ziegler, A. Mercière, E. Boissin, S. Planes, C.A.F. Bourmaud y C.R. Voolstra. 2021. Naturally occurring fire coral clones demonstrate a genetic and environmental basis of microbiome composition. Nat. Commun., 12(1): 6402. https://doi.org/10.1038/s41467-021-26543-x | spa |
| dc.relation.references | Fitt, W.K., R.D. Gates, O. Hoegh-Guldberg, J.C. Bythell, A. Jatkar, A.G. Grottoli, M. Gomez, P. Fisher, T.C. Lajuenesse, O. Pantos, R. Iglesias-Prieto, D.J. Franklin, L.J. Rodrigues, J.M. Torregiani, R. van Woesik y M.P. Lesser. 2009. 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. J. Exp. Mar. Biol. Ecol., 373(2): 102–110. https://doi.org/10.1016/j.jembe.2009.03.011 | spa |
| dc.relation.references | Forsman, Z.H., B. Rinkevich y C.L. Hunter. 2006. Investigating fragment size for culturing reef-building corals (Porites lobata and P. compressa) in ex situ nurseries. Aquaculture, 261(1): 89-97. https://doi.org/10.1016/j.aquaculture.2006.06.040 | spa |
| dc.relation.references | Forsman, Z.H., C.A. Page, R.J. Toonen y D. Vaughan. 2015. Growing coral larger and faster: Micro-colony-fusion as a strategy for accelerating coral cover. PeerJ, 3: e1313. https://doi.org/10.7717/peerj.1313 | spa |
| dc.relation.references | França, F.M., C.E. Benkwitt, G. Peralta, J.P.W. Robinson, N.A.J Graham, J.M. Tylianakis, E. Berenguer, A.C. Lees, J. Ferreira, J. Louzada, y J. Barlow. 2020. Climatic and local stressor interactions threaten tropical forests and coral reefs. Philos. Trans. R. Soc. Lond., B, Biol. Sci., 375(1794): 20190116. https://doi.org/10.1098/rstb.2019.0116 | spa |
| dc.relation.references | Franco-Herrera, A. 2005. Oceanografía de la ensenada de Gaira. Fundación Universidad de Bogotá Jorge Tadeo Lozano, Bogotá, D.C., Colombia. 62 p. | spa |
| dc.relation.references | Gaitán-Espitia, J. 2008. Estructura de la comunidad del phylum Echinodermata en aguas someras de la bahía de Taganga, Caribe colombiano. Revista U.D.C.A Actualidad & Divulgación Científica 11: 85–93. | spa |
| dc.relation.references | Garay-Tinoco, J.A., C.A: Pinilla González y J.M. Díaz Merlano. 2003. Manual de técnicas analíticas para la determinación de parámetros fisicoquímicos y contaminantes marinos (aguas, sedimentos y organismos). INVEMAR, Santa Marta DTCH. 146 p. | spa |
| dc.relation.references | Garzón-Ferreira, J. 1998. Bahía de Chengue, Parque Natural Tayrona, Colombia. 115-125. En: Kjerfve, B. (Ed.). CARICOMP: Caribbean Coral Reef, Seagrass and Mangrove Sites. UNESCO, Paris. 347 p. | spa |
| dc.relation.references | Guendulain-García, S.D., A. Lopez-Beltran, A.T. Banaszak, L. Alvarez-Filip, E. Ramírez-Chávez, D. Garcia-Medrano, R. Sellares-Blasco y A. Lopez-Perez. 2023. Photogrammetry for coral structural complexity: What is beyond sight? Coral Reefs, 42(3): 635–644. | spa |
| dc.relation.references | Gutiérrez-Samacá, D.L. 2024. Búsqueda de un consorcio microbiano con potencial probiótico para corales a partir de bacterias nativas de Madracis auretenra (Scleractinia: Pocilloporidae). Tesis Biol. Mar, Univ. de Bogotá Jorge Tadeo Lozano, Facultad de Ciencias Naturales e Ingenieria, Santa Marta DTCH. 84 p. | spa |
| dc.relation.references | Häder, D.P., E.W. Helbling, C.E. Williamson y R.C. Worrest. 2011. Effects of UV radiation on aquatic ecosystems and interactions with climate change. Photochem. Photobiol. Sci., 10(2): 242–260. https://doi.org/10.1039/c0pp90040k | spa |
| dc.relation.references | Hartwig, F. 1973. Statistical significance of the lambda coefficients. Behav. Sci.,18: 307–310. | spa |
| dc.relation.references | Heery, E.C., B.W. Hoeksema, N.K. Browne, J.D. Reimer, P.O. Ang, D. Huang, D.A. Friess, L.M. Chou, L.H.L. Loke, P. Saksena-Taylor, N. Alsagoff, T. Yeemin, M. Sutthacheep, S.T. Vo, A.R. Bos, G.S. Gumanao, M.A. Syed Hussein, Z. Waheed, D.J.W. Lane, O. Johan, A. Kunzmann, J. Jompa, Suharsono, D. Taira, A.G. Bauman y P.A. Todd. 2018. Urban coral reefs: Degradation and resilience of hard coral assemblages in coastal cities of East and Southeast Asia. Mar. Pollut. Bull., 135: 654–681. https://doi.org/10.1016/j.marpolbul.2018.07.041 | spa |
| dc.relation.references | Henry, J.A., K.L. O’Neil, A.R. Pilnick y J.T. Patterson. 2021. Strategies for integrating sexually propagated corals into Caribbean reef restoration: experimental results and considerations. Coral Reefs, 40(5): 1667–1677. https://doi.org/10.1007/s00338-021-02154-2 | spa |
| dc.relation.references | Herlan, J.J. y D. Lirman. 2008. Development of a coral nursery program for the threatened coral Acropora cervicornis in Florida Integrated Biscayne Bay Ecosystem Assessment and Management View project South Florida MARES project View project. Proceedings of the 11th International Coral Reef Symposium. Lauderdale, FL. | spa |
| dc.relation.references | Hidaka, M. 2016. Life history and stress response of scleractinian coral. 1-24. En: Kayanne, H. (Ed.). Coral Reef Science. Springer, Tokio, Japón, 101 p. | spa |
| dc.relation.references | Hughes, T.P., A.H. Baird, D.R. Bellwood, M. Card, S.R. Connolly, C. Folke, R. Grosberg, O. Hoegh-Guldberg, J.B.C. Jackson, J. Kleypas, J.M. Lough, P. Marshall, M. Nyström, S.R. Palumbi, J.M. Pandolfi, B. Rosen y J. Roughgarden. 2003. Climate Change, Human Impacts, and the Resilience of Coral Reefs. Science, 301(5635): 929–933. | spa |
| dc.relation.references | Humanes, A., E.A. Beauchamp, J.C Bythell, M.K. Carl, J.R Craggs, A.J. Edwards, Y. Golbuu, L. Lachs, H.M. Martinez, P. Palmowski, F. Paysinger, J.L. Randle, E. van der Steeg, M. Sweet, A. Treuman y J.R. Guest. 2021. An experimental framework for selectively breeding corals for assisted evolution. Front. Mar. Sci., 8: 626. https://doi.org/10.3389/fmars.2021.669995 | spa |
| dc.relation.references | Jeffrey, S. y G. Humphrey. 1975. New spectrophotometric equations for determining chlorophylls a, b, c1 and c2 in higher plants, algae and natural phyotplankton. Biochem. Physiol. Pflanzen., 167(2): 191–194. | spa |
| dc.relation.references | Jiménez-Gómez, A., J.D. Flores-Félix, P. García-Fraile, P.F. Mateos, E. Menéndez, E. Velázquez y R. Rivas. 2018. Probiotic activities of Rhizobium laguerreae on growth and quality of spinach. Sci. Rep., 8(1): 295. https://doi.org/10.1038/s41598-017-18632-z | spa |
| dc.relation.references | Jokiel, P.L., K.S. Rodgers, I.B. Kuffner, A.J. Andersson, E.F. Cox y F.T. Mackenzi. 2008. Ocean acidification and calcifying reef organisms: A mesocosm investigation. Coral Reefs, 27: 473–483. https://doi.org/10.1007/s00338-008-0380-9 | spa |
| dc.relation.references | LaJeunesse, T.C., J.E. Parkinson, P.W. Gabrielson, H.J. Jeong, J.D. Reimer, C.R. Voolstra, y S.R. Santos. 2018. Systematic revision of Symbiodiniaceae highlights the antiquity and diversity of coral endosymbionts. Curr. Biol., 28(16): 2570-2580. https://doi.org/10.1016/j.cub.2018.07.008 | spa |
| dc.relation.references | Lange, I.D. y C.T. Perry. 2020. A quick, easy and non-invasive method to quantify coral growth rates using photogrammetry and 3D model comparisons. Methods Ecol. Evol., 11(6): 714–726. https://doi.org/10.1111/2041-210X.13388 | spa |
| dc.relation.references | Li, J., Y. Zou, Q. Li, J. Zhang, D.G. Bourne, Y. Lyu, C. Liu y S. Zhang. 2023. A coral-associated actinobacterium mitigates coral bleaching under heat stress. Environ. Microbiome, 18(1): 83. https://doi.org/10.1186/s40793-023-00540-7 | spa |
| dc.relation.references | Liu, D., L. Wu, M.S. Naeem, H. Liu, X. Deng, L. Xu, F. Zhang y W. Zhou. 2013. 5-Aminolevulinic acid enhances photosynthetic gas exchange, chlorophyll fluorescence and antioxidant system in oilseed rape under drought stress. Acta Physiol. Plant, 35: 2747–2759. https://doi.org/10.1007/s11738-013-1307-9 | spa |
| dc.relation.references | Matthews, J. L., A. Khalil, N. Siboni, J. Bougoure, P. Guagliardo, U. Kuzhiumparambil, M. DeMaere, N.M. Le-Reun, J.R. Seymour, D.J. Suggest y J.B. Raina. 2023. Coral endosymbiont growth is enhanced by metabolic interactions with bacteria. Nat. Commun., 14(1): 6864. | spa |
| dc.relation.references | Mayfield, A.B., M.N. Chen, P.J. Meng, H.J. Lin, C.S. Chen y P.J. Li. 2013. The physiological response of the reef coral Pocillopora damicornis to elevated temperature: Results from coral reef mesocosm experiments in Southern Taiwan. Mar. Environ. Res., 86: 1–11. https://doi.org/10.1016/j.marenvres.2013.01.004 | spa |
| dc.relation.references | Mcclanahan, T.R., M. Ateweberhan, C.A. Muhando, J. Maina y M.S. Mohammed. 2007. Effects of climate and seawater temperature variation on coral bleaching and mortality. Ecol. Monogr., 77(4): 503–525. | spa |
| dc.relation.references | Mclaughlin, M.J., C. Bessey, G.A. Kendrick, J. Keesing y Y.S. Olsen. 2023. Production and accumulation of reef framework by calcifying corals and macroalgae on a remote Indian Ocean cay. Biogeosciences, 20(5): 1011–1026. https://doi.org/10.5194/bg-20-1011-2023 | spa |
| dc.relation.references | Morell-Christ, N. 2019. Cultivo “ex situ” para la restauración de arrecifes de coral del género Pocillopora (Bahía Culebra, Costa Rica). Tesis Ciencias del Mar, Univ. Católica del Valencia, Facultad de Veterinaria y Ciencias Experimentales, Valencia. 40 p. | spa |
| dc.relation.references | Morgans, C.A., J.Y. Hung, D.G. Bourne y K.M. Quigley. 2020. Symbiodiniaceae probiotics for use in bleaching recovery. Restor. Ecol., 28(2): 282–288. https://doi.org/10.1111/rec.13069 | spa |
| dc.relation.references | Mumby, P.J., A. Hastings y H.J. Edwards. 2007. Thresholds and the resilience of Caribbean coral reefs. Nature, 450(7166): 98–101. https://doi.org/10.1038/nature06252 | spa |
| dc.relation.references | Myśliwa-Kurdziel, B., D. Latowski y K. Strzałka. 2019. Chlorophylls c—Occurrence, synthesis, properties, photosynthetic and evolutionary significance. Adv. Bot. Res., 90: 91–119. | spa |
| dc.relation.references | Nielsen, D.A., K. Petrou y R.D. Gates. 2018. Coral bleaching from a single cell perspective. ISME J., 12(6): 1558–1567. https://doi.org/10.1038/s41396-018-0080-6 | spa |
| dc.relation.references | Orlandi, V.T., E. Martegani, C. Giaroni, A. Baj y F. Bolognese. 2022. Bacterial pigments: A colorful palette reservoir for biotechnological applications. Biotechnol. Appl. Biochem., 69(3): 981-1001. https://doi.org/10.1002/bab.2170 | spa |
| dc.relation.references | Patel, N.P., S.B. Kumar y S. Haldar. 2017. Role of bacteria in coral ecosystem. 317-341. En: Kumar, M. y P. Ralph (Eds.), Systems Biology of Marine Ecosystems. Springer International Publishing, Bhavnagar. 573 p. | spa |
| dc.relation.references | Peixoto, R.S., M. Sweet, H.D.M. Villela, P. Cardoso, T. Thomas, C.R. Voolstra, L. Høj y D.G. Bourne. 2021. Coral Probiotics: Premise, Promise, Prospects. Annu. Rev. Anim. Biosci., 9: 265–288. https://doi.org/10.1146/annurev-animal-090120 | spa |
| dc.relation.references | Peixoto, R.S., P.M. Rosado, D.C. Leite, A.S. Rosado, y D.G. Bourne. 2017. Beneficial microorganisms for corals (BMC): proposed mechanisms for coral health and resilience. Front. Microbiol., 8: 341. | spa |
| dc.relation.references | Pelosi, J., K.M. Eaton, S. Mychajliw, C. TerHorst y M. Coffroth. 2021. Thermally tolerant symbionts may explain Caribbean octocoral resilience to heat stress. Coral Reefs, 40(4): 1113–1125. https://doi.org/10.1007/s00338 | spa |
| dc.relation.references | Price, J.T., R.H. McLachlan, C.P. Jury, R.J. Toonen, M.J. Wilkins y A.G. Grottoli. 2023. Long-term coral microbial community acclimatization is associated with coral survival in a changing climate. PLoS One, 18(9): e0291503. https://doi.org/10.1371/journal.pone.0291503 | spa |
| dc.relation.references | Rädecker, N., C. Pogoreutz, H.M. Gegner, A. Cárdenas, F. Roth, J. Bougoure, P. Guagliardo, C. Wild, M. Pernice, J.B. Raina, A. Meibom y C.R. Voolstra. 2021. Heat stress destabilizes symbiotic nutrient cycling in corals. Proc. Natl. Acad. Sci., 118(5): e2022653118. | spa |
| dc.relation.references | Raina, J.B., E.A. Dinsdale, B.L. Willis y D.G. Bourne. 2010. Do the organic sulfur compounds DMSP and DMS drive coral microbial associations? Trends Microbiol., 18(3): 101–108. | spa |
| dc.relation.references | Ramos-Ortega, L., L. Vidal, S. Vilardy y L. Saavedra-Díaz. 2008. Análisis de la contaminación microbiológica (coliformes totales y fecales) en la bahía de Santa Marta, Caribe colombiano. Acta Biol. Colomb., 13(3): 85–96. | spa |
| dc.relation.references | Randall, C.J., A.P. Negri, K.M. Quigley, T. Foster, G.F. Ricardo, N.S. Webster, L.K. Bay, P.L. Harrison, R.C. Babcock y A.J. Heyward. 2020. Sexual production of corals for reef restoration in the Anthropocene. Mar. Ecol. Prog. Ser., 635: 203–232. https://doi.org/10.3354/MEPS13206 | spa |
| dc.relation.references | Reich, H.G., W.C. Tu, I.B. Rodriguez, Y. Chou, E.F. Keister, D.W. Kemp, T.C. Lajeunesse y T. Ho. 2021. Iron availability modulates the response of endosymbiotic dinoflagellates to heat stress. J. Phycol., 51(1): 3–13. https://doi.org/10.1111/JPY.13078-20-150 | spa |
| dc.relation.references | Reshef, L., O. Koren, Y. Loya, I. Zilber-Rosenberg y E. Rosenberg. 2006. The Coral Probiotic Hypothesis. Environ. Microbiol., 8(12): 2068–2073. https://doi.org/10.1111/j.1462-2920.2006.01148.x | spa |
| dc.relation.references | Reyes, J. y N. Santodomingo. 2002. Manual de identificación CITES de Invertebrados Marinos de Colombia. Serie de Documentos generales/INVEMAR No. 8; Serie Manuales de identificación CITES de Colombia, Medellín. 99 p. | spa |
| dc.relation.references | Reyes, J., N. Santodomingo y P. Flórez. 2010. Corales escleractinios de Colombia. Invemar Serie de Publicaciones Especiales, No. 14, Santa Marta. 246 p. | spa |
| dc.relation.references | Rivas, M. y C. Riquelme. 2012. Probiotic Biofilms. En: Rigobelo, E. (Ed.). Probiotics. IntechOpen. 656 p. | spa |
| dc.relation.references | Rodríguez-Ramírez, A., J. Garzón-Ferreira, A. Batista-Morales, D.L. Gil, D.I. Gómez-López, K. Gómez-Campo, T. López-Londoño, R. Navas-Camacho, C. Reyes-Nivia y J. Vega-Sequeda. 2010. Temporal patterns in coral reef, seagrass and mangrove communities from Chengue bay CARICOMP site (Colombia): 1993-2008. Rev. Biol. Trop., 58: 45–62. | spa |
| dc.relation.references | Roitman, S., T. López-Londoño, F. Joseph Pollock, K.B. Ritchie, C.T. Galindo-Martínez, K. Gómez-Campo, L.A. González-Guerrero, V. Pizarro, M. López-Victoria, R. Iglesias-Prieto y M. Medina. 2020. Surviving marginalized reefs: assessing the implications of the microbiome on coral physiology and survivorship. Coral Reefs, 39: 795–807. https://doi.org/10.1007/s00338-020-01951-5 | spa |
| dc.relation.references | Rosado, P.M., D.C.A. Leite, G.A.S. Duarte, R.M. Chaloub, G. Jospin, U. Nunes da Rocha, J.P. Saraiva, F. Dini-Andreote, J.A. Eisen, D.G. Bourne y R.S. Peixoto. 2019. Marine probiotics: increasing coral resistance to bleaching through microbiome manipulation. ISME J., 13(4): 921–936. https://doi.org/10.1038/s41396-018-0323-6 | spa |
| dc.relation.references | osado, P.M., P.M. Cardoso, J.G. Rosado, J. Schultz, U. Nunes da Rocha, T. Keller-Costa y R.S. Peixoto. 2023. Exploring the potential molecular mechanisms of interactions between a probiotic consortium and its coral host. Msystems 8(1): e00921-22. https://doi.org/10.1128/msystems.00921-22 | spa |
| dc.relation.references | Rosenberg, E., O. Koren, L. Reshef, R. Efrony y I. Zilber-Rosenberg. 2007. The role of microorganisms in coral health, disease and evolution. Nat. Rev. Microbiol., 5(5): 355–362. https://doi.org/10.1038/nrmicro1635 | spa |
| dc.relation.references | Ruiz-Toquica, J.S., L.A. Yañez-Dukon, C. Herrera-Khenayzir, I. Romero-Borja, A. Sanjuan-Muñoz, M. Medina y A. Franco-Herrera. 2023. Exploring the status of an urban coral and the presence of potential probiotic traits in culturable bacteria. J. mar. sci. eng., 11: 2006. https://doi.org/10.3390/jmse11102006 | spa |
| dc.relation.references | Saberi-Riseh, R., F. Fathi y M. Moradzadeh-Eskandari. 2019. The effect of some probiotic bacteria in induction of drought tolerance in cucumber plants. Adv. res. microb. metab. Technol., 2: 49–63. https://doi.org/10.22104/ARMMT.2019.861 | spa |
| dc.relation.references | Sammarco, P. 1982. Polyp bail-out: an escape response to environmental stress and a new means of reproduction in corals. Mar. Ecol. Prog. Ser., 10(1): 57–65. https://doi.org/10.3354/meps010057 | spa |
| dc.relation.references | Santoro, E.P., R.M. Borges, J.L. Espinoza, M. Freire, C.S.M.A Messias, H.D.M. Villela, L.M. Pereira, C.L.S. Vilela, J.G. Rosado, P.M. Cardoso, P.M. Rosado, J.M. Assis, G.A.S. Duarte, G. Perna, A.S. Rosado, A. Macrae, C.L. Dupont, K.E. Nelson, M.J. Sweet, C.R. Voolstra y R.S. Peixoto. 2021. Coral microbiome manipulation elicits metabolic and genetic restructuring to mitigate heat stress and evade mortality. Sci. Adv., 7(33): eabg3088. https://doi.org/10.1126/sciadv.abg3088 | spa |
| dc.relation.references | Schoepf, V., A.G. Grottoli, S.J. Levas, M.D. Aschaffenburg, J.H. Baumann, Y. Matsui y M.E. Warner. 2015. Annual coral bleaching and the long-term recovery capacity of coral. Proc. Royal Soc. B., 282(1819): 20151887. https://doi.org/10.1098/rspb.2015.1887 | spa |
| dc.relation.references | Schweinsberg, M., F. Gösser y R. Tollrian. 2021. The history, biological relevance, and potential applications for polyp bailout in corals. Ecol. Evol., 11(13): 8424-8440. https://doi.org/10.1002/ece3.7740 | spa |
| dc.relation.references | Sebends, K.P. y K. DeRiemer. 1977. Diel Cycles of Expansion and Contraction in Coral Reef Anthozoans. Mar. Biol., 43: 247–256. https://doi.org/10.1007/BF00402317 | spa |
| dc.relation.references | Shafir, S., A.J. Edwards, B. Rinkevich, L. Bongiorni, G. Levy y L. Shaish. 2010. Constructing and managing nurseries for asexual rearing of corals. 49-72. En: Edwards, A.J. (Ed.). Reef Rehabilitation Manual. Coral Reef Targeted Research & Capacity Building for Management Program, St. Lucia, Australia. 166 p. | spa |
| dc.relation.references | Sheppard, C. y R. Rioja-Nieto. 2005. Sea surface temperature 1871-2099 in 38 cells in the Caribbean region. Mar. Environ. Res., 60(3): 389–396. https://doi.org/10.1016/j.marenvres.2004.12.006 | spa |
| dc.relation.references | Shick, J. 1990. Diffusion limitation and hyperoxic enhacement of oxygen consumption in zooxanthelate sea anemones, zoanthids, and corals. Biol. Bull., 179(1): 148–158. doi: 10.2307/1541749. | spa |
| dc.relation.references | Siebeck, U.E., N.J. Marshall, A. Klüter y O. Hoegh-Guldberg. 2006. Monitoring coral bleaching using a colour reference card. Coral Reefs, 25: 453–460. https://doi.org/10.1007/s00338-006-0123-8 | spa |
| dc.relation.references | Siebeck, U.E., N.J. Marshall, A. Klüter y O. Hoegh-Guldberg. 2006. Monitoring coral bleaching using a colour reference card. Coral Reefs, 25: 453–460. https://doi.org/10.1007/s00338-006-0123-8 | spa |
| dc.relation.references | Smith, S. 2018. Complementarity in the coral holobiont: a genomic analysis of bacterial isolates of Orbicella faveolata and Symbiodinium spp. Maestría en Ciencias. The Pennsylania State University, University Park, PA. 42 p. | spa |
| dc.relation.references | Spalding, M.D. y B.E. Brown. 2015. Warm-water coral reefs and climate change. Science, 350(6262): 769–771. https://doi.org/10.1126/science.aad0349 | spa |
| dc.relation.references | Spalding, M.D. y B.E. Brown. 2015. Warm-water coral reefs and climate change. Science, 350(6262): 769–771. https://doi.org/10.1126/science.aad0349 | spa |
| dc.relation.references | Tošić, M. y R. Navas-Camacho. 2012. Long-term monitoring of temperature in coral reef waters of the Colombian Caribbean. Guayaquil, Ecuador. | spa |
| dc.relation.references | Van Oppen, M.J. y J.M. Lough. 2009. Coral Bleaching: Patterns, Processes, Causes and Consequences. Springer, Queensland. 178 p. | spa |
| dc.relation.references | Van Woesik, R. y C. Kratochwill. 2022. A global coral-bleaching database, 1980–2020. Sci. Data, 9(1): 20. https://doi.org/10.1038/s41597-022-01121-y | spa |
| dc.relation.references | Van Woesik, R. y C. Kratochwill. 2022. A global coral-bleaching database, 1980–2020. Sci. Data, 9(1): 20. https://doi.org/10.1038/s41597-022-01121-y | spa |
| dc.relation.references | Webster, N.S. y T.B.H Reusch. 2017. Microbial contributions to the persistence of coral reefs. ISME J., 11(10): 2167–2174. https://doi.org/10.1038/ismej.2017.66 | spa |
| dc.relation.references | Young, C.N., S.A. Schopmeyer y D. Lirman. 2012. A review of reef restoration and Coral propagation using the threatened genus Acropora in the Caribbean and western Atlantic. Bull. Mar. Sci., 88(4): 1075–1098. https://doi.org/10.5343/bms.2011.1143 | spa |
| dc.relation.references | Young, C.N., S.A. Schopmeyer y D. Lirman. 2012. A review of reef restoration and Coral propagation using the threatened genus Acropora in the Caribbean and western Atlantic. Bull. Mar. Sci., 88(4): 1075–1098. https://doi.org/10.5343/bms.2011.1143 | spa |
| dc.relation.references | Zanini, K., M. Marzotto, A. Castellazzi, A. Borsari, F. Dellaglio y S. Torriani. 2007. The effects of fermented milks with simple and complex probiotic mixtures on the intestinal microbiota and immune response of healthy adults and children. Int. Dairy J., 17(11): 1332–1343. https://doi.org/10.1016/j.idairyj.2007.01.017 | spa |
| dc.relation.references | Zar, J.H. 2010. Biostatistical análisis. 5ta edición. Prentice Hall Inc, Upper Saddle River, NJ, 944 p. | spa |
| dc.relation.references | Zhang, Y., Q. Yang, J. Ling, L. Long, H. Huang, J. Yin, M. Wu, X. Tang, X. Lin, Y. Zhang y J. Dong. 2021. Shifting the microbiome of a coral holobiont and improving host physiology by inoculation with a potentially beneficial bacterial consortium. BMC Microbiol., 21(1): 130. https://doi.org/10.1186/s12866-021-02167-5 | spa |
| dc.relation.references | Ziegler, M., C.G.B. Grupstra, M.M. Barreto, M. Eaton, J. BaOmar, K. Zubier, A. Al-Sofyani, A.J. Turki, R. Ormond y C.R. Voolstra. 2019. Coral bacterial community structure responds to environmental change in a host-specific manner. Nat. Commun., 10(1): 3092. https://doi.org/10.1038/s41467-019-10969-5 | spa |
| dc.subject | Respuesta fisiológica | spa |
| dc.subject | Probióticos para corales | spa |
| dc.subject | Estrés por calor | spa |
| dc.subject | Madracis auretenra | spa |
| dc.subject | Porites spp. | spa |
| dc.subject.keyword | Physiological response | spa |
| dc.subject.keyword | Probiotics for corals | spa |
| dc.subject.keyword | Heat stress | spa |
| dc.subject.keyword | Madracis auretenra | spa |
| dc.subject.keyword | Porites spp. | spa |
| dc.subject.lemb | Corales | |
| dc.subject.lemb | Estrés térmico en ecosistemas marinos | |
| dc.subject.lemb | Conservación de arrecifes de coral | |
| dc.title | Respuesta fisiológica de corales susceptibles al estrés con la aplicación de bacterias probióticas | spa |
| dc.type.coar | http://purl.org/coar/resource_type/c_7a1f | spa |
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