Collecting device for zooplankton associated with mesophotic coral ecosystems

Authors

DOI:

https://doi.org/10.25268/bimc.invemar.2020.49.SuplEsp.1043

Keywords:

mesophotic reefs, collection device, zooplankton

Abstract

Mesophotic coral ecosystems (MCEs) host unique communities that have not been sufficiently studied due to the high cost of available technologies. These reefs can be found between 30 and 150 m deep, where the amount of incident light is < 10 % of that reaching the surface. The zooxanthellae associated with these reefs have a reduced photosynthetic rate due to the low availability of light, therefore, zooplankton becomes the main food source for the coral colonies. To study the composition of zooplankton communities associated to these ecosystems, a device that allowed the collection of zooplankton present on the Bajo Fríjol reef scaffold
was designed and tested in the Corales de Profundidad National Natural Park. The device consisted of a weighted hose that reached the
desired depth, connected to the collecting device, by means of which the water was filtered using a suction pump. The amount of filtered water, the species collected, and their abundance allowed to conclude that the device is a useful, versatile and economic tool for the characterization and monitoring of the zooplanktonic community in the Corales de Profundidad Park, so it could be extended to other shallow and mesophotic coral ecosystems.

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References

Baéz-Polo, A. 2013. Manual de métodos de ecosistemas marinos y costeros con miras a establecer impactos ambientales. Convenio para establecer el fortalecimiento de los métodos de investigación marina para actividades costa afuera por parte del sector de hidrocarburos. Invemar/ANH, Santa Marta. 212 p.

Bautista-Hernández, C.E., S. Monks y G. Pulido-Flores. 2013. Los parásitos y el estudio de su diversidad: un enfoque sobre los estimadores de la riqueza de especies. En: Pulido-Flores, G y S. Monks (Eds). 2013. Estudios científicos del estado de Hidalgo y zonas aledañas, II. Zea Books, Lincoln. 146 p.

Bessell-Browne, P., M. Stat., D. Thomson, and P. Clode. 2014. Coscinaraea marshae corals that have survived prolonged bleaching exhibit signs of increased heterotrophic feeding. Coral Reefs, 33(3): 795-804.

Boltovskoy, D. 1981. Atlas del zooplancton del Atlántico sudoccidental y métodos de trabajo con el zooplancton marino. Inidep, Mar del Plata. 929 p.

Enrichetti, F., M. Bo, C. Morri, M. Montefalcone, M. Toma, G. Bavestrello, L. Tunesi, S. Canese, M. Giusti, E. Salvati, R. Bertolotto, and C. Biachi. 2019. Assessing the environmental status of temperate mesophotic reefs: a new integrated methodological approach. Ecol. Indic., 102: 218-229.

Jacobs, F and C. Grant. 1978. Guidelines for zooplankton sampling in quantitative baseline and monitoring programs. VA Inst. Mar. Sci., Corvallis. 61 p.

Kahng, S., J. Copus, and D. Wagner. 2014. Recent advances in the ecology of mesophotic coral ecosystems (MCEs). Curr. Opin. Env. Sust., 7: 72-81.

Lalli, C. and R. Parsons. 1997. Biological oceanography: an introduction. 2nd ed. Elsevier, Oxford. 315 p.

Laverick, J., D. Andradi-Brown, and A. Rogers. 2017. Using light-dependent scleractinia to define the upper boundary of mesophotic coral ecosystems on the reefs of Utila, Honduras. PLoS ONE, 12(8): e0183075.

Lesser, M., M. Slattery, and J. Leichter. 2009. Ecology of mesophotic coral reefs. J. Exp. Mar. Biol. Ecol., 375: 1-8.

Magurran, A.E. 2004. Measuring biological diversity. Blackwell Science, Oxford. 261 p.

Moreno, C.E. 2001. Métodos para medir la biodiversidad. Manuales y Tesis SEA. Zaragoza. 84 p.

Nir, O., D. Gruber, E. Shemesh, E. Glasser, and D. Tchernov. 2014. Seasonal mesophotic coral bleaching of Stylophora pistillatain the Northern Red Sea. PLoS One, 9(1): e84968.

Sameoto, D., P. Wiebe, J. Runge, L. Postel, J. Dunn, C. Miller, and S. Coombs. 2000. Chapter 3: collecting zooplankton. 55-81. In: Harris, R., P. Wiebe, J. Lenz, H. Skjoldal, and M. Huntleu. (Eds). ICES Zooplankton Methodology Manual. Elsevier, London. 684 p.

Scott, A. and J. Pawlik, 2019. A review of the sponge increase hypothesis for Caribbean mesophotic reefs. Mar. Biodivers., 49: 1073-1083.

Slattery, M. and M. Lesser, 2012. Mesophotic coral reefs: a global model of community structure and function. Proc. 12th Internat. Coral Reef Symp., Cairns, Australia.

Villareal, H., M. Álvarez, S. Córdoba, F. Escobar, G. Fagua, F. Gast, H. Mendoza, M. Ospina y A.M. Umaña. 2004. Manual de métodos para el desarrollo de inventarios de biodiversidad. Programa de inventarios de biodiversidad. Inst. Invest. Rec. Biol. Alexander von Humboldt, Bogotá. 236 p.

Published

2020-12-19

How to Cite

1.
Contreras Vega L, Henao-Castro A, Navas S. GR, Criales Hernandez MI, Marrugo Pascuales M. Collecting device for zooplankton associated with mesophotic coral ecosystems. Bol. Investig. Mar. Costeras [Internet]. 2020 Dec. 19 [cited 2024 May 19];49(SuplEsp):243-50. Available from: http://boletin.invemar.org.co:8085/ojs/index.php/boletin/article/view/1043
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