Identification of Phytoplankton Blooms under the Index of Inherent Optical Properties (IOP Index) †
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Collection of Samples
2.3. Absorption Coefficients Determination
2.4. IOP Index Determination
2.5. Phytoplankton Characterization
3. Results and Discussion
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
- Gower, J.; King, S.; Borstad, G.; Brown, L. Detection of intense plankton blooms using the 709 nm band of the MERIS imaging spectrometer. Int. J. Remote Sens. 2005, 26, 2005–2012. [Google Scholar] [CrossRef]
- Carstensen, J.; Conley, D. Frequency, composition, and causes of summer phytoplankton blooms in a shallow coastal ecosystem, the Kattegat. Limnol. Oceanogr. 2004, 49, 191–201. [Google Scholar] [CrossRef]
- Legendre, L. The significance of microalgal blooms for fisheries and for the export of particulate organic carbón in oceans. J. Plankton Res. 1990, 12, 681–699. [Google Scholar] [CrossRef]
- Ji, R.; Edwards, M.; Mackas, D.; Runge, J.; Thomas, A. Marine plankton phenology and life history in a changing climate: Current research and future directions. J. Plankton Res. 2010, 32, 1355–1368. [Google Scholar] [CrossRef]
- Richardson, K. Harmful or exceptional phytoplankton blooms in the marine ecosystem. Adv. Mar. Biol. 1997, 31, 301–385. [Google Scholar]
- Smayda, T.J. What is a bloom? A commentary. Limnol. Oceanogr. 1997, 42, 1132–1136. [Google Scholar] [CrossRef]
- Brody, S.R.; Lozier, M.S.; Dunne, J.P. A comparison of methods to determine phytoplankton Bloom initiation. J. Geophys. Res. Oceans 2013, 118, 2345–2357. [Google Scholar] [CrossRef]
- Platt, T.; Fuentes-Yaco, C.; Frank, K.T. Spring algal Bloom and larval fish survival. Nature 2007, 423, 398–399. [Google Scholar] [CrossRef] [PubMed]
- Schneider, B.; Kaitala, S.; Maunula, P. Identification and quantification of plankton bloom events in the Baltic Sea by continuous pCO2 and chlorophyll a measurements on a cargo ship. J. Mar. Syst. 2006, 59, 238–248. [Google Scholar] [CrossRef]
- Gittings, J.A.; Raitsos, D.E.; Racault, M.F.; Brewin, R.J.; Pradhan, Y.; Sathyendranath, S.; Platt, T. Seasonal phytoplankton blooms in the Gulf of Aden revealed by remote sensing. Remote Sens. Environ. 2017, 189, 56–66. [Google Scholar] [CrossRef]
- Huppert, A.; Blasius, B.; Stone, L. A Model of Phytoplankton Blooms. Am. Nat. 2002, 159, 156–171. [Google Scholar] [CrossRef] [PubMed]
- Fleming, V.; Seppo Kaitala, S. Phytoplankton spring bloom intensity index for the Baltic Sea estimated for the years 1992 to 2004. Hydrobiologia 2006, 554, 57–65. [Google Scholar] [CrossRef]
- Carstensen, J.; Henriksen, P.; Heiskanen, A.-S. Summer algal blooms in shallow estuaries: Definition, mechanisms, and link to eutrophication. Limnol. Oceanogr. 2007, 52, 370–384. [Google Scholar] [CrossRef]
- Cetinic, I.; Perry, M.J.; D’Asaro, E.; Briggs, N.; Poulton, N.; Sieracki, M.E.; Lee, C.M. A simple optical index shows spatial and temporal heterogeneity in phytoplankton community composition during the 2008 North Atlantic Bloom Experiment. Biogeosciences 2015, 12, 2179–2194. [Google Scholar] [CrossRef]
- Alikas, K.; Kangro, K.; Reinart, A. Detecting cyanobacterial blooms in large North European lakes using the Maximum Chlorophyll Index. Oceanologia 2010, 52, 237–257. [Google Scholar] [CrossRef]
- Platt, T.; Sathyendranath, S.; White, G.; Fuentes-Yaco, C.; Zhai, L.; Devred, E.; Tang, C. Diagnostic properties of phytoplankton time series from remote sensing. Estuaries Coasts 2009, 33, 428–439. [Google Scholar] [CrossRef]
- Kirk, J.T.O. Light and Photosynthesis in Aquatic Ecosystems, 3rd ed.; Cambridge University Press: Cambridge, UK, 2011. [Google Scholar]
- Morel, A. Meeting the Challenge of Monitoring Chlorophyll in the Ocean from Outer Space. In Chlorophylls and Bacteriochlorophylls: Biochemistry, Biophysics, Functions and Applications; Grimm, B., Porra, R., Rüdiger, W., Scheer, H., Eds.; Springer: Dordrecht, The Netherlands, 2006; Volume 25, pp. 521–534. [Google Scholar]
- Santamaría-del-Angel, E.; Soto, I.; Millán-Nuñez, R.; González-Silvera, A.; Wolny, J.; Cerdeira-Estrada, S.; Cajal-Medrano, R.; Muller-Karger, F.; Cannizzaro, J.; Padilla-Rosas, Y.; et al. Experiences and Recommendations for Environmental Monitoring Programs. In Environmental Science, Engineering and Technology; Sebastia-Frasquet, M.-T., Ed.; Nova Science Publishers: Hauppauge, NY, USA, 2015; p. 32. [Google Scholar]
- IOCCG. Remote Sensing of Ocean Colour in Coastal, and Other Optically-Complex, Waters; Sathyendranath, S., Ed.; Reports of the International Ocean-Colour Coordinating Group: Dartmouth, NS, Canada, 2000. [Google Scholar]
- Hernández-Terrones, L.; Rebolledo-Vieyra, M.; Merrino-Ibarra, M.; Soto, M.; LeCossee, A.; Monroy-Rios, E. Groundwater pollution in karstic region (NE Yucatán): Baseline nutrient content and flux to coastal ecosystems. Water Air Soil Pollut. 2011, 218, 517–528. [Google Scholar] [CrossRef]
- Moore, Y.H.; Stoessell, R.K.; Easley, D.H. Fresh-Water/Sea-Water Relationship within a Ground-Water Flow System, Northeastern Coast of the Yucatan Peninsula. Ground Water 1992, 30, 343–350. [Google Scholar] [CrossRef]
- Hernández-Terrones, L.M.; Null, K.A.; Ortega-Camacho, D.; Paytan, A. Water quality assessment in the Mexican Caribbean: Impacts on the coastal ecosystem. Cont. Shelf Res. 2015, 102, 62–72. [Google Scholar] [CrossRef]
- Beddows, P.A.; Smart, P.L.; Whitaker, F.F.; Smith, S.L. Decoupled fresh-saline groundwater circulation of a coastal carbonate aquifer: Spatial patterns of temperature and specific electrical conductivity. J. Hydrol. 2007, 346, 18–32. [Google Scholar] [CrossRef]
- Herrera-Silveira, J.A.; Morales-Ojeda, S.M. Subtropical Karstic Coastal Lagoon Assessment, Southeast Mexico. The Yucatan Peninsula Case. In Coastal Lagoons: Critical Habitats of Environmental Change; CRC Press: Boca Raton, FL, USA, 2010; p. 26. [Google Scholar]
- Sánchez, F.J.; Gámez, D.; Guevara, G.; Shirasago, G.; Obeso, M. Análisis de la circulación superficial de mesoescala en la bahía de campeche mediante sensores activos y pasivos. Available online: http://www.ugm.org.mx/publicaciones/geos/pdf/geos10-1/sesiones_especiales/SE17.pdf (accessed on 21 January 2018).
- Monreal-Gómez, M.A.; Salas de León, D.A. Simulación de la circulación en la Bahía de Campeche. Geofís. Int. 1990, 29, 101–111. [Google Scholar] [CrossRef]
- Merrell, W., Jr.; Morrison, J. On the circulation of the western Gulf of Mexico with observations from April 1978. J. Geophys. Res. 1981, 86, 4181–4185. [Google Scholar] [CrossRef]
- Cochrane, J.D. Investigations of the Yucatan Current; the region of cold surface water. In Oceanography and Meteorology of the Gulf of Mexico; McLellan, H.J., Ed.; Annual Report; Texas A&M University: College Station, TX, USA, 1961; pp. 5–6. [Google Scholar]
- Carriquiry, J.D.; Sanchez, A. Sedimentation in the Colorado River delta and Upper Gulf of California after nearly a century of discharge loss. Mar. Geol. 1999, 158, 125–145. [Google Scholar] [CrossRef]
- Brusca, R.C.; Álvarez-Borrego, S.; Hastings, P.A.; Findley, L.T. Colorado River flow and biological productivity in the Northern Gulf of California, Mexico. Earth Sci. Rev. 2017, 164, 1–30. [Google Scholar] [CrossRef]
- Santamaría-del Ángel, E.; Millán-Núñez, R.; De la Peña, G. Efecto de la turbidez en la productividad primaria en dos estaciones en el Área del Delta del Río Colorado. Cienc. Mar. 1996, 22, 483–493. [Google Scholar]
- Daessle, L.W.; Orozco, A.; Struck, U.; Camacho-Ibar, V.F.; van Geldern, R.; Santamaría-del-Ángel, E.; Barth, J.A.C. Sources and sinks of nutrients and organic carbon during the 2014 pulse flow of the Colorado River into Mexico. Ecol. Eng. 2017, 106, 799–808. [Google Scholar] [CrossRef]
- Orozco-Durán, A.; Daesslé, L.W.; Camacho-Ibar, V.F.; Ortiz-Campos, E.; Barth, J.A.C. Turnover and release of P-, N-, Si-nutrients in the Mexicali Valley (Mexico): Interactions between the lower Colorado River and adjacent ground-and surface water systems. Sci. Total Environ. 2015, 512–513, 185–193. [Google Scholar] [CrossRef] [PubMed]
- Cepeda-Morales, J.; Durazo, R.; Millán-Nuñez, E.; De la Cruz-Orozco, M.; Sosa-Ávalos, R.; Espinosa-Carreón, T.L.; Soto-Mardones, L.; Gaxiola-Castro, G. Response of primary producers to the hydrographic variability in the southern region of the California Current System. Cienc. Mar. 2017, 43, 123–135. [Google Scholar] [CrossRef]
- Delgadillo-Hinojosa, F.; Camacho-Ibar, V.; Huerta-Díaz, M.A.; Torres-Delgado, V.; Pérez-Brunius, P.; Lares, L.; Castro, R. Seasonal behavior of dissolved cadmium and Cd/PO 4 ratio in Todos Santos Bay: A retention site of upwelled waters in the Baja California peninsula, Mexico. Mar. Chem. 2015, 168, 37–48. [Google Scholar] [CrossRef]
- Durazo, R.; Gaxiola-Castro, G.; Lavaniegos, B.; Castro-Valdez, R.; Gómez-Valdés, J.; Da, S.; Mascarenhas, A., Jr. Oceanographic conditions west of the Baja California coast, 2002–2003: A weak El Niño and subarctic water enhancement. Cienc. Mar. 2005, 31, 537–552. [Google Scholar] [CrossRef]
- Linacre, L.; Durazo, R.; Hernández-Ayón, J.M.; Delgadillo-Hinojosa, F.; Cervantes-Díaz, G.; Lara-Lara, J.R.; Camacho-Ibar, V.; Siqueiros-Valencia, A.; Bazán-Guzmán, C. Temporal variability of the physical and chemical water characteristics at a coastal monitoring observatory: Station Ensenada. Cont. Shelf Res. 2010, 30, 1730–1742. [Google Scholar] [CrossRef]
- Espinosa-Carreón, T.L.; Gaxiola-Castro, G.; Durazo, R.; De la Cruz-Orozco, M.E.; Norzagaray-Campos, M.; Solana-Arellano, E. Influence of anomalous subarctic water intrusion on phytoplankton production off Baja California. Cont. Shelf Res. 2015, 92, 108–121. [Google Scholar] [CrossRef]
- Millán-Núñez, E.; Macias-Carballo, M. Phytogeography associated at spectral absorption shapes in the southern region of the California current. CAlCOFI 2014, 55, 183–196. [Google Scholar]
- Gutierrez-Mejia, E.; Lares, M.L.; Huerta-Diaz, M.A.; Delgadillo-Hinojosa, F. Cadmium and phosphate variability during algal blooms of the dinoflagellate Lingulodinium polyedrum in Todos Santos Bay, Baja California, Mexico. Sci. Total Environ. 2016, 541, 865–876. [Google Scholar] [CrossRef]
- Mitchell, B.G.; Kahru, M.; Wieland, J.; Stramska, M. Determination of spectral absorption coefficients of particles, dissolved material and phytoplankton for discrete water samples. In Ocean Optics Protocols for Satellite Ocean Color Sensor Validation; NASA, Mueller, J.L., Fargion, G.S., Eds.; Flight Space Center: Greenbelt, MD, USA, 2002; Revision 3; Volume 3, pp. 231–257. [Google Scholar]
- Santamaría-del-Angel, E.; Millán-Núñez, R.; González-Silvera, A.; Callejas-Jiménez, M.; Cajal-Medrano, R.; Galindo-Bect, M. The response of shrimp fisheries to climate variability off Baja California, México. ICES J. Mar. Sci. 2011, 68, 766–772. [Google Scholar] [CrossRef]
- Stuart, V.; Sathyendranath, S.; Platt, T.; Maass, H.; Irwin, B.D. Pigments and species composition of natural phytoplankton populations: Effect on the absorption spectra. J. Plankton Res. 1998, 20, 187–217. [Google Scholar] [CrossRef]
- Lohrenz, S.E.; Weidemann, A.D.; Tuel, M. Phytoplankton spectral absorption as influenced by community size structure and pigment composition. J. Plankton Res. 2003, 25, 35–61. [Google Scholar] [CrossRef]
- Wu, J.; Hong, H.; Shang, S.; Dai, M.; Lee, Z. Variation of phytoplankton absorption coefficients in the northern South China Sea during spring and autumn. Biogeosci. Discuss. 2007, 4, 1555–1584. [Google Scholar]
- Millán-Nuñez, E.; Millán-Nuñez, R. Specific Absorption Coefficient and Phytoplankton Community Structure in the Southern Region of the California Current during January 2002. J. Oceanogr. 2010, 66, 719–730. [Google Scholar] [CrossRef]
- Utermöhl, H. Zur velvollkommung der quantitative phytoplankton-Methodik. Mitt. Int. Ver. Theor. Angew. Limnol. 1958, 9, 1–38. [Google Scholar]
- Haywood, A.J.; Steidinger, K.A.; Truby, E.W.; Bergquist, P.R.; Bergquist, P.L.; Adamson, J.; MacKenzie, L. Comparative morphology and molecular phylogenetic analysis of three new species of the genus Karenia (Dinophyceae) from New Zealand. J. Phycol. 2004, 40, 165–179. [Google Scholar] [CrossRef]
- Steidinger, K.A.; Wolny, J.L.; Haywood, A.J. Identification of Kareniaceae (Dinophyceae) in the Gulf of Mexico. Nova Hedwig. 2008, 133, 269–284. [Google Scholar]
- Gárate-Lizárraga, I.; Okolodkov, Y.; Cortés-Altamirano, R. Microalgas formadoras de florecimientos algales en el Golfo de California. In Florecimientos Algales Nocivos en México; García-Mendoza, E., Quijano-Scheggia, S.I., Olivos-Ortiz, A., Núñez-Vázquez, E.J., Eds.; CICESE: Ensenada, México, 2016; pp. 130–145. [Google Scholar]
- Quijano, S.I.; Barajas, M.; Chang, H.; Bates, S. The inhibitory effect of a non-yessotoxin-producing dinoflagellate, Lingulodinium polyedrum (Stein) Dodge, towards Vibrio vulnificus and Staphylococcus aureus. Rev. Biol. Trop. 2016, 64, 805–816. [Google Scholar] [CrossRef] [PubMed]
- Holm-Hansen, O.; Riemann, B. Chlorophyll a Determination: Improvements in Methodology. Oikos 1978, 30, 438–447. [Google Scholar] [CrossRef]
- Herrera-Silveira, J.A. Ecología de Los Productores Primarios en la Laguna de Celestún, México. Patrones de Variación Espacial y Temporal. Ph.D. Thesis, Universitat de Barcelona, Barcelona, Spain, 1993. [Google Scholar]
- Mendoza, M.; Ortiz-Pérez, M.A. Caracterización geomorfológica del talud y la plataforma continentales de Campeche-Yucatán, México. Investig. Geogr. 2000, 43, 7–31. [Google Scholar]
- Aguilar-Trujillo, A.C.; Okolodkov, Y.B.; Herrera-Silveira, J.A.; Merino-Virgilio, F.D.C.; Galicia-García, C. Taxocoenosis of epibenthic dinoflagellates in the coastal waters of the northern Yucatan Peninsula before and after the harmful algal bloom event in 2011–2012. Mar. Pollut. Bull. 2017, 119, 396–406. [Google Scholar] [CrossRef] [PubMed]
- Peña Manjarrez, J.; Gaxiola-Castro, G.; Helenes-Escamilla, J. Environmental factors influencing the variability of Lingulodinium polyedrum and Scrippsiella trochoidea (Dinophyceae) cyst production. Cienc. Mar. 2009, 35, 1–14. [Google Scholar] [CrossRef]
- Ruiz-de la Torre, M.C.; Maske, H.; Ochoa, J.; Almeda-Jauregui, C.O. Maintenance of Coastal Surface Blooms by Surface Temperature Stratification and Wind Drift. PLoS ONE 2013, 8, e58958. [Google Scholar] [CrossRef]
Blooms | # Samples | Samples in Active Bloom | Dominant Phytoplakton Species | Dominant Population Size | Proportion of IOP at the Station with Bloom (%) | |||
---|---|---|---|---|---|---|---|---|
1 | Dzilam | 9 | 1 | Rhizosolenia hebetata | Microphytoplankton | 39 | 10 | 51 |
2 | Holbox | 6 | 1 | Scrippsiella sp; Chaetoceros sp; Rhizosolenia hebetata | Mixed community | 67 | 16 | 17 |
3 | Campeche | 19 | 4 | Karenia brevis | Microphytoplankton | 51 | 5 | 44 |
4 | UGC | 23 | 1 | Planktoniella sol | Picophytoplankton | 73 | 20 | 7 |
5 | TSB | 7 | 1 | Lingulodinium polyedrum | Microphytoplankton | 93 | 1 | 6 |
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Aguilar-Maldonado, J.A.; Santamaría-del-Ángel, E.; González-Silvera, A.G.; Cervantes-Rosas, O.D.; López, L.M.; Gutiérrez-Magness, A.; Sebastiá-Frasquet, M.-T. Identification of Phytoplankton Blooms under the Index of Inherent Optical Properties (IOP Index). Proceedings 2018, 2, 187. https://doi.org/10.3390/ecws-2-04956
Aguilar-Maldonado JA, Santamaría-del-Ángel E, González-Silvera AG, Cervantes-Rosas OD, López LM, Gutiérrez-Magness A, Sebastiá-Frasquet M-T. Identification of Phytoplankton Blooms under the Index of Inherent Optical Properties (IOP Index). Proceedings. 2018; 2(5):187. https://doi.org/10.3390/ecws-2-04956
Chicago/Turabian StyleAguilar-Maldonado, Jesús A., Eduardo Santamaría-del-Ángel, Adriana G. González-Silvera, Omar D. Cervantes-Rosas, Lus M. López, Angélica Gutiérrez-Magness, and María-Teresa Sebastiá-Frasquet. 2018. "Identification of Phytoplankton Blooms under the Index of Inherent Optical Properties (IOP Index)" Proceedings 2, no. 5: 187. https://doi.org/10.3390/ecws-2-04956
APA StyleAguilar-Maldonado, J. A., Santamaría-del-Ángel, E., González-Silvera, A. G., Cervantes-Rosas, O. D., López, L. M., Gutiérrez-Magness, A., & Sebastiá-Frasquet, M. -T. (2018). Identification of Phytoplankton Blooms under the Index of Inherent Optical Properties (IOP Index). Proceedings, 2(5), 187. https://doi.org/10.3390/ecws-2-04956