Publicado

2022-02-23

Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil

INFLUENCIA DEL USO Y OCUPACIÓN DE SUELO EN LA CALIDAD DEL AGUA Y EN LA COMUNIDAD DE DIATOMEAS DE EMBALSES EN EL NORESTE DE BRASIL

DOI:

https://doi.org/10.15446/abc.v27n2.89391

Palabras clave:

Bacillariophyta, eutrophication, geographic information system, semi-arid zone (en)
Bacillariophyta, eutrofización, sistema de información geográfica, zona semiarida (es)

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Autores/as

  • Kelly Dayane Pereira da Silva Universidad Federal de Paraiba
  • João Paulo de Oliveira Santos Universidad Federal de Paraiba
  • Maria Cristina Santos Pereira Universidad Federal de Paraiba
  • Célia Cristina Clemente Machado Universidad del Estado da Paraíba
  • Luciana Gomes Barbosa Universidad Federal de Paraiba

Historically, the reduction in water quality has been associated with changes in land use, especially changes in urbanization and expansion of agricultural frontiers. The objective of this study was to understand the characteristics of the diatomological community and the use and occupation of the soil around three reservoirs (Arara, Rio do Canto and Araçagi) and natural lagoon (Lagoa do Paó) (Northeast Brazil). Land use was determined using high spatial resolution satellite images. Abiotic variables of water and total phosphorus, organic matter and diatoms in surface sediments were analyzed. Abiotic variables and assemblages of diatoms were analyzed using Principal Component Analysis (PCA). Four types of land use have been identified, associated with anthropogenic change and intensive use of the landscape. The PCA separated the reservoirs by trophic status based on the total phosphorus in the water. 24 taxa of diatoms distributed in 12 genera and 10 families were identified in the sediment. Our results indicate the occurrence of planktonic, epiphytic and benthic diatoms adapted to different trophic gradients

Históricamente, la reducción de la calidad del agua se ha asociado con cambios en el uso del suelo, especialmente cambios en la urbanización y expansión de las fronteras agrícolas. El objetivo de este estudio fue conocer las características de la comunidad diatomológica y el uso y ocupación del suelo alrededor de tres embalses (Arara, Rio do Canto y Araçagi) y en una laguna natural (Lagoa do Paó) (Nordeste de Brasil). El uso de la tierra se determinó mediante imágenes de satélite de alta resolución espacial. Se analizaron variables abióticas de agua y fósforo total, materia orgánica y diatomeas en sedimentos superficiales. Las variables abióticas y los ensamblajes de diatomeas se analizaron mediante el análisis de componentes principales (PCA). Se han identificado cuatro tipos de uso del suelo, asociados al cambio antropogénico y al uso intensivo del paisaje. El PCA separó los reservorios por estado trófico basado en el fósforo total en el agua. En el sedimento se identificaron 24 taxones de diatomeas distribuidos en 12 géneros y 10 familias. Nuestros resultados indican la ocurrencia de diatomeas planctónicas, epífitas y bentónicas adaptadas a diferentes gradientes tróficos

Referencias

AESA (2006). Relatório das atividades desenvolvidas. João Pessoa (pp.01-28). http://www.aesa.pb.gov.br/aesa website/wpcontent/uploads/2016/11/relatorioAtividades_2006.pdf

Alexander, TJ., Vonlanthen, P., e Seehausen, O. (2017). Does eutrophication-driven evolution change aquatic ecosystems? Philosophical Transactions of the Royal Society B, 372, 1-10. http://dx.doi.org/10.1098/rstb.2016.0041

Andersen, JM. (1976). In ignition method for determination of total phosphorus in lake sediments. Water Research, 10(4), 329-331. https://doi.org/10.1016/0043-1354(76)90175-5

Andrade, J. A., and Nunes, M. A. (2017). Acesso à água no Semiárido Brasileiro: uma análise das políticas públicas implementadas na região. Revista Espinhaço, 3(2), 28-39. http://www.revistaespinhaco.com/index.php/journal/article/view/60

American Public Health Association (APHA). (1998). Standard methods for the examination of water and wastewater (pp. 824). (19 Ed.). APHA.

Azare, IM., Abdullahi, MS., Adebayo, AA., Dantata, I. J., e Duala, T. (2020). Deforestation, desert encroachment, climate change and agricultural production in the Sudano-Sahelian Region of Nigeria. Journal of Applied Sciences and Environmental Management, 24(1), 127-132. https://doi.org/10.4314/jasem.v24i1.18

Ballah, M., Bhoyroo, V., y Neetoo, H. (2019). Assessment of the physico-chemical quality and extent of algal proliferation in water from an impounding reservoir prone to eutrophication. Journal of Ecology and Environment 43(5). https://doi.org/10.1186/s41610-018-0094-z

Barros, MUG., Wilson, AE., Leitão, JIR., Pereira, SP., Buley, RP., Fernandez-Figueroa, EG., e Capelo-Neto, J. (2019). Environmental factors associated with toxic cyanobacterial blooms across 20 drinking water reservoirs in a semi-arid region of Brazil. Harmful Algae, 86, 128-137. https://doi.org/10.1016/j.hal.2019.05.006

Bartozek, ECR., Zorzal-Almeida, S., y Bicudo, D. C. (2018). Surface sediment and phytoplankton diatoms across a trophic gradient in tropical reservoirs: new records for Brazil and São Paulo State. Hoehnea, 45(1). https://doi.org/10.1590/2236-8906-51/2017

Bartozek, ECR., Da Silva-Lehmkuhl, AM., Gregory-Eaves, I., y Bicudo, D. C. (2019). Environmental and spatial drivers of diatom assemblages in the water column and surface sediment of tropical reservoirs. Journal of Paleolimnology, 62, 245–257. https://doi.org/10.1007/s10933-019-00083-3

Batista, B. D., y Fonseca, B. M. (2018). Fitoplâncton da região central do Lago Paranoá (DF): uma abordagem ecológica e sanitária. Engenharia Sanitaria e Ambiental, 23(2), 229-241. https://doi.org/10.1590/S1413-41522018169124

Battarbee, RW. (1986). Diatom analysis. EnB. E. Berglund, (Ed). Handbook of Holocene palaeoecology and palaeohydrology (pp. 527-570). John Wiley and Sons.

Battarbee, RW., Jones, V., Flower, R.J., Cameron, N., Bennion, H., Carvalho, L., y Juggins, S. (2001). Diatoms. EnJ. P. Smol, H. J. B. Birks, y W. M. Last, (Eds.). Tracking Environmental Change Using Lake Sediments (pp.155-203). Kluwer Academic Publishers. https://doi.org/10.1007/0-306-47668-1_8

Bicudo, D. C. (1990). Considerações sobre metodologias de contagem de algas do perifíton. Acta Limnologica Brasiliensia, 3, 459-475.

Carlson, REA (1977). A trophic state index for lakes. Limnology and Oceanography, 22(2), 361-369. https://doi.org/10.4319/lo.1977.22.2.0361

Cole, GA. (1994). Textbook of limnology (pp. 426). Prospect Heights.

Costa, A. R. S., Amorim, C. A., Nascimento, K. J., Días, A. S., Ferreira, R. J., y Lacerda, S. R. (2015). Caracterização da comunidade de microalgas perifíticas em um reservatório do semiárido Cearense. Cuadernos de Cultura y Ciencia, 14(1), 1-12. http://dx.doi.org/10.14295/cad.cult.cienc.v14i1.911

Costa, LF., Wengrat, S., y Bicudo, DC. (2017). Diatoms from distinct habitats of a highly heterogeneous reservoir, Billings Complex, southeastern Brazil. Hoehnea, 44(4), 1-21. https://doi.org/10.1590/2236-8906-12/2017

Cutrim, MVJ., Ferreira, FS., Dos Santos, AKD., Cavalcanti, LF., Araujo, BO., Azevedo-Cutrim, ACG., Furtado, JA., y Oliveira, ALL. (2019). Trophic state of an urban coastal lagoon (northern Brazil), seasonal variation of the phytoplankton community and environmental variables. Estuarine, Coastal and Shelf Science, 216(5), 98-109. https://doi.org/10.1016/j.ecss.2018.08.013

Dondajewska, R., Gołdyn, R., Messyasz, B., Kowalczewska-Madura, K., y Cerbin, S. A. (2019). A shallow lake in an agricultural landscape – water quality, nutrient loads, future management. Limnological Review, 19(1), 25–35. https://doi.org/10.2478/limre-2019-0003

Dubey, D., e Dutta, V. (2020). Nutrient Enrichment in Lake Ecosystem and Its Effects on Algae and Macrophytes. EnV. Shukla, N. Kumar, (Eds). Environmental Concerns and Sustainable Development (pp. 81-126). Springer. https://doi.org/10.1007/978-981-13-6358-0_5

Faustino, SB., Fontana, L., Bartozek, ECR., Bicudo, CEM., e Bicudo, DC. (2016). Composition and distribution of diatom assemblages from core and surface sediments of a water supply reservoir in Southeastern Brazil. Biota Neotropica, 16(2), 1-23. https://doi.org/10.1590/1676-0611-BN-2015-0129

Felix, TR., Oliveira Neto, TS., Nascimento, IN., Lucena, RB., Rodrigues, ML., Barbosa, LG., y Guerra, R. R. (2015). Eutrophication and Effects Under Fish Histology in Shallow Lake in Semiarid of Brazil. Australian Journal of Basic and Applied Sciences, 9(31), 668-673.

Flores, BM., Staal, A., Jakovac, CC., Hirota, M., Holmgren, M., y Oliveira, RS. (2019). Soil erosion as a resilience drain in disturbed tropical forests. Plant and Soil, 450, 11-25. https://doi.org/10.1007/s11104-019-04097-8

Goghe, A., e Rynearson, T. (2017). The role of intraspecific variation in the ecological and evolutionary success of diatoms in changing environments. Philosophical Transactions Royal Society B, 372(1728), 1-10. https://doi.org/10.1098/rstb.2016.0399

Hansika, RVH., e Yatigammana, SK. (2019). Distribution of diatom assemblages in the surface sediments in Sri Lankan reservoirs located in the main climatic regions and potential of using them as environmental predictors. Tropical Ecology, 60, 415–425. https://doi.org/10.1007/s42965-019-00045-w

Li, G., Wan, L., Cui, M., Wu, B., y Zhou, J. (2019). Influence of Canopy Interception and Rain fall Kinetic Energy on Soil Erosion under Forests. Forests, 10(6), 509. https://doi.org/10.3390/f10060509

Marquez, MEP., e Espino, MDLL. (2019). Phytopanktonic composition and indicative species of water quality in high artificial ponds at Mexico City. International Journal of Hydrology, 3(5), 345-349. https://doi.org/10.15406/ijh.2019.03.00198

Matteucci, SD., e Colma, A. (1982). Metodologia para el estudio de La vegetación (pp. 1-86). (Monografia). Departamento de Asuntos Científicos y Tecnológico de la Secretaría General de La Organización de los Estados Americanos.

Medeiros, G., Amaral, M. W. W., Ferreira, P. C., Ludwig, T. A. V., y Bueno, N. C. (2017). Diatomáceas bioindicadoras da qualidade da água do Ribeirão Coati Chico, Cascavel, Paraná. Geomae, 8, 136-150. http://www.fecilcam.br/revista/index.php/geomae/article/view/1740

Novo, E. M. L. M. (2008). Sensoriamento Remoto: princípios e aplicações (pp. 82). Editora Edgard Blucher.

Patrick, R., e Reimer, C. W. (1975). The diatoms of United States. Journal of the Marine Biological Association of the United Kingdom, 2, 13. https://diatoms.org/citations/patrick_rm_and_reimer_cw-1975-the_diatoms_of_the_united_states_exclusive_of

Poole, HH., e Atkins, WRG. (1929). Photo-electric measurements of submarine illumination throughout the year. Journal of the Marine Biological Association of the United Kingdom, 16(1), 297-324. https://doi.org/10.1017/S0025315400029829

R Core Team. (7 de Agosto de 2017). R: A Language and Environment for Statistical Computing. https://www.r-project.org/

Rebolledo, L., Bertrand, S., Lange, C. B., Tapia, F. J., Quiroga, E., Troch, M., Silva, N., Cárdenas, P., y Pantoja, S. (2019). Compositional and biogeochemical variations of sediments across the terrestrial-marine continuum of the Baker-Martínez fjord system (Chile, 48°S). Progress in Oceanography, 174, 89-104. https://doi.org/10.1016/j.pocean.2018.12.004

Riato, L., e Leira, M. (2020). Heterogeneity of epiphytic diatoms in shallow lakes: Implications for lake monitoring. Ecological Indicators, 111. https://doi.org/10.1016/j.ecolind.2019.105988

Round, FE., Crawford, RM., e Mann, DG. (1990). The Diatoms: biology and morphology of the genera (pp. 760). Cambrigde Universit Press.

Santos, E. C. A., Araújo, L. E., y Marcelino, A. S. (2015). Análise climática da Bacia Hidrográfica do Rio Mamanguape. Revista Brasileira de Engenharia Agrícola e Ambiental, 19(1), 9-14. https://doi.org/10.1590/1807-1929/agriambi.v19n1p9-14

Serna, Y., Correa-Metrio, A., Kenney, W. F., Curtis, J. H., Velez, M. I., Brenner, M., Hoyos, N., Restrepo, J. C., Cordeiro-Oviedo, C., Buck, D., Suarez, N., e Escobar, J. (2019). Post-colonial pollution of the Bay of Cartagena, Colombia. Journal of Paleolimnology, 63, 21–35. https://doi.org/10.1007/s10933-019-00101-4

Sharaf, N., Bresciani, M., Giardino, C., Faour, G., Slim, K., y Fadel, A. (2019). Using Landsat and in situ data to map turbidity as a proxy of cyanobacteria in a hypereutrophic Mediterranean reservoir. Ecological Informatics, 50, 197-206. https://doi.org/10.1016/j.ecoinf.2019.02.001

Sienkiewick, E., y Gasiorowski, M. (2017). The diatom-inferred pH reconstructions for a naturally neutralized pit lake in south-west Poland using the mining and the combined pH training sets. Science of The Total Environment, 605-606(15), 75-87. https://doi.org/10.1016/j.scitotenv.2017.06.171

Silva, RM., Santos, CAG., Maranhão, KUA., Silva, AM., e Lima, VRP. (2018). Geospatial assessment of eco-environmental changes in desertification area of the Brazilian semi-arid region. Earth Sciences Research Journal, 22(3), 175-186. http://dx.doi.org/10.15446/esrj.v22n3.69904

Silva, F., Silva, J., Bezerra, R., y Santos, P. (2019). Are biochemical composition parameters of sediment good tools for assessing the environmental quality of estuarine areas in tropical systems? Journal of the Marine Biological Association of the United Kingdom, 99(1), 9-18. https://doi.org/10.1017/S0025315417001795

Silva-Lehmkuhl, AM., Tremarin, PI., Vercellino, IS., e Ludwig, TAV. (2019). Periphytic diatoms from an oligotrophic lentic system, Piraquara I reservoir, Paraná state, Brazil. Biota Neotropica, 19(2), 1-25. https://doi.org/10.1590/1676-0611-BN-2018-0568

Szulc, B., y Szulc, K. (2013). The use of the Biological Diatom Index (BDI) for the assessment of water quality in the Pilica River, Poland. Oceanological and Hydrobiological Studies, 42, 188-194. https://doi.org/10.2478/s13545-013-0073-z

Tan, BC., He, H., Gu, J., y Yili, K. (2019). Effects of nutrient levels and light intensity on aquatic macrophyte (Myriophyllum aquaticum) grown in floating-bed platform. Ecological Engineering, 128, 27-32. https://doi.org/10.1016/j.ecoleng.2018.12.011

Teixeira, A. P., Brito, A. O., Souza, J. P. F., y Silva, P. F. R. S. (2018). Diatomáceas bioindicadoras da qualidade dos ambientes aquáticos: uma revisão. Natureza online, 16(2), 018-025. http://www.naturezaonline.com.br/natureza/conteudo/pdf/NOL20170602.pdf

Toledo, A. P., Talarico, M., Chinez, S. J., y Agudo, E. G. (1983). A aplicação de modelos simplificados para a avaliação de processos de eutrofização em lagos e reservatórios tropicais. En Resumos XII Congresso Brasileiro de Engenharia Sanitária. (pp. 1-34) Balneário Camboriú: Santa Catarina.

Tudesque, L., Piscina, T. K., e Chevalier M. (2019). Planktonic diatom ccommunity dynamics in a tropical flood-pulse lake: the Tonle Sap (Cambodia). Diatom Research, 34(1), 1-22. https://doi.org/10.1080/0269249X.2019.1585960

Vieira, R. M. D. S. P., Cunha. A. P. M. D. A., Alvalá.R. C. D. S., Carvalho, V. C., Neto, S. F., y Sestini, M. F. (2013). Land use and land cover map of a semiarid region of Brazil for meteorological and climatic models. Revista Brasileira de Meteorologia, 28(2), 129-138. https://doi.org/10.1590/S0102-77862013000200002

Walkley, A., y Black, IA. (1934). An examination of the Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science, 37(1), 29-38.https://journals.lww.com/soilsci/citation/1934/01000/an_examination_of_the_degtjareff_method_for.3.aspx. https://doi.org/10.1097/00010694-193401000-00003

Wang, S., Shen, M., Ma, Y., Chen, G., You, Y., y Liu, W. (2019). Application of Remote Sensing to Identify and Monitor Seasonal and Interannual Changes of Water Turbidity in Yellow River Estuary, China. Journal of Geophysical Research: Oceans, 124(7), 4904-4917. https://doi.org/10.1029/2019JC015106

Zalat, AA., El-Sheekh, MM., y Gaballa, M. (2019). Distribution Pattern of Diatom Flora in the Surface Sediments of Bardawil Lagoon (North Sinai), Egypt. Thalassas: An International Journal of Marine Sciences, 35, 531–539. https://doi.org/10.1007/s41208-019-00160-4

Cómo citar

APA

Silva, K. D. P. da, Santos, J. P. de O., Pereira, M. C. S., Machado, C. C. C. & Barbosa, L. G. (2021). Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil. Acta Biológica Colombiana, 27(2), 249 257. https://doi.org/10.15446/abc.v27n2.89391

ACM

[1]
Silva, K.D.P. da, Santos, J.P. de O., Pereira, M.C.S., Machado, C.C.C. y Barbosa, L.G. 2021. Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil. Acta Biológica Colombiana. 27, 2 (dic. 2021), 249 257. DOI:https://doi.org/10.15446/abc.v27n2.89391.

ACS

(1)
Silva, K. D. P. da; Santos, J. P. de O.; Pereira, M. C. S.; Machado, C. C. C.; Barbosa, L. G. Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil. Acta biol. Colomb. 2021, 27, 249 257.

ABNT

SILVA, K. D. P. da; SANTOS, J. P. de O.; PEREIRA, M. C. S.; MACHADO, C. C. C.; BARBOSA, L. G. Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil. Acta Biológica Colombiana, [S. l.], v. 27, n. 2, p. 249 257, 2021. DOI: 10.15446/abc.v27n2.89391. Disponível em: https://revistas.unal.edu.co/index.php/actabiol/article/view/89391. Acesso em: 25 dic. 2025.

Chicago

Silva, Kelly Dayane Pereira da, João Paulo de Oliveira Santos, Maria Cristina Santos Pereira, Célia Cristina Clemente Machado, y Luciana Gomes Barbosa. 2021. «Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil». Acta Biológica Colombiana 27 (2):249 257. https://doi.org/10.15446/abc.v27n2.89391.

Harvard

Silva, K. D. P. da, Santos, J. P. de O., Pereira, M. C. S., Machado, C. C. C. y Barbosa, L. G. (2021) «Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil», Acta Biológica Colombiana, 27(2), p. 249 257. doi: 10.15446/abc.v27n2.89391.

IEEE

[1]
K. D. P. da Silva, J. P. de O. Santos, M. C. S. Pereira, C. C. C. Machado, y L. G. Barbosa, «Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil», Acta biol. Colomb., vol. 27, n.º 2, p. 249 257, dic. 2021.

MLA

Silva, K. D. P. da, J. P. de O. Santos, M. C. S. Pereira, C. C. C. Machado, y L. G. Barbosa. «Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil». Acta Biológica Colombiana, vol. 27, n.º 2, diciembre de 2021, p. 249 257, doi:10.15446/abc.v27n2.89391.

Turabian

Silva, Kelly Dayane Pereira da, João Paulo de Oliveira Santos, Maria Cristina Santos Pereira, Célia Cristina Clemente Machado, y Luciana Gomes Barbosa. «Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil». Acta Biológica Colombiana 27, no. 2 (diciembre 15, 2021): 249 257. Accedido diciembre 25, 2025. https://revistas.unal.edu.co/index.php/actabiol/article/view/89391.

Vancouver

1.
Silva KDP da, Santos JP de O, Pereira MCS, Machado CCC, Barbosa LG. Influence of land use and occupation on water quality and on the diatom community of reservoirs in northeast Brazil. Acta biol. Colomb. [Internet]. 15 de diciembre de 2021 [citado 25 de diciembre de 2025];27(2):249 257. Disponible en: https://revistas.unal.edu.co/index.php/actabiol/article/view/89391

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