The dangers of cyanotoxins in Mexico

Review of national strategies and decision tree proposal for risk assessment in drinking water and continental aquatic ecosystems

Autores/as

  • Javier Carmona-Jiménez Departamento de Ecología y Recursos Naturales, Facultad de Ciencias, Universidad Nacional Autónoma de México
  • Angela Piedad Caro Borrero Universidad Nacional Autónoma de MéxicofACULTAD DE CIENCIASDepartamento de Ecología y Recursos Naturales
  • Kenia Paola Marquez-Santamaría Departamento de Ecología y Recursos Naturales, Facultad de Ciencias, Universidad Nacional Autónoma de México
  • Aída Isabel Sánchez-Salas Departamento de Ecología y Recursos Naturales, Facultad de Ciencias, Universidad Nacional Autónoma de México.
  • Albano Diez Chiappe Departamento de Biología, C/ Darwin 2, Facultad de Ciencias, Universidad Autónoma de Madrid

Palabras clave:

anatoxins, cyanobacterial blooms, cylindrospermopsin, Mexican freshwaters, microcystins, risk assessment, saxitoxins

Resumen

Background: The study of toxic cyanobacteria in Mexico has gained attraction over the last 20 years due to frequent cases of environmental damage and risks to human health associated with aquatic ecosystems in the center and south of the country. Currently, Mexican regulations only consider four chemical forms of microcystins and one of nodularin, despite approximately 2,000 cyanotoxins recognized; furthermore, treatment and elimination procedures are scarcely implemented and the mechanisms of control are practically null. Goals: This work aims to explain the need to incorporate different chemical forms of cyanotoxins into Mexican regulations and to propose diagnosis and intervention strategies using a decision tree protocol for water use, including both human consumption and recreational use. Results: During the review, records were found linking the presence of certain genera of cyanobacteria with the presence of anatoxins, saxitoxins, and cylindrospermopsins in national lakes and rivers that are frequently used without receiving adequate treatment; therefore, they should be included under the law. While standard chemical methods offer accurate information about the presence of some types of cyanotoxins, complementary molecular techniques are recommended to obtain more precise taxonomic and genomic identifications. Conclusions: Herein, we present a decision tree that outlines the available options in the event of a contingency, including the official communication channels that should be activated to monitor and eliminate cyanobacterial blooms at different stages of development. In particular, this proposal is focused on empowering communities to make decisions about the environmental quality of aquatic ecosystems and the water resources they use on a daily basis.

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Aguilera, A., V. Almanza, S. Haakonsson, H. Palacio, G.A. Benitez-Rodas, M.

Barros, J. Capelo-Neto, R. Urrutia, L. Aubriot & S. Bonilla. 2023. Cyanobacterial

bloom monitoring and assessment in Latin America. Harmful Algae 125:

https://doi.org/10.1016/j.hal.2023.102429

Agathokleous, E. & J. Peñuelas. 2022. Monitoring, regulation, and mitigation of

cyanotoxins in the environment to protect human health and

wildlife. Environmental Science & Technology, 56(20), 14225-14227.

https://doi.org/10.1021/acs.est.2c06618

Almuhtaram, H., F.A. Kibuye, S. Ajjampur, C.M. Glover, R. Hofmann, V. Gaget,

C. Owen, E.C. Wert & Zamya. 2021. A State of knowledge on early warning

tools for cyanobacteria detection. Ecological Indicators 133: 108442.

https://doi.org/10.1016/j.ecolind.2021.108442

Alillo-Sánchez, J.L., M.L. Gaytán-Herrera, V.M. Martínez-Almeida & P. Ramírez-

García. 2014. Microcystin-LR equivalents and their correlation with Anabaena

spp. in the main reservoir of a hydraulic system of Central Mexico. Inland

Waters (4) 3: 327-336. https://doi.org/10.5268/IW-4.3.573

Arreola-Santander, M.M., A. Goméz- González & M.J. Kasten-Monges. 2012.

Teledetección en cianobacterias en los cuerpos de agua que proveen este

líquido al valle de México en beneficio de la calidad del agua y prevención de riesgos potenciales en la salud humana, biodiversidad y medio ambiente.

Memoria en extenso. Segundo Congreso Nacional y Primer latinoamericano de

Ciencias y Tecnología Aeroespacial.

Arzate-Cárdenas, M.A., R. Olvera-Ramírez & F. Martínez-Jerónimo. 2010.

Microsystis toxigenic strains in urban lakes: a case study in Mexico City.

Ecotoxicology 19: 1157-1165. https://doi.org/10.1007/s10646-010-0499-7

Ash, A.K. & S. Patterson. 2022. Reporting of freshwater cyanobacterial

poisoning in terrestrial wildlife: A systematic map. Animals, 12(18), 2423.

https://doi.org/10.3390/ani12182423

Azevedo, S.M.F., W.W. Carmichael, E.M. Jochimsen, K.L. Rinehart, S. Lau, G.

R. Shaw & G.K. Eaglesham. 2002. Human intoxication by microcystins during

renal dialysis treatment in Caruaru—Brazil. Toxicology 181:441–446.

https://doi.org/10.1016/S0300-483X(02)00491-2

Bashir, F., A. Bashir, N. Bouaïcha, L. Chen, G.A. Codd, B. Neilan, ... & B.A.

Ganai. 2023. Cyanotoxins, biosynthetic gene clusters, and factors modulating

cyanotoxin biosynthesis. World Journal of Microbiology and

Biotechnology, 39(9), 241. https://doi.org/10.1007/s11274-023-03652-x

Berdeja-Núñez, D.B., J.R. Angeles-Vázquez, M.J. Ferrara-Guerrero & M.G.

Figueroa-Torres. 2025. Evolution Over Time of the Water Chemistry in the

Channels of the National Canal Tourist Corridor and Adjacent Lake Area of

Xochimilco, Mexico. Environmental Science and Ecology: Current

Research, 6(1), 10107. https://doi.org/10.54026/ESECR/10107

Berry, J.P., E. Lee, K. Walton, A.E. Wilson & F. Bernal‐Brooks. 2011.

Bioaccumulation of microcystins by fish associated with a persistent cyanobacterial bloom in Lago de Patzcuaro (Michoacan, Mexico).

Environmental Toxicology and Chemestry (30):1621–1628.

https://doi.org/10.1002/etc.548

Bunge, V. 2010. La presión hídrica en las cuencas de México. In: Cotler-Ávalos,

H. (ed). Las cuencas hiodrográfricas de México. Diagnóstico y Priorización.

Pluralias Ediciones e Impresiones Sa de CV. Ciudad de México. México. pp 88-

Buratti, F.M., M. Manganelli, S. Vichi, M. Stefanelli, S. Scardala, E. Testai & E.

Funari. 2017. Cyanotoxins: producing organisms, occurrence, toxicity,

mechanism of action and human health toxicological risk evaluation. Archives of

Toxicology (91):1049–1130. https://doi.org/10.1007/s00204-016-1913-6

Carmona-Jiménez, J., A. Caro-Borrero, A. Sánchez-Salas, I. Becerra-Absalón,

S. Cirés, Q. Quesada, E. Perona, D. Ortíz & M. Mazari-Hiriart. 2023.

Polyphasic approach and potential cyanotoxin production of Planktothrix

(Cyanobacteria, Oscillatoriales) species from the Río Grande de Comitán sub-

basin and “Lagunas de Montebello” National Park. Freshwater Biology.

https://doi.org/10.1155/2024/9993635

Caro-Borrero, A., J. Carmona-Jiménez & F. Figueroa. 2020. Water resources

conservation and rural livelihoods in protected areas of central Mexico. Journal

of Rural Studies (78): 12–24. https://doi.org/10.1016/j.jrurstud.2020.05.008

Caro-Borrero, A., K. Márquez-Santamaria, J. Carmona-Jiménez, I. Becerra-

Absalón & E. Perona-Urizar. 2024. Cyanobacterial Harmful Algal Mats

(CyanoHAMs) in tropical rivers of central Mexico and their potential risks through toxin production. Environmental Monitoring and Assessment 196: 408.

https://doi.org/10.1007/s10661-024-12568-4

Chen, J., D. Zhang, P. Xie, Q. Wang & Z. Ma. 2009. Simultaneous

determination of microcystin contaminations in various vertebrates (fish, turtle,

duck and water bird) from a large eutrophic Chinese lake, Lake Taihu, with toxic

Microcystis blooms. Science of Total Environment 407:3317–3322.

https://doi.org/10.1016/j.scitotenv.2009.02.005

Chorus, I. 2005. Current approaches to cyanotoxin risk assessment, risk

management and regulations in different countries. Federal Environmental

Agency (Umweltbundesamt). European Community. Berlin, Germany. 117 p.

Chorus, I. & M. Welker. 2021. Toxic Cyanobacteria in Water, 2nd edition. CRC

Press, Boca Raton (FL), on behalf of the World Health Organization, Geneva,

CH. 859 p.

Chorus, I., & Bartram, J. (1999). Toxic cyanobacteria in water: a guide to their

public health consequences, monitoring and management. CRC press.

Cuevas, M.L., A. Garrido & E. Sotelo. 2010. Regionalización de las cuencas

hidrográficas de México. In: Cotler-Ávalos, H. (ed). Las cuencas hiodrográfricas

de México. Diagnóstico y Priorización. Pluralias Ediciones e Impresiones Sa de

Cv. Ciudad de México. México. 10-13 p.

Codd, G.A., J. Lindsay, F.M. Young, L.F. Morrison & J.S. Metcalf. 2005.

Harmful cyanobacteria. In: Huisman J., Matthijs H. C. P., Visser P.M. (eds)

Harmful cyanobacteria, vol 3. Aquatic Ecology Series, pp 1–23.

https://doi.org/10.1007/1-4020-3022-3_1

Codd, G. A., A. Plinski, W. Surosz, J. Huson & H.J. Fallowfield. 2015. Publication in 1672 of animal deaths at the Tuchomskie Lake, north- ern Poland

and a likely role of cyanobacterial blooms. Toxicon 108:285–286.

https://doi.org/ 10.1016/j.toxicon.2015.10.005

Comisión Nacional del Agua (CONAGUA). 2019. Manual de Agua Potable,

Alcantarillado y Saneamiento Diseño de Plantas Potabilizadoras de Tecnología

Simplificada. Secretaría del Medio Ambiente. México, Distrito Federal. 345 p.

Diario Oficial de la Federación (DOF). 2022. Norma Oficial Mexicana. NOM-

-SSA1-2021. Agua para uso humano. Límites permisibles de la calidad del

agua. Secretaría de Salud. México. Disponible en línea:

https://www.dof.gob.mx/nota_detalle_popup.php?codigo=5650705

Diez-Chiappe, A., S. Cirés, E. Perona, A. Quesada, J. Carmona-Jiménez, A.

Caro-Borrero, A. Salazar, D. Ortiz, M. Muñoz, Z.M. de Pedro, J.A. Colina, D.

Contreras & J.A. Casas. 2024. Herramientas para la evaluación de riesgos

asociados a cianobacterias productoras de cianotoxinas: aguas de consumo y

uso recreativo. Editorial Programa CYTED. 48 pp. DOI:

https://doi.org/10.15366/cyted2024.01. También disponible en la página web:

https://www.cyted.org/assets/img/redes/497/publicacao/Publicacio%CC%81n-CYTED-

Diez-Chiappe2024.pdf

Dodds, W.K., W.W. Bouska, J.L. Eitzmann, T.J. Pilger, K.L. Pitts, A.J. Riley, ...

& D.J. Thornbrugh. 2009. Eutrophication of US freshwaters: analysis of

potential economic damages. Environmental Science and Technology 43:12-19.

https://doi.org/10.1021/es801217q

Elías-Maxil, J.A. 2007. Remoción de metabolitos de cianobacterias presentes

en agua natural mediante el acoplamiento del reactivo de fenton con el proceso de flotación con aire disuelto. Tesis de Maestría en Ingeniería. Instituto de

Ingeniería. Universidad Nacional Autónoma de México. México. 124 p.

El informador. 2009. Chapala padece contaminación por alga. Disponible en

línea en: https://www.informador.mx/Jalisco/Chapala-padece-contaminacion-

por-alga-20090315-0183.html. (Consultado el 22 de junio de 2024).

El UNIVERSAL. 2016. Investigan muerte de peces en Chapultepec. Disponible

en línea en:

https://www.eluniversal.com.mx/articulo/metropoli/df/2016/02/17/investigan-

muerte-de-peces-en-chapultepec. (Consultado el 10 de marzo de 2024).

Environmental Protection Agency (EPA). 2015. Recommendations for public

water systems to manage cyanotoxins in drinking water. Washington, D.C.:

Office of Water U.S. Environmental Protection Agency; 2015. EPA 815-R-15-

Available on line at: https://www.epa.gov/ground-water-and-drinking-

water/recommendations-public-water-systems-manage-cyanotoxins-drinking-0

Excelsior. 2018. El panteon de manaties emergencia en Centla y Macuspana.

Disponible en línea en: https://www.excelsior.com.mx/nacional/el-panteon-de-

manaties-emergencia-en-centla-y-macuspana/1261774#.XnO08lQmvQM.gmail

/08/2018. (Consultado el 10 de marzo de 2024).

Fernández, R., J. Alcocer & L.A. Oseguera. 2021. Microcystins presence

threatens the ecosystem health of a tropical National Park: Lagunas de

Montebello, Chiapas. Brazilian Journal of Botany 44:207–212.

https://doi.org/10.1007/s40415-020-00686-5

Ferrão-Filho, A.S. & B. Kozlowsky-Suzuki. 2011. Cyanotoxins: Bioaccumulation

and Effects on Aquatic Animals. Marine Drugs 12: 2729-2772.

https://doi:10.3390/md9122729

Figueroa-Sanchez, M.A., S. Nandini & S.S.S. Sarma. 2014. Zooplankton

community structure in the presence of low levels of cyanotoxins: a case study

in a high-altitude tropical reservoir (Valle de Bravo, Mexico). Journal of

Limnology 73(1): 157-166. http://doi.org/10.4081/jlimnol.2014.784

Fournier-Úbeda, G., C.A. Zamora-Barrios, G. Valerio-Alfaro & R. Olvera-

Ramírez. 2021. Comparison of the performance of an LSTM network and a

regression model to predict the presence of Planktothrix agardhii in a Mexican

reservoir. Ecological Informatics 64, 101344.

https://doi.org/10.1016/j.ecoinf.2021.101344

Garita-Alvarado, C. A., Silvas-Trujillo, K. I., Bermúdez-González, M. P.,

Bojorge-García, M. G., & Uriza, E. A. C. (2026). Widespread microcystins

accumulation in fish of several trophic guilds in reservoirs of a dry area in

Central México. Toxicon, 109071. 10.1016/j.toxicon.2026.109071

Garita-Alvarado, C., M.P. Bermúdez-González, M.G. Bojorge-García, E.A.

Cantoral-Uriza. 2024. Cyanotoxins bioaccumulation by fish in an anthropized

reservoir in central Mexico. Revista Internacional de Contaminación Ambiental

: 215-230. https://doi.org/10.20937/rica.54932

Hamilton, D.P., N. Salmaso & H.W. Paerl. 2016. Mitigating harmful

cyanobacterial blooms: strategies for control of nitrogen and phosphorus

loads. Aquatic Ecology, 50(3), 351-366. https://doi.org/10.1007/s10452-016-

-z

Henao, E.P., Rzymski & M.N. Waters. 2020. A Review on the Study of

Cyanotoxins in Paleolimnological Research: Current Knowledge and Future

Needs Toxins 12: 6: doi:10.3390/toxins12010006.

Hidalgo-Rodríguez, R.A., A.O. Gómez-González & M.M. Arreola-Santander.

Manatees Mortality Analysis at Los Bitzales, Tabasco, by Remote

Sensing. International Journal of Latest Research in Engineering and

Technology 5(1): 1-15.

Ibelings, B.W., M. Bormans, J. Fastner & P.M. Visser. 2016. CYANOCOST

special issue on cyanobacterial blooms: synopsis—a critical review of the

management options for their prevention, control and mitigation. Aquatic

Ecology, 50(3), 595-605. https://doi.org/10.1007/s10452-016-9596-x

Ibelings, B. W., L.C. Backer, W.E.A. Kardinaal & I. Chorus. 2014. Current

approaches to cyanotoxin risk assessment and risk management around the

globe. Harmful algae, 40, 63-74. https://doi.org/10.1016/j.hal.2014.10.002

Igwaran, A., A.J. Kayode, K.M. Moloantoa, Z.P. Khetsha & J.O. Unuofin. 2024.

Cyanobacteria harmful algae blooms: causes, impacts, and risk

management. Water, Air, & Soil Pollution, 235(1), 71.

https://doi.org/10.1007/s11270-023-06782-y

Jeon, Y., P. Baranwal, L. Li, K. Piezer & Y. Seo. (2023). Current understanding

on biological filtration for the removal of microcystins. Chemosphere, 313,

https://doi.org/10.1016/j.chemosphere.2022.137160

Jones, M.R., E. Pinto, M.A. Torres, F. Dörr, H. Mazur-Marzec, K. Szubert, L.

Tartaglione, C. Dell'Aversano, C.O. Miles, D.G. Beach, P. McCarro, K.

Sivonen, D.P. Fewer, J. Jokela & E. Janssen. 2021. CyanoMetDB, a comprehensive public database of secondary metabolites from cyanobacteria.

Water Research 196: 117017. https://doi.org/10.1016/j.watres.2021.117017

Kelly, L.T., K. Bouma-Gregson, J. Puddick, R. Fadness, K.G. Ryan, T.W. Davis

& S.A. Wood. 2019. Multiple cyanotoxin congeners produced by sub-dominant

cyanobacterial taxa in riverine cyanobacterial and algal mats. PLoS ONE

(12): e0220422. https://doi.org/10.1371/journal.pone.0220422

Kelly, L.T., D.G. Beach, J.R. Blaszczak, K. Bouma-Gregson, S.M. Brown, H.

Cheng ... & S.A. Wood. 2026. The global proliferation of aquatic, benthic

Microcoleus: taxonomy, distribution, toxin production, ecology, and future

directions. Water Research, 125441.

https://doi.org/10.1016/j.watres.2026.125441

Kirkby, C. 1672. A relation of an inland sea, near Zanzick yielding at a certain

season a green substance which caused certain death, together with an

observation about white amber: communicated by Mr. Kirkby in a letter written

to the publisher from Danzick Decemb. 19, 1671. Philosophical Transactions of

Royal Society 7: 4069–4070. http://www.jstor.org/stable/100936.

Koreiviené, J., O. Anne, J. Kasperovičienė & V. Burškytė. 2014. Cyanotoxin

management and human health risk mitigation in recreational

waters. Environmental monitoring and assessment, 186(7), 4443-4459.

https://doi.org/10.1007/s10661-014-3710-0

Kubickova, B., P. Babica, K. Hilscherová & L. Sindlerová. 2019. Effects of

cyanobacterial toxins on the human gastrointestinal tract and the mucosal

innate immune system. Environmental Science Europe 31:31.

https://doi.org/10.1186/s12302-019-0212-2.

Kulabhusan, P.K. & K. Campbell. 2024. Physico-chemical treatments for the

removal of cyanotoxins from drinking water: Current challenges and future

trends. Science of the Total Environment, 917, 170078.

https://doi.org/10.1016/j.scitotenv.2024.170078

La Razón. 2012. El agua sabe y huele feo reconoce Ahued. Disponible en

línea: https://www.razon.com.mx/mexico/2012/06/26/agua-sabe-y-huele-feo-

reconoce-ahued/. (Consultado el 15 de marzo de 2024).

Lentz, D. L., T.L. Hamilton, N.P. Dunning, V.L. Scarborough, T.P. Luxton, A.

Vonderheide, E.J. Tepe, C.J. Perfetta, J. Brunemann, L. Grazioso, F. Valdez, K.

B. Tankersley & A.A. Weiss. 2020. Molecular genetics and geochemical assays

reveal severe contamination of drinking water reservoirs at the ancient Maya

city of Tikal. Scientific Reports 10: 10316. https://doi.org/ 10.1038/s41598-020-

-z.

Li, N., Y. Zhang, Y. Zhang, K. Shi, H. Qian, H. Yang, H ... & E. Jeppesen. 2023.

The unprecedented 2022 extreme summer heatwaves increased harmful

cyanobacteria blooms. Science of the Total Environment, 896, 165312.

https://doi.org/10.1016/j.scitotenv.2023.165312

Linz, D. M., N. Sienkiewicz, I. Struewing, E.A. Stelzer, J. L. Graham & J. L.

Jingrand, 2023. Metagenomic mapping of cyanobacteria and potential

cyanotoxin producing taxa in large rivers of the United States. Scientific Reports

: 2806. https://doi.org/10.1038/s41598-023-29037.

Lucentini, L., L. La Sala, R. Colagrossi & R. Congestri. 2017. The Italian System

for Cyanobacterial Risk Management in Drinking Water Chains. In: Meriluoto,

J., S. Spoof & C.A. Codd, (eds) Handbook of Cyanobacterial Monitoring and

Cyanotoxin Analysis. John Wiley & Sons, Ltd, United Kingdom. 100-106 pp.

Martínez-Jerónimo, L., Munoz, G., Simon, D.F. & Sauvé, S. 2022. Year-long

monitoring of phytoplankton community, toxigenic cyanobacteria, and total

microcystins in a eutrophic tropical dam supplying the Mexico

megacity. Frontiers in Environmental Science, 10, 984365.

https://doi.org/10.3389/fenvs.2022.984365

Martínez-Ruiz, E.B. & F. Martínez-Jerónimo. 2016. How do toxic metals affect

harmful cyanobacteria? An integrative study with a toxigenic strain of

Microcystis aeruginosa exposed to nickel stress. Ecotoxicology and

Environmental Safety 133: 36-46. https://doi.org/10.1016/j.ecoenv.2016.06.040

Martínez-Romero, E., M.D. Salgado-Martínez, M. Cabrera-Millán & P.

Ramírez-García. 2002. Determinación de toxinas biológicas en una fuente de

abastecimiento de agua dulce. (Article in Spanish). Proceedings XXVIII

American Congress of Sanitary and Environmental Engineering, Cancún,

Mexico.

Marumure, J., W. Gwenzi, Z. Makuvara, T.T. Simbanegavi, R. Alufasi, M.

Goredema ... & D. Halabowski. 2025. Global occurrence of cyanotoxins in

drinking water systems: Recent advances, human health risks, mitigation, and

future directions. Life, 15 (5), 825. https://doi.org/10.3390/life15050825

Mercado, B. 2007. Estudio sobre la remoción de cianobacterias y sus

metabolitos en la planta potabilizadora “Los Berros”, Sistema Cutzamala. Tesis

de Maestría en Ingeniería. Instituto de Ingeniería.Universidad Nacional

Autónoma de México. 184 p.

Merel, S., Walker, D., Chicana, R., Snyder, S., Baurès, E., & Thomas, O. 2013.

State of knowledge and concerns on cyanobacterial blooms and

cyanotoxins. Environment international, 59, 303-327.

https://doi.org/10.1016/j.envint.2013.06.013

Milenio. 2019. Manatíes murieron en tabasco por algas tóxicas: Estudio.

Disponible en línea en: https://www.milenio.com/estados/manaties-tabasco-

murieron-algas-toxicas-confirma-estudio. (Consultado el 22 de septiembre de

.

Moore, J., A. Jayakumar, S. Soldatou, O. Masek, L.A. Lawton & C. Edwards.

Nature-based solution to eliminate cyanotoxins in water using biologically

enhanced biochar. Environmental Science & Technology, 57(43), 16372-16385.

https://doi.org/10.1021/acs.est.3c05298

Morales-Covarrubias, M.S., R. Alonso-Rodríguez, J.A. Velázquez-Garay, A.M.

G. Flores-Chavarría & A.F. Alva-Martínez. 2016. Effect of Microcystis

aeruginosa on Organs and Tissues of White Shrimp (Litopenaeus vannamei)

Postlarvae in Low-Salinity Water. Revista Científica 26 (3): 181-187.

Munoz, M., S. Cirés, Z. de Pedro, J.A. Colina, Y. Velásquez-Figueroa, J.

Carmona- Jiménez, A. Caro-Borrero, A. Salazar, M. Santa María-Fuster, D.

Contreras, E. Perona, A. Quesada & J.A. Casas. 2021. Overview of toxic

cyanobacteria and cyanotoxins in Ibero-American freshwaters: Challenges for

risk management and opportunities for removal by advanced technologies.

Science of the Total Environment 761: 143197.

https://doi.org/10.1016/j.scitotenv.2020.143197 ISSN: 0048-9697.

Nandini, S., C. Sánchez-Zamora & S.S.S. Sarma. 2019. Toxicity of

cyanobacterial blooms from the reservoir Valle de Bravo (Mexico): A case study

on the rotifer Brachionus calyciflorus. Science of the Total Environment 688:

-1358. https://doi.org/10.1016/j.scitotenv.2019.06.297

Olvera-Ramírez, R., C. Centeno-Ramos & F. Martínez-Jerónimo. 2010. Efectos

tóxicos de Pseudanabaena tenuis (Cyanobacteria) en los cladóceros Daphnia

magna y Ceriodaphnia dubia. Hidrobiológica 20 (3): 203-212. Disponible en:

<http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S0188-

&lng=es&nrm=iso>. ISSN 0188-8897.

Paerl, H. & V. Paul. 2012. Climate change: links to global expansion of harmful

cyanobacteria. Water Research 46: 1349-1363.

https://doi.org/10.1016/j.watres.2011.08.002

Pindilli, E. J., & K. Loftin. 2022. What’s it worth? Estimating the potential value

of early warnings of cyanobacterial harmful algal blooms for managing

freshwater reservoirs in Kansas, United States. Frontiers in Environmental

Science, 10, 805165. https://doi.org/10.3389/fenvs.2022.805165

Pineda-Mendoza, R., F. Martínez-Jerónimo, G. Garduño-Solórzano & R.

Olvera-Ramírez. 2011. Caracterización morfológica y molecular de

cianobacterias filamentosas aisladas de florecimientos de tres lagos urbanos

eutróficos de la ciudad de México . Polibotánica 31:31-50. Disponible en:

<http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S1405-

&lng=es&nrm=iso>. ISSN 1405-2768.

Pineda-Mendoza, R.M., R. Olvera-Ramírez & F. Martínez-Jerónimo. 2012.

Microcystins produced by filamentous cyanobacteria in urban lakes. A case study in Mexico City. Hidrobiológica 22 (3): 290-298. Disponible en:

<http://www.scielo.org.mx/scielo.php?script=sci_arttext&pid=S0188-

&lng=es&nrm=iso>. ISSN 0188-8897

Pineda-Mendoza, R., C. Briones-Roblero, R. González-Escobedo, F. Rivera-

Orduña, F. Martínez-Jerónimo & G. Zúñiga. 2020. Seasonal changes in the

bacterial community structure of three eutrophicated urban lakes in Mexico City,

with emphasis on Microcystis spp. Toxicon 179: 8–20.

https://doi.org/10.1016/j.toxicon.2020.02.019.

Rea, S.J.E. 2015. Estandarización de una técnica milecular de PCR para

identificar la presencia del gen mcyE en monocultivos y su seguimiento en

muestras ambientales de cianobacterias potencialmente tóxicas. Tesis de

licenciatura en Biología. Facultad de Estudios Superiores Iztacala. Universidad

Nacional Autónoma de México. México. 48 p.

Recknagel, F., K. Shan, R. Adrian & J. Köhler. 2025. Early warning of harmful

cyanobacteria blooms based on high frequency in situ monitoring and intelligible

machine learning modelling: The case study of Lake Müggelsee

(Germany). Water Research, 124514.

https://doi.org/10.1016/j.watres.2025.124514

Rogers, E.H., E.S. Hunter III, V.C. Moser, P.M. Phillips, J. Herkovits, L. Muñoz,

L.L. Hall & N. Chernoff. 2005. Potential developmental toxicity of anatoxin-a, a

cyanobacterial toxin. Journal of Applied Toxicology 25(6):527–534.

https://doi.org/10.1002/jat.1091

Timoshkin, O. A., D.P. Samsonov, M. Yamamuro, M.V. Moore, O.I. Belykh, V.

V. Malnik & N. A. Bukshuk. 2016. Rapid ecological change in the coastal zone of Lake Baikal (East Siberia): Is the site of the world's greatest freshwater

biodiversity in danger?. Journal of Great Lakes Research 42 (3): 487-497.

https://doi.org/10.1016/j.jglr.2016.02.011

Tomasini-Ortiz, C., G. Moeller-Chávez, J. Sánchez-Chávez & L. Bravo-Inclán.

Cianobacterias y cianotoxinas en el lago de Pátzcuaro, Michoacán,

México. Revista AIDIS de Ingienería y Ciencias Ambientales: Investigación,

desarrollo y práctica 5 (2): 93-101. http://hdl.handle.net/20.500.12013/1719

United State Environmental Protection Agency (USEPA). 2003. Drinking Water

Utility Response Protocol Toolbox (DWRPTB). Office of Water. Available online

at: https://www.epa.gov/waterutilityresponse/ drinking-water-and-wastewater-

utility-response-protocol-toolbox#DWRPTB. (Downloaded June 19, 2023)

Valdés-Santiago, L., J.G. Colli Mull, J.L. Castro Guillén, R. Alonso-Rodríguez,

J.N. García Chávez, A. Zúñiga Zúñiga, P.M. González & M.J. León Hernández.

Monitoring microcystin-LR-producing cyanobacterial bloom in La

Purísima Dam in Guanajuato, Mexico. Cymbella 11 (2-3): 115-120. DOI:

https://doi.org/10.22201/fc.24488100e.2025.11.2.2

Vasconcelos, V., M. Martins, M. Vale, M. Welker, O. López & G. Montejano.

First report on the occurrence of microcystins in planktonic cyanobacteria

from Central Mexico. Toxicon 56 (3): 425-431.

https://doi.org/10.1016/j.toxicon.2010.04.011

Villalobos, T., B. Suárez-Isla & C. Garcia. 2025. Health and environmental

impacts of cyanobacteria and cyanotoxins from freshwater to

seawater. Toxins, 17(3), 126. https://doi.org/10.3390/toxins17030126

Wei, N., C. HU, E. Dittmann, L. Song & N. Gan. 2024. The biological functions

of microcystins. Water Research 262 (2024): 122119.

https://doi.org/10.1016/j.watres.2024.122119

Wood, S. & J. Puddik. 2018. Assessment of anatoxin levels in the water of

rivers affected by Phormidium blooms. Prepared for Ministry of the

Environment. Cawthron Institute. Report No. 3123. 26 p. plus appendices. Also

available online at:

https://environment.govt.nz/assets/Publications/Files/Assessment-of-anatoxin-

levels-in-the-water-of-rivers-affected-by-Phormidium-blooms.pdf. (Downloaded

January 23, 2023)

Wood, S. A., L. Kelly, K. Bouma-Gregson, J.F. Humbert, H.D. Laughinghouse,

J. Lazorchak, T. McAllister, A. McQueen, K. Pokrzywinski, J. Puddick, C.

Quiblier, L.A. Reitz, K. Ryan, Y. Vadeboncoeur, A. Zastepa & T.W. Davis. 2020.

Toxic benthic freshwater cyanobacterial proliferations: Challenges and solutions

for enhancing knowledge and improving monitoring and mitigation. Freshwater

Biology 65 (10): 1824–1842. doi: 10.1111/fwb.13532. PMID: 34970014; PMCID:

PMC8715960.

Zamora-Barrios, C.A., S. Nandini, S.S.S. Sarma. 2015. Effect of crude extracts

of Dolichospermum planctonicum on the demography of Plationus patulus

(Rotifera) and Ceriodaphnia cornuta (Cladocera). Ecotoxicology 24 (1): 85-93.

https://doi.org/10.1007/s10646-014-1358-8

Zamora-Barrios, C.A., S. Nandini & S.S.S. Sarma. 2017. Effect of crude

extracts from cyanobacterial blooms in Lake Texcoco (Mexico) on the population growth of Brachionus calyciflorus (Rotifera). Toxicon 139: 45e53.

https://doi.org/10.1016/j.toxicon.2017.09.013

Zamora-Barrios, C.A., S. Nandini & S.S.S. Sarma. 2019. Bioaccumulation of

microcystins in seston, zooplankton and fish: A case study in Lake Zumpango,

Mexico. Environmental Pollution 249: 267e276.

https://doi.org/10.1016/j.envpol.2019.03.029

Zamora-Barrios, C.A., S. Nandini & S.S.S. Sarma. 2026. Combined effect of

crude extracts from a cyanobacteria consortium and temperature on the

demographic characteristics of Ceriodaphnia dubia (Cladocera). Limnology, 1-

https://doi.org/10.1007/s10201-026-00827-x

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2026-09-10

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Carmona-Jiménez, J., Caro Borrero, A. P., Marquez-Santamaría, K. P., Sánchez-Salas, A. I., & Diez Chiappe, A. (2026). The dangers of cyanotoxins in Mexico: Review of national strategies and decision tree proposal for risk assessment in drinking water and continental aquatic ecosystems. HIDROBIOLÓGICA, 36(2). Recuperado a partir de https://hidrobiologica.izt.uam.mx/index.php/revHidro/article/view/1856

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