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Risk Levels of Toxic Cyanobacteria in Portuguese Recreational Freshwaters

Overview
Journal Toxins (Basel)
Publisher MDPI
Specialty Toxicology
Date 2017 Oct 24
PMID 29057822
Citations 4
Authors
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Abstract

Portuguese freshwater reservoirs are important socio-economic resources, namely for recreational use. National legislation concerning bathing waters does not include mandatory levels or guidelines for cyanobacteria and cyanotoxins. This is an issue of concern since cyanotoxin-based evidence is insufficient to change the law, and the collection of scientific evidence has been hampered by the lack of regulatory levels for cyanotoxins in bathing waters. In this work, we evaluate the profile of cyanobacteria and microcystins (MC) in eight freshwater reservoirs from the center of Portugal, used for bathing/recreation, in order to determine the risk levels concerning toxic cyanobacteria occurrence. Three of the reservoirs did not pose a risk of MC contamination. However, two reservoirs presented a high risk in 7% of the samples according to the World Health Organization (WHO) guidelines for MC in bathing waters (above 20 µg/L). In the remaining three reservoirs, the risk concerning microcystins occurrence was low. However, they exhibited recurrent blooms and persistent contamination with MC up to 4 µg/L. Thus, the risk of exposure to MC and potential acute and/or chronic health outcomes should not be disregarded in these reservoirs. These results contribute to characterize the cyanobacterial blooms profile and to map the risk of toxic cyanobacteria and microcystins occurrence in Portuguese inland waters.

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References
1.
Backer L, Carmichael W, Kirkpatrick B, Williams C, Irvin M, Zhou Y . Recreational exposure to low concentrations of microcystins during an algal bloom in a small lake. Mar Drugs. 2008; 6(2):389-406. PMC: 2525495. DOI: 10.3390/md20080018. View

2.
Vasconcelos V, Morais J, Vale M . Microcystins and cyanobacteria trends in a 14 year monitoring of a temperate eutrophic reservoir (Aguieira, Portugal). J Environ Monit. 2011; 13(3):668-72. DOI: 10.1039/c0em00671h. View

3.
Backer L, McNeel S, Barber T, Kirkpatrick B, Williams C, Irvin M . Recreational exposure to microcystins during algal blooms in two California lakes. Toxicon. 2009; 55(5):909-21. DOI: 10.1016/j.toxicon.2009.07.006. View

4.
Ferreira F, Franco Soler J, Fidalgo M . PSP toxins from Aphanizomenon flos-aquae (cyanobacteria) collected in the Crestuma-Lever reservoir (Douro river, northern Portugal). Toxicon. 2001; 39(6):757-61. DOI: 10.1016/s0041-0101(00)00114-8. View

5.
Bellem F, Nunes S, Morais M . Cyanobacteria toxicity: potential public health impact in South Portugal populations. J Toxicol Environ Health A. 2013; 76(4-5):263-71. DOI: 10.1080/15287394.2013.757204. View