Literature DB >> 17526791

Molecular characterization of potential microcystin-producing cyanobacteria in Lake Ontario embayments and nearshore waters.

A M Hotto1, M F Satchwell, G L Boyer.   

Abstract

The distribution and genotypic variation of potential microcystin (MC) producers along the southern and eastern shores of Lake Ontario in 2001 and 2003 were examined using a suite of PCR primers. Cyanobacterial, Microcystis sp., and Microcystis-specific toxin primer sets identified shoreline distribution of cyanobacterial DNA (in 97% of the stations) and MC synthetase genes (in 50% of the stations). Sequence analysis of a partial mcyA amplicon targeting Microcystis, Anabaena, and Planktothrix species indicated that the Microcystis sp. genotype was the dominant MC genotype present and revealed a novel Microcystis-like sequence containing a 6-bp insert. Analysis of the same samples with genus-specific mcyE primers confirmed that the Microcystis sp. genotype was the dominant potential MC producer. Genotype compositions within embayments were relatively homogenous compared to those for shoreline and tributary samples. MC concentrations along the shoreline exhibited both temporal and spatial differences as evidenced by the protein phosphatase inhibition assay, at times exceeding the World Health Organization guideline value for drinking water of 1.0 microg MC-LReq liter(-1). MC genotypes are widespread along the New York State shoreline of Lake Ontario, appear to originate nearshore, and can be carried through the lake via wind and surface water current patterns.

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Year:  2007        PMID: 17526791      PMCID: PMC1932839          DOI: 10.1128/AEM.00318-07

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  34 in total

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5.  Phylogenetic evidence for the early evolution of microcystin synthesis.

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Journal:  Appl Environ Microbiol       Date:  2010-06-18       Impact factor: 4.792

2.  Identification of toxic Cyanobacteria in Lake Baikal.

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4.  Identifying the source of unknown microcystin genes and predicting microcystin variants by comparing genes within uncultured cyanobacterial cells.

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Journal:  Appl Environ Microbiol       Date:  2009-04-10       Impact factor: 4.792

5.  Use of qPCR and RT-qPCR for monitoring variations of microcystin producers and as an early warning system to predict toxin production in an Ohio inland lake.

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7.  Temporal variations in the dynamics of potentially microcystin-producing strains in a bloom-forming Planktothrix agardhii (Cyanobacterium) population.

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Review 8.  Diversity and impact of prokaryotic toxins on aquatic environments: a review.

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9.  Phylogenies of microcystin-producing cyanobacteria in the lower Laurentian Great Lakes suggest extensive genetic connectivity.

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10.  Occurrence of Harmful Cyanobacteria in Drinking Water from a Severely Drought-Impacted Semi-arid Region.

Authors:  Juline M Walter; Fabyano A C Lopes; Mônica Lopes-Ferreira; Lívia M Vidal; Luciana Leomil; Fabiana Melo; Girlene S de Azevedo; Rossandra M S Oliveira; Alba J Medeiros; Adriana S O Melo; Carlos E De Rezende; Amilcar Tanuri; Fabiano L Thompson
Journal:  Front Microbiol       Date:  2018-02-28       Impact factor: 5.640

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