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Morphological, genetic, chemical and ecophysiological characterisation of two Microcystis aeruginosa isolates from the Vistula Lagoon, southern Baltic

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The Vistula Lagoon (southern Baltic Sea) is a shallow and highly eutrophic water body, with frequent blooms of cyanobacteria dominated by Microcystis and Anabaena species. Two Microcystis strains, MK10.10 and MAKR0205, isolated from the lagoon were characterised in this work. The morphology of the isolates differed significantly with respect to cell size and their ability to form aggregates. Based on the 16S rRNA sequence and 16S-23S internal transcribed spacer (ITS) sequence, both isolates were classified as Microcystis aeruginosa. However, only one isolate, MK10.10, possessed the mcy genes responsible for microcystin biosynthesis and only this strain produced microcystins. The effects of environmental factors, such as light, temperature and salinity, on toxin production turned out to be minor. Under the culture conditions used in the experiments, the biomass of the toxic MK10.10 was always lower. Hybrid quadrupole-time-of-flight liquid chromatography/tandem mass spectrometry (QTOF-LC/MS/MS) was used to elucidate the structure of the microcystin (MC) variants produced by MK10.10. Based on molecular ion and fragmentation spectra, the toxins were identified as MC-LR, MC-VR and MC-HIlR. Our study confirmed that some morphological criteria could be useful in preliminarily assessing the potential toxicity of a Microcystis bloom.
Czasopismo
Rocznik
Strony
127--146
Opis fizyczny
bibliogr. 50 poz., tab., wykr.
Twórcy
autor
autor
autor
  • Department of Marine Biology and Ecology, Institute of Oceanography, University of Gdańsk, al. Marszałka Piłsudskiego 46, PL-81-378 Gdynia, Poland, biohm@univ.gda.pl
Bibliografia
  • 1.Bateman K.P., Thibault P., Douglas D. J., White R. L., 1995, Mass spectral analyses of microcystins from toxic cyanobacteria using on-line chromatographic and electrophoretic separations, J. Chromatogr. A, 712 (1), 253-268.
  • 2.Bittencourt-Oliveira M.C., Oliveira M.C., Bolch Ch. J. S., 2001, Genetic variability of Brazilian strains of the Microcystis aeruginosa complex (Cyanobacteria/Cyanophyceae) using the phycocyanin intergenic spacer and flanking regions (cpcBA), J. Phycol., 37 (5), 810-818.
  • 3.Davis T.W., Berry D. L., Boyer G. L., Gobler C. J., 2009, The effects of temperature and nutrients on the growth and dynamics of toxic and non-toxic strains of Microcystis during cyanobacterial blooms, Harmful Algae, 8 (5), 715-725.
  • 4.Fastner J., ErhardM., von Döhren H., 2001, Determination of oligopeptide diversity within a natural population of Microcystis spp. (Cyanobacteria) by typing single colonies by matrix-assisted laser desorption ionization-time of flight mass spectrometry, Appl. Environ. Microb., 67 (11), 5069-5076.
  • 5.Fewer D. P., Rouhiainen L., Jokela J., Wahlesten M., Laakso K., Wang H., Sivonen K., 2007, Recurrent adenylation domain replacement in the microcystin synthetase gene cluster, BMC Evol. Biol., 7, 183-193.
  • 6.Funari E., Testai E., 2008, Human health risk assessment related to cyanotoxin exposure, Crit. Rev. Toxicol., 38 (2), 97-125.
  • 7.Imai H., Chang K.-H., Nakano S.-I., 2009, Growth responses of harmful algal species Microcystis (Cyanophyceae) under various environmental conditions, Interdisciplinary Studies on Environmental Chemistry - Environmental Research in Asia, 269-275.
  • 8.Iteman I., Rippka R., Tandeau de Marsac N., Herdman M., 2000, Comparison of conserved structural and regulatory domains within divergent 16S rRNA-23S rRNA spacer sequences of cyanobacteria, Microbiology, 146, 1275-1286.
  • 9.Kato T., Watanabe M. F., Watanabe M., 1991, Allozyme divergence in Microcystis (Cyanophyceae) and its taxonomic inference, Algol. Stud., 64, 129-140.
  • 10.Komárek J., Anagnostidis K., 1999, Cyanoprokaryota, 1. Teil: Chroococcales, [in:] Süsswasserflora von Mitteleuropa, Bd. 19/1, H. Ettl, G. Gärtner, H. Heynig & D. Mollenhauer (eds.), Gustav Fischer, Jena, 548 pp.
  • 11.Komárek J., Komárková J., 2002, Review of the European Microcystismorphospecies (Cyanoprokaryotes) from nature, Czech Phycol., 2, 1-24.
  • 12.Kuiper-Goodman T., Falconer J., Fitzgerald J., 1999, Human health aspect, [in:] Toxic cyanobacteria in water: a guide to their public health consequences, monitoring and management, I. Chorus & J. Bartram (eds.), WHO Publ., E. & F.N. Spon, London, 113-153.
  • 13.Kurmayer R., Christiansen G., 2009, The genetic basis of toxin production in Cyanobacteria, Freshwater Rev., 2 (1) 31-50.
  • 14.Kurmayer R., Dittmann E., Fastner J., Chorus I., 2002, Diversity of microcystin genes within a population of the toxic cyanobacterium Microcystis spp. in Lake Wannsee (Berlin, Germany), Microbial Ecol., 43 (1), 107-118.
  • 15.Kurmayer R., Kutzenberger T., 2003, Application of real-time PCR for quantification of microcystin genotypes in a population of the toxic cyanobacterium Microcystis sp., Appl. Environ. Microb., 69 (11), 6723-6730.
  • 16.Liu Y., 2006, Effects of salinity on the growth and toxin production of a harmful algal species, Microcystis aeruginosa, SJWP, 1, 91-111.
  • 17.MacKintosh C., Beattie K.A., Klumpp S., Cohen P., Codd G.A., 1990, Cyanobacterial microcystin-LR is a potent and specific inhibitor of protein phosphatases 1 and 2A from both mammals and higher plants, FEBS Lett., 264 (2), 187-192.
  • 18.Martins J., Saker M. L., Moreira C., Welker M., Fastner J., Vasconcelos V.M., 2009, Peptide diversity in strains of the cyanobacterium Microcystis aeruginosa isolated from Portuguese water supplies, Appl. Microbiol. Biot., 82 (5), 951-961.
  • 19.Mazur H., Lewandowska J., Błaszczyk A., Kot A., Pliński M., 2003, Cyanobacterial toxins in fresh and brackish waters of Pomorskie Province (Northern Poland), Oceanol. Hydrobiol. Stud., 32 (1), 15-26.
  • 20.Mikalsen B., Boison G., Skulberg O.M., Fastner J., Davies W., Gabrielsen T.M., Rudi K., Jakobsen K. S., 2003, Natural variation in the microcystin synthetase operon mcyABC and impact on microcystin production in Microcystis strains, J. Bacteriol., 185 (9), 2774-2785.
  • 21.Namikoshi M., Sun F., Choi B.W., Rinehart K.L., Carmichael W.W., Evans W.R., Beasley V.R., 1995, Seven more microcystins from Homer lake cells: application of the general method for structure assignment of peptides containing α,β-dehydroamino acid unit(s), J. Org. Chem., 60 (12), 3671-3679.
  • 22.Orr P.T., Jones G. J., 1998, Relationship between microcystin production and cell division rates in nitrogen-limited Microcystis aeruginosa cultures, Limnol. Oceanogr., 43 (7), 1604-1614.
  • 23.Otsuka S., Suda S., Li R., Matsumoto S., Watanabe M.M., 2000, Morphological variability of colonies of Microcystis morphospecies in culture, J. Gen. Appl. Microbiol., 46 (1), 39-50.
  • 24.Otsuka S., Suda S., Li R., Watanabe M., Oyaizu H., Matsumoto S., Watanabe M.M., 1999, Phylogenetic relationships between toxic and non-toxic strains of the genus Microcystis based on 16S to 23S internal transcribed spacer sequence, FEMS Microbiol. Lett., 172 (1), 15-21.
  • 25.Otsuka S., Suda S., Shibata S., Oyaizu H., Matsumoto S., Watanabe M.M., 2001, A proposal for unification of five species of the cyanobacterial genus Microcystis Kutzing ex Lemmermann 1907 under the Rules of the Bacteriological Code, Int. J. Syst. Evol. Micr., 51 (3), 873-879.
  • 26.Ouahid Y., Peréz-Silva G., del Campo F. F., 2005, Identification of potentially toxic environmental Microcystis by individual and multiple PCR amplification of specific microcystin synthetase gene regions, Environ. Toxicol., 20 (3), 235-242.
  • 27.Paerl H.W., Huisman J., 2008, Climate. Blooms like it hot, Science, 320 (5872), 57-58.
  • 28.Paldavičienė A., Mazur-Marzec H., Razinkovas A., 2009, Toxic cyanobacteria blooms in the Lithuanian part of the Curonian Lagoon, Oceanologia, 51 (2), 203-216.
  • 29.Palińska K.A., LiesackW., Rhiel E., Krumbein W. E., 1996, Phenotypic variability of identical genotypes: the need for a combined approach in cyanobacterial taxonomy demonstrated on Merismopedia-like isolates, Arch. Microbiol., 166 (4), 224-233.
  • 30.Rantala A., Fewer D. P., Hisbergues M., Rouhiainen L., Vaitomaa J., Börner T., Sivonen K., 2004, Phylogenetic evidence for the early evolution of microcystin synthesis, Proc. Natl. Acad. Sci., 101 (2), 568-573.
  • 31.Rippka R., 1988, Isolation and purification of cyanobacteria, Method Enzymol., 167, 3-27.
  • 32.Rohrlack T., Henning M., Kohl J.-G., 2001, Isolation and characterization of colony-forming Microcystis aeruginosa strains, [in:] Cyanotoxins - occurrence, effects, controlling factors, I. Chorus (ed.), Springer-Verlag, New York, 152-158.
  • 33.Rybicka D., 2005, Potentially toxic blue-green algae (Cyanoprokaryota) in the Vistula Lagoon, Oceanol. Hydrobiol. Stud., 34 (Suppl. 3), 161-176.
  • 34.Sabour B., Sbiyyaa B., Loudiki M., Oudra B., Belkoura M., Vasconcelos V., 2009, Effect of light and temperature on the population dynamics of two toxic bloom forming Cyanobacteria - Microcystis ichthyoblabe and Anabaena aphanizomenoides, Chem. Ecol., 25 (4), 277-284.
  • 35.Sivonen K., Börner T., 2008, Bioactive compounds produced by cyanobacteria, [in:] The Cyanobacteria. Molecular biology, genomics and evolution, A. Herrero & E. Flores (eds.), Caister Acad. Press, Norfolk, U.K., 159-197.
  • 36.Sivonen K., Jones G., 1999, Cyanobacterial toxins, [in:] Toxic cyanobacteria in water: a guide to their public health consequences, monitoring and management, I. Chorus & J. Bartram (eds.), WHO Publ., E. & F.N. Spon, London, New York, 41-111.
  • 37.Tamura K., Dudley J., Nei M., Kumar S., 2007, MEGA4: Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0, Mol. Biol. Evol., 24 (8), 1596-1599.
  • 38.Taton A., Grubisic S., Brambilla E., De Wit R., Wilmotte A., 2003, Cyanobacterial diversity in natural and artificial microbial mats of Lake Fryxell (McMurdo Dry Valleys, Antarctica): a morphological and molecular approach, Appl. Environ. Microbiol., 69 (9), 5157-5169.
  • 39.Tillett D., Dittmann E., Erhard M., von Döhren H., Börner T., Neilan B.A., 2000, Structural organization of microcystin biosynthesis in Microcystis aeruginosa PCC7806: an integrated peptide-polyketide synthetase system, Chem. Biol., 7 (10), 753-764.
  • 40.Tillett D., Parker D. L., Neilan B.A., 2001, Detection of toxigenity by a probe for the microcystin synthease A gene (mcyA) of the cyanobacterial genus Microcystis: comparison of toxicities with 16s rRNA and phycocyanin operon (phycocyanin intergenic spacer) phylogenies, Appl. Environ. Microb., 67 (6), 2810-2818.
  • 41.Van der Westhuizen A. J., Eloff J.N., 1985, Effect of temperature and light on the toxicity and growth of the blue-green alga Microcystis aeruginosa (UV-006), Planta, 163 (1), 55-59.
  • 42.Via-Ordorika L., Fastner J., Kurmayer R., Hisbergues M., Dittmann E., Komarek J., ErhardM., Chorus I., 2004, Distribution of microcystin-producing and nonmicrocystin-producing Microcystis sp. in European freshwater bodies: detection of microcystins and microcystin genes in individual colonies, Syst. Appl. Microbiol., 27 (5), 592-602.
  • 43.Watanabe M. F., Oishi S., 1985, Effect of environmental factors on toxicity of a cyanobacterium (Microcystis aeruginosa) under culture conditions, Appl. Environ. Microbiol., 49 (5), 1342-1344.
  • 44.Welker M., Brunke M., Preussel K., Lippert I., von Döhren H., 2004, Diversity and distribution of Microcystis (Cyanobacteria) oligopeptide chemotypes from natural communities studied by single-colony mass spectrometry, Microbiology, 150, 1785-1796.
  • 45.Wiedner C., Visser P.M., Fastner J., Metcalf J. S., Codd G.A., Mur L.R., 2003, Effect of light on the microcystin content of Microcystis strain PCC7806, Appl. Environ. Microb., 69 (3), 1475-1481.
  • 46.Wilmotte A., Neefs J.-M., De Wachter R., 1994, Evolutionary affiliation of the marine nitrogen-fixing cyanobacterium Trichodesmium sp. strain NIBB 1067, derived by 16s ribosomal RNA sequence analysis, Microbiology, 140, 2159-2164.
  • 47.Yoshida M., Yoshida T., Takashima Y., Hosoda N., Hiroishi S., 2007, Dynamics of microcystin-producing and non-microcystin-producing Microcystis populations is correlated with nitrate concentration in a Japanese lake, FEMS Microbiol. Lett., 266 (1), 49-53.
  • 48.Yoshida T., Yuki Y., Lei S., Chinen H., Yoshida M., 2003, Quantitative detection of toxic strains of the cyanobacterial genus Microcystis by competitive PCR, Microbes Environ., 18 (1), 16-23.
  • 49.Zhang M., Kong F., Tan X., Yang Z., Cao H., Xing P., 2007, Biochemical, morphological, and genetic variations in Microcystis aeruginosa due to colony disaggregation, World J. Microb. Biot., 23 (5), 663-670.
  • 50.Zurawell R.W., Chen H., Burke J.M., Prepas E.E., 2005, Hepatotoxic cyanobacteria: a review of the biological importance of microcystins in freshwater environments, J. Toxicol. Env. Health B Crit., 8 (1), 1-37.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUS5-0020-0055
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