Cyanobacteria as bioindicators and bioreporters of environmental analysis in aquatic ecosystems
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  • 作者:Pilar Mateo ; Francisco Leganés ; Elvira Perona…
  • 关键词:Environmental monitoring ; Eutrophication ; Nutrients ; Toxicology ; Transgenic cyanobacteria
  • 刊名:Biodiversity & Conservation
  • 出版年:2015
  • 出版时间:April 2015
  • 年:2015
  • 卷:24
  • 期:4
  • 页码:909-948
  • 全文大小:1,155 KB
  • 参考文献:Aboal M (1988) Aportación al conocimiento de las algas epicontinentales del sudeste de Espa?a. III: Cianofíceas (Cyanophyceae Schaffner 1909). Anales Jardín Botánico de Madrid 45:3-6
    Aboal M, Puig MA, Mateo P, Perona E (2002) Implications of cyanophyte toxicity on biological monitoring of calcareous streams in north-east Spain. J Appl Phycol 14:49-6. doi:10.-023/?a:-015298905510
    Aldehni MF, Forchhammer K (2006) Analysis of a non-canonical NtcA-dependent promoter in Synechococcus elongatus and its regulation by NtcA and P-II. Arch Microbiol 184:378-86. doi:10.-007/?s00203-005-0056-6 PubMed
    Bachmann T (2003) Transforming cyanobacteria into bioreporters of biological relevance. Trends Biotechnol 21:247-49. doi:10.-016/?S0167-7799(03)00114-8 PubMed
    Barinova S, Tavassi M (2009) Study of seasonal influences on algal biodiversity in the River Yarqon (central Israel) by bio-indication and canonical correspondence analysis (CCA). Turk J Bot 33:353-72
    Barinova S, Tavassi M, Nevo E (2006) Algal indicator system of environmental variables in the Hadera River basin, central Israel. Plant Biosyst 140:65-9
    Barinova S, Medvedeva L, Nevo E (2008) Regional influences on algal biodiversity in two polluted rivers of Eurasia (Rudnaya River, Russia, and Qishon River, Israel) by bioindication and canonical correspondence analysis. Appl Ecol Environ Res 6:29-9
    Barinova S, Kukhaleishvili L, Nevo E, Janelidze Z (2011) Diversity and ecology of algae in the Algeti National Park as a part of the Georgian system of protected areas. Turk J Bot 35:729-74
    Barran-Berdon AL, Rodea-Palomares I, Leganes F, Fernandez-Pi?as F (2011) Free Ca2+ as an early intracellular biomarker of exposure of cyanobacteria to environmental pollution. Anal Bioanal Chem 400:1015-029. doi:10.-007/?s00216-010-4209-3 PubMed
    Belkin S (2003) Microbial whole-cell sensing systems of environmental pollutants. Curr Opin Microbiol 6:206-12PubMed
    Berrendero E, Perona E, Mateo P (2008) Genetic and morphological characterization of Rivularia and Calothrix (Nostocales, Cyanobacteria) from running water. Int J Syst Evol Microbiol 58:447-60. doi:10.-099/?ijs.-.-5273-0 PubMed
    Berridge MJ, Lipp P, Bootman MD (2000) The versatility and universality of calcium signalling. Nat Rev Mol Cell Biol 1:11-1. doi:10.-038/-5036035 PubMed
    Berridge MJ, Bootman MD, Roderick HL (2003) Calcium signalling: dynamics, homeostasis and remodelling. Nat Rev Mol Cell Biol 4:517-29. doi:10.-038/?nrm1155 PubMed
    Bhaya D, Schwarz R, Grossman A (2000) Molecular responses to environmental stress. The ecology of cyanobacteria. Their diversity in time and space. Kluwer, Dordrecht, pp 397-42
    Bostrom B, Persson G, Broberg B (1988) Bioavailability of different phosphorous forms in fresh-water systems. Hydrobiologia 170:133-55. doi:10.-007/?bf00024902
    Boyanapalli R, Bullerjahn GS, Pohl C, Croot PL, Boyd PW, McKay RML (2007) Luminescent whole-cell cyanobacterial bioreporter for measuring Fe availability in diverse marine environments. Appl Environ Microbiol 73:1019-024. doi:10.-128/?aem.-1670-06 PubMed Central PubMed
    Branchini BR, Southworth TL, Khattak NF, Michelini E, Roda A (2005) Red- and green-emitting firefly luciferase mutants for bioluminescent reporter applications. Anal Biochem 345:140-48. doi:10.-016/?j.?ab.-005.-7.-15 PubMed
    Branco LHZ, Pereira JL (2002) Evaluation of seasonal dynamics and bioindication potential of macroalgal communities in a polluted tropical stream. Arch Hydrobiol 155:147-61
    Branco LHZ, Necchi Júnior O, Branco CCZ (2001) Ecological distribution of Cyanophyceae in lotic ecosystems of S?o Paulo State. Braz J Bot 24:99-08
    Bullerjahn GS, Boyanapalli R, Rozmarynowycz MJ, McKay RML (2010) Cyanobacterial bioreporters as sensors of nutrient availability. In: Belkin S, Gu MB (eds) Whole cell sensing systems II: applications, vol 118. Advances in biochemical engineering-biotechnology. Springer, Berlin, pp 165-88. doi:10.-007/-0_-009_-3
    Cai YP, Wolk CP (1997) Nitrogen deprivation of Anabaena sp strain PCC 7120 elicits rapid activation of a gene cluster that is essential for uptake and utilization of nitrate. J Bacteriol 179:258-66PubMed Central PubMed
    Cantonati M (2008) Cyanoprokaryotes and algae other than diatoms in springs and streams of the Dolomiti Bellunesi National Park (Northern Italy). Arch Hydrobiol Algol Stud 126:113-36
    Cantonati M, Rott E, Pipp E (1996) Ecology of cyanophytes in mountain springs of the river Sarca catchment (Adamello-Brenta Regional Park, Trentino, Northern Italy). Arch Hydrobiol Algol Stud 83:145-62
    Cantonati M, Gerecke R, Bertuzzi E (2006) Springs of the Alps–sensitive ecosystems to environmental change: from biodiversity assessments to long-term studies. Hydrobiologia 562:59-6
    Carignan V, Villard MA (2002) Selecting indicator species to monitor ecological integrity: a review. Environ Monit Assess 78:45-1. doi:10.-023/?a:-0161367235
  • 作者单位:Pilar Mateo (1)
    Francisco Leganés (1)
    Elvira Perona (1)
    Virginia Loza (1)
    Francisca Fernández-Pi?as (1)

    1. Departamento de Biología, Universidad Autónoma de Madrid, Cantoblanco, 28049, Madrid, Spain
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Evolutionary Biology
    Plant Sciences
    Tree Biology
  • 出版者:Springer Netherlands
  • ISSN:1572-9710
文摘
Knowledge of the incidence of anthropogenic pressure on water ecosystems is one of the main focus of integrated water resource management. The use of biological methods to assess water quality is of particular importance since organisms show an integrating response to their environment. Tolerances or ecological ranges of individual species can differ depending on the taxon, which leads to distinct bioindicator values of cyanobacterial taxa. In addition, a number of morphological and physiological features are known to relate with the environment in which they occur, which makes them excellent environmental indicators. Therefore, we review literature data of the main cyanobacterial methods used to obtain information about changes in running water quality, mainly related to eutrophication processes, which are found as the main cause of disturbance in rivers, with the focus on benthic cyanobacteria, as habitat recommended for monitoring studies. Further, their trophic independence and ease of cultivation make them very useful in the field of bioreporters of environmental monitoring and ecotoxicology. In fact, several cyanobacterial strains have been already genetically engineered to construct bioreporters which respond to different types of pollutants as well as limiting nutrients. The potential of cyanobacteria both as in situ bioindicators as well as bioreporters of environmental analysis in aquatic ecosystems will be discussed.

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