Accesso libero

Changes in protistan abundance and bacterial activity in response to the addition of eukaryotic inhibitors to natural lake water

INFORMAZIONI SU QUESTO ARTICOLO

Cita

Adamczewski T., Chróst R.J., Kalinowska K., Skowrońska A. 2010 – Relationships between bacteria and heterotrophic nanoflagellates in lake water examined by different techniques controlling grazing pressure – Aquat. Microb. Ecol. 60: 203-213.10.3354/ame01420Search in Google Scholar

Ammerman J.W., Fuhrman J.A., Hagström Ĺ., Azam F. 1984 – Bacterioplankton growth in seawater: I. Growth kinetics and cellular characteristics in seawater cultures – Mar. Ecol. Prog. Ser. 18: 31-39.10.3354/meps018031Search in Google Scholar

Arrar E.J., Collins G.B. 1997 – Method 445.0. In vitro determination of chlorophyll a and phenophytin a in marine and freshwater algae by fluorescence. National Exposure Research Laboratory – Office of Research and Development. U.S. Environmental Protection Agency.Search in Google Scholar

Badalucco L., Pomare F., Grego S., Landi L., Nannipieri P. 1994 – Activity and degradation of streptomycin and cycloheximide in soil – Biol. Fertil. Soils 18: 334-340.10.1007/BF00570637Search in Google Scholar

Carlson R.E. 1977 – A trophic state index for lakes – Limnol. Oceanogr. 22: 361-369.10.4319/lo.1977.22.2.0361Search in Google Scholar

Carrias J.-F., Amblard C., Bourdier G. 1996 – Protistan bacterivory in an oligomesotrophic lake: importance of attached ciliates and flagellates – Microb. Ecol. 31: 249-268.10.1007/BF001715708661531Search in Google Scholar

Chabaud S., Andres Y., Lakel A., Le Cloirec P. 2006 – Bacteria removal in septic effluent: influence of biofilm and protozoa – Water Res. 40: 3109-3114.10.1016/j.watres.2006.06.00816899272Search in Google Scholar

Chróst R.J., Overbeck J., Wcisło R. 1988 – [3H] thymidine method for estimating bacterial growth rates and production in lake water: re-examination and methodological comments – Acta Microbiol. Pol. 37: 95-112.Search in Google Scholar

Cimbleris A.C.P., Kalff J. 2003 – Volumetric and aerial rates of heterotrophic bacterial production in epi- and hypolimnia: the role of nutrients and system morphometry – Hydrobiologia 500: 193-202.10.1007/978-94-007-1084-9_13Search in Google Scholar

Comte J., Jacquet S., Viboud S., Fontvieille D., Millery A., Paolini G., Domaizon I. 2006 – Microbial community structure and dynamics in the largest natural French lake (Lake Bourget) – Microb. Ecol. 52: 72-89.10.1007/s00248-004-0230-416733620Search in Google Scholar

DeLorenzo M.E., Lewitus A.J., Scott G.I., Ross P.E. 2001 – Use of metabolic inhibitors to characterize ecological interactions in an estuarine microbial food web – Microb. Ecol. 42: 317-327.10.1007/s00248-001-0004-112024257Search in Google Scholar

Foissner W., Berger H., Schaumburg J. 1999 – Identification and ecology of limnetic plankton ciliates – Informationsberichte des Bayer, Landesamt für Wasserwirtschaft, München, 793p.Search in Google Scholar

Hahn M.W., Höfle M.G. 2001 – Grazing of protozoa and its effect on populations of aquatic bacteria – FEMS Microbiol. Ecol. 35: 113-121.10.1111/j.1574-6941.2001.tb00794.x11295449Search in Google Scholar

Hitchman R.B., Jones H.L.J. 2000 – The role of mixotrophic protists in the population dynamics of the microbial food web in a small artificial ponds – Freshwater Biol. 43: 231-241.10.1046/j.1365-2427.2000.00541.xSearch in Google Scholar

Jezbera J., Horňák K., Šimek K. 2006 – Prey selectivity of bacterivorous protists in different size fractions of reservoir water amended with nutrients – Environ. Microbiol. 8: 1330-1339.10.1111/j.1462-2920.2006.01026.xSearch in Google Scholar

Kalinowska K., Napiórkowska-Krzebietke A., Bogacka-Kapusta E., Hutorowicz J., Pyka J., Stawecki K., Kapusta A., Chybowski Ł. 2017 – Microbial and classic food web components under ice cover in eutrophic lakes of different morphometry and fisheries management – Oceanol. Hydrobiol. St. 46: 271-282.10.1515/ohs-2017-0029Search in Google Scholar

Koroleff F. 1983 – Determination of phosphorus. Chemistry of the element in seawater – In: Methods of seawater analysis (Eds) K. Grasshoff, M. Erhardt, K. Kremling, Verlag Chemie, Weinheim: 125-139.Search in Google Scholar

Kota S., Borden R.C., Barlaz M.A. 1999 – Influence of protozoan grazing on contaminant biodegradation – FEMS Microbiol. Ecol. 29: 179-189.10.1111/j.1574-6941.1999.tb00609.xSearch in Google Scholar

McCambridge J., McMeekin T.A. 1980 – Relative effects of bacterial and protozoan predators on survival of Escherichia coli in estuarine water samples – Appl. Environ. Microbiol. 40: 907-911.10.1128/aem.40.5.907-911.1980Search in Google Scholar

Müller H., Schlegel A. 1999 – Responses of three freshwater planktonic ciliates with different feeding modes to cryptophyte and diatom prey – Aquat. Microb. Ecol. 17: 49-60.10.3354/ame017049Search in Google Scholar

Newell S.Y., Sherr B.F., Sherr E.B., Fallon R.D. 1983 – Bacterial response to presence of eukaryote inhibitors in water from a coastal marine environment – Mar. Environ. Res. 10: 147-157.10.1016/0141-1136(83)90007-7Search in Google Scholar

Pang M., Lin X., Liu J., Guo C., Gao S., Du H., Lu C., Liu J. 2016 – Identification of Aeromonas hydrophila genes preferentially expressed after phagocytosis by Tetrahymena and involvement of methionine sulfoxide reductases – Front. Cell. Infect. Microbiol. 6: 199-211.10.3389/fcimb.2016.00199518398828083518Search in Google Scholar

Pernthaler J. 2005 – Predation on prokaryotes in the water column and its ecological implications – Nat. Rev. Microbiol. 3: 537-546.10.1038/nrmicro118015953930Search in Google Scholar

Porter K.G., Feig Y.S. 1980 – The use of DAPI for identifying and counting aquatic microflora – Limnol. Oceanogr. 25: 943-948.10.4319/lo.1980.25.5.0943Search in Google Scholar

Post D.M., Pace M.L., Hairston N.G. 2000 – Ecosystem size determines food-chain length in lakes – Nature 405: 1047-1049.10.1038/3501656510890443Search in Google Scholar

Psenner R. 1993 – Determination of size and morphology of aquatic bacteria by automated image analysis – In: Handbook of methods in aquatic microbial ecology (Eds) P.F. Kemp, B.F. Sherr, E.B. Sherr, J.J. Cole, CRC Press, Boca Raton, FL: 339-345.Search in Google Scholar

Sanders R.W., Porter K.G. 1986 – Use of metabolic inhibitors to estimate protozooplankton grazing and bacterial production in a monomictic eutrophic lake with an anaerobic hypolimnion – Appl. Environ. Microbiol. 52: 101-107.10.1128/aem.52.1.101-107.198620340116347096Search in Google Scholar

Sanders R.W., Porter K.G., Bennett S.J., DeBiase A.E. 1989 – Seasonal patterns of bacterivory by flagellates, ciliates, rotifers, and cladocerans in a freshwater planktonic community – Limnol. Oceanogr. 34: 673-687.Search in Google Scholar

Sherr B.F., Sherr E.B., Andrew T.L., Fallon R.D., Newell S.Y. 1986 – Trophic interactions between heterotrophic Protozoa and bacterioplankton in estuarine water analyzed with selective metabolic inhibitors – Mar. Ecol. Prog. Ser. 32: 169-179.10.3354/meps032169Search in Google Scholar

Shimeta J., Cook P.L.M. 2011 – Testing assumptions of the eukaryotic inhibitor method for investigating interactions between aquatic protozoa and bacteria, applied to marine sediments – Limnol. Oceanogr.: Methods 9: 288-295.Search in Google Scholar

Šimek K., Grujčić V., Hahn M.W., Horòák K., Jezl J., Kasalický V., Nedoma J., Salcher M.M.., Shabarova T. 2018 – Bacterial prey food characteristics modulate community growth response of freshwater bacterivorous flagellates – Limnol. Oceanogr. 63: 484-502.10.1002/lno.10759Search in Google Scholar

Šimek K., Horňák K., Jezbera J., Masin M., Nedoma J., Gasol J.M., Schauer M. 2005 – Influence of top-down and bottom-up manipulations on the R-BT065 subcluster of β-Proteobacteria, an abundant group in bacterioplankton of a freshwater reservoir – Appl. Environ. Microbiol. 71: 2381-2390.Search in Google Scholar

Šimek K., Horňák K., Jezbera J., Nedoma J., Vrba J., Straškrábová V., Macek M., Dolan J.R., Hahn M. 2006 – Maximum growth rates and possible life strategies of different bacterioplankton groups in relation to phosphorus availability in a freshwater reservoir – Environ. Microbiol. 8: 1613-1624.10.1111/j.1462-2920.2006.01053.x16913921Search in Google Scholar

Šimek K., Jezbera J., Horňák K., Vrba J., Seda J. 2004 – Role of diatom-attached choanoflagellates of the genus Salpinogoeca as pelagic bacterivores – Aquat. Microb. Ecol. 36: 257-269.10.3354/ame036257Search in Google Scholar

Šimek K., Jürgens K., Nedoma J., Comerma M., Armengol J. 2000 – Ecological role and bacterial grazing of Halteria spp.: small freshwater oligotrichs as dominant pelagic ciliate bacterivores – Aquat. Microb. Ecol. 22: 43-56.10.3354/ame022043Search in Google Scholar

Smith A.W. 2010 – Protozoa and pathogenic bacteria; lessons learned from Legionella pneumophila – J. Eukaryot. Microbiol. 52: 27S-28S.10.1111/j.1550-7408.2005.05202003_2_4.xSearch in Google Scholar

Sonntag B., Posch T., Klammer S., Teubner K., Psenner R. 2006 – Phagotrophic ciliates and flagellates in an oligotrophic, deep, alpine lake: contrasting variability with seasons and depths – Aquat. Microb. Ecol. 43: 193-207.Search in Google Scholar

Suhama M., Hanson E.D. 1971 – The role of protein synthesis in prefission morphogenesis of Paramecium aurelia – J. Exp. Zool. 177: 463-468.10.1002/jez.14017704085130028Search in Google Scholar

Taylor G.T., Pace M.L. 1987 – Validity of eucaryote inhibitors for assessing production and grazing mortality of marine bacterioplankton – Appl. Environ. Microbiol. 53: 119-128.10.1128/aem.53.1.119-128.198720361416347253Search in Google Scholar

Tremaine S.C., Mills A.L. 1987 – Inadequacy of the eucaryote inhibitor cycloheximide in studies of protozoan grazing on bacteria at the freshwater-sediment interface – Appl. Environ. Microbiol. 53: 1969-1972.10.1128/aem.53.8.1969-1972.198720403716347423Search in Google Scholar

Wcisło R., Chróst R.J. 2000 – Survival of Escherichia coli in freshwater – Pol. J. Environ. Studies 9: 215-222.Search in Google Scholar

Weisse T. 1990 – Trophic interactions among heterotrophic microplankton, nanoplankton, and bacteria in Lake Constance – Hydrobiologia 191: 111-122.Search in Google Scholar

Weithoff G., Moser M., Kamjunke N., Gaedke U., Weisse T. 2010 – Lake morphometry and wind exposure may shape the plankton community structure in acidic mining lakes – Limnologica 40: 161-166.10.1016/j.limno.2009.11.002351257523225914Search in Google Scholar

Zingel P., Ott I. 2000 – Vertical distribution of planktonic ciliates in strongly stratified temperate lake – Hydrobiologia 435: 19-26.10.1023/A:1004021103681Search in Google Scholar

eISSN:
2545-059X
Lingua:
Inglese
Frequenza di pubblicazione:
4 volte all'anno
Argomenti della rivista:
Life Sciences, Zoology, other