Community structure of biofilms on ennobled stainless steel in Baltic Sea water

被引:16
|
作者
Kolari, M [1 ]
Mattila, K [1 ]
Mikkola, R [1 ]
Salkinoja-Salonen, MS [1 ]
机构
[1] Univ Helsinki, Bioctr, Dept Appl Chem & Microbiol, FIN-00014 Helsinki, Finland
关键词
biofilms; stainless steel; Baltic Sea; ennoblement; CLSM; in situ hybridization; fluorescent beads;
D O I
10.1038/sj.jim.2900588
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Stainless steel samples (AISI 316) were ennobled in a laboratory simulator with natural Baltic Sea water. After completion of ennoblement (increase of open circuit potential of ca 400 mV), the biofilm on the steel surface was characterized using confocal laser scanning microscopy (CLSM) in combination with functional and phylogenetic stains. The biofilm consisted of microbial cell clusters covering 10-20% of the surface. The clusters were loaf-formed, with a basal diameter of 20-150 mu m, 5-20 per mm(-2), each holding >10(4) cells in a density of 1-5 x 10(7) cells mm(-3). The typical cluster contained mainly small Gram-negative bacteria (binding the EUB338 probe when hybridized in situ on the steel surface), and often carried one to three spherical colonies, either homogeneously composed of large Gram-negative cocci or more often small bacterial rods in high density, 10(8)-10(9) cells mm(-3). The clusters in live biofilms contained no pores, and clusters over 25 mu m in diameter had a core nonpenetrable to fluorescent nucleic acid stains and ConA lectin stain. Fluorescently-tagged ConA stained cells at a depth of <5 mu m, indicating the presence of cells with alpha-D-mannosyl and alpha-D-glucosyl residues on surfaces, Ethidium bromide (log K-ow-0.38) penetrated deeper (17 mu m in 15 min, corresponding to >10 cells in a stack) into the cluster than did the less polar dyes SYTO 16 (log K-ow 1.48) and acridine orange (log K-ow 1.24), which stained five cells in a stack. Fluorescent hydrophobic and hydrophilic latex beads (diameter 0,02, 0.1 or 1.0 mu m) coated patchwise the cluster surface facing the water, but penetrated only to depths of less than or equal to 2 mu m indicating a permeability barrier. About 1/3 of the stainable cells hybridized in situ with Alf1b, while fewer than 1/7 hybridized to GAM42, probes targeted towards alpha- and gamma-Proteobacferia, respectively. Our results represent a microscopic description of an ennobling biofilm, where the ennoblement could follow the sequence of redox events as suggested by the model of Dickinson and Lewandowski (1996) for the structure of corrosive biofilms on a steel surface.
引用
收藏
页码:261 / 274
页数:14
相关论文
共 50 条
  • [1] Biofilms, mains water and stainless steel
    Percival, SL
    Knapp, JS
    Edyvean, RGJ
    Wales, DS
    WATER RESEARCH, 1998, 32 (07) : 2187 - 2201
  • [2] Impact of biological factors on the ennoblement of stainless steel in Baltic seawater
    Mattila, K
    Carpen, L
    Raaska, L
    Alakomi, HL
    Hakkarainen, T
    Salkinoja-Salonen, MS
    JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2000, 24 (06) : 410 - 420
  • [3] Innovative Control of Biofilms on Stainless Steel Surfaces Using Electrolyzed Water in the Dairy Industry
    Jimenez-Pichardo, Rodrigo
    Hernandez-Martinez, Iriana
    Regalado-Gonzalez, Carlos
    Santos-Cruz, Jose
    Meas-Vong, Yunny
    Wacher-Rodarte, Maria del Carmen
    Carrillo-Reyes, Julian
    Sanchez-Ortega, Irais
    Garcia-Almendarez, Blanca Estela
    FOODS, 2021, 10 (01)
  • [4] Cathodic behaviour of stainless steel in coastal Indian seawater: calcareous deposits overwhelm biofilms
    Eashwar, M.
    Subramanian, G.
    Palanichamy, S.
    Rajagopal, G.
    Madhu, S.
    Kamaraj, P.
    BIOFOULING, 2009, 25 (03) : 191 - 201
  • [5] Transfer of bacteria between stainless steel and chicken meat: A CLSM and DGGE study of biofilms
    Al-Adawi, Afraa Said
    Gaylarde, Christine C.
    Sunner, Jan
    Beech, Iwona B.
    AIMS MICROBIOLOGY, 2016, 2 (03): : 340 - 358
  • [6] Bacterial biofilms on cathodically protected stainless steel
    deSaravia, SGG
    deMele, MFL
    Videla, HA
    Edyvean, RGJ
    BIOFOULING, 1997, 11 (01) : 1 - 17
  • [7] Linking denitrifier community structure and prevalent biogeochemical parameters in the pelagial of the central Baltic Proper (Baltic Sea)
    Hannig, Michael
    Braker, Gesche
    Dippner, Joachim
    Juergens, Klaus
    FEMS MICROBIOLOGY ECOLOGY, 2006, 57 (02) : 260 - 271
  • [8] Planktonic Ciliates of the Neva Estuary (Baltic Sea): Community Structure and Spatial Distribution
    Mironova, Ekaterina
    Telesh, Irena
    Skarlato, Sergei
    ACTA PROTOZOOLOGICA, 2013, 52 (01) : 13 - 23
  • [9] Raman Mapping of Intact Biofilms on Stainless Steel Surfaces
    Nguyen, Julie K.
    Heighton, Lynne
    Xu, Yunfeng
    Nou, Xiangwu
    Schmidt, Walter F.
    SENSING FOR AGRICULTURE AND FOOD QUALITY AND SAFETY VIII, 2016, 9864
  • [10] Impacts of nutrient enrichment and sediment on phytoplankton community structure in the northern Baltic Sea
    Lagus, Annika
    Suomela, Janne
    Helminen, Harri
    Sipura, Jaana
    HYDROBIOLOGIA, 2007, 579 (1) : 351 - 368