Biofilm-forming bacteria with varying tolerance to peracetic acid from a paper machine

被引:14
|
作者
Rasimus, Stiina [1 ]
Kolari, Marko [2 ]
Rita, Hannu [3 ]
Hoornstra, Douwe [1 ]
Salkinoja-Salonen, Mirja [1 ]
机构
[1] Univ Helsinki, Dept Food & Environm Sci, Fac Agr & Forestry, FIN-00014 Helsinki, Finland
[2] Kemira Oyj, Espoo 02271, Finland
[3] Univ Helsinki, Dept Forest Sci Stat & Methodol, Fac Agr & Forestry, FIN-00014 Helsinki, Finland
基金
芬兰科学院;
关键词
Sphingomonas trueperi; Sphingomonas aquatilis; Biofilm; Peracetic acid; Paper machine; SP-NOV; DEINOCOCCUS-GEOTHERMALIS; SPHINGOMONAS-PAUCIMOBILIS; DRINKING-WATER; WASTE-WATER; DISINFECTION; IDENTIFICATION; RESISTANCE; INDUSTRY; MILL;
D O I
10.1007/s10295-010-0921-4
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
Biofilms cause runnability problems in paper machines and are therefore controlled with biocides. Peracetic acid is usually effective in preventing bulky biofilms. This study investigated the microbiological status of a paper machine where low concentrations (a parts per thousand currency sign15 ppm active ingredient) of peracetic acid had been used for several years. The paper machine contained a low amount of biofilms. Biofilm-forming bacteria from this environment were isolated and characterized by 16S rRNA gene sequencing, whole-cell fatty acid analysis, biochemical tests, and DNA fingerprinting. Seventy-five percent of the isolates were identified as members of the subclades Sphingomonas trueperi and S. aquatilis, and the others as species of the genera Burkholderia (B. cepacia complex), Methylobacterium, and Rhizobium. Although the isolation media were suitable for the common paper machine biofoulers Deinococcus, Meiothermus, and Pseudoxanthomonas, none of these were found, indicating that peracetic acid had prevented their growth. Spontaneous, irreversible loss of the ability to form biofilm was observed during subculturing of certain isolates of the subclade S. trueperi. The Sphingomonas isolates formed monoculture biofilms that tolerated peracetic acid at concentrations (10 ppm active ingredient) used for antifouling in paper machines. High pH and low conductivity of the process waters favored the peracetic acid tolerance of Sphingomonas sp. biofilms. This appears to be the first report on sphingomonads as biofilm formers in warm water using industries.
引用
收藏
页码:1379 / 1390
页数:12
相关论文
共 50 条
  • [41] Effective Treatment of Tannery Effluent by Biofilm-Forming Bacteria and Evaluation of their Toxicity Reduction
    Maurya, Annapurna
    Kumar, Rajesh
    Raj, Abhay
    WATER AIR AND SOIL POLLUTION, 2025, 236 (02):
  • [42] Isolation and identification of early marine biofilm-forming bacteria on commercial paint surface
    Amin, Murni Noor Al
    Dagang, Wan Rosmiza Zana Wan
    Malek, Nik Ahmad Nizam Nik
    Jamaluddin, Haryati
    MALAYSIAN JOURNAL OF MICROBIOLOGY, 2021, 17 (02) : 130 - 142
  • [43] Biofilm-Forming Ability of Phytopathogenic Bacteria: A Review of its Involvement in Plant Stress
    Carezzano, Maria Evangelina
    Rovey, Maria Fernanda Paletti
    Cappellari, Lorena del Rosario
    Gallarato, Lucas Antonio
    Bogino, Pablo
    Oliva, Maria de las Mercedes
    Giordano, Walter
    PLANTS-BASEL, 2023, 12 (11):
  • [44] Inoculation of culture-negative porcine semen with novel biofilm-forming bacteria
    Clark, S.
    Ness, A.
    Baldrighi, J.
    Borst, L.
    Maddox, C.
    Payne, B.
    REPRODUCTION FERTILITY AND DEVELOPMENT, 2008, 20 (01) : 85 - 85
  • [45] Testing a Method for Evaluation of the Viability of Biofilm-Forming Bacteria after Exposure to Disinfectants
    U. M. Nemchenko
    N. M. Voropaeva
    K. O. Sitnikova
    N. L. Belkova
    E. D. Savilov
    Bulletin of Experimental Biology and Medicine, 2023, 176 : 60 - 63
  • [46] Photocatalytic effect of N-TiO2 conjugated with folic acid against biofilm-forming resistant bacteria
    Oliveira, Raphaella I. S.
    de Oliveira, Iracema N.
    de Conto, Juliana F.
    de Souza, Augusto M.
    de Medeiros, Silvia R. Batistuzzo
    Egues, Silvia M.
    Padilha, Francine F.
    Hernandez-Macedo, Maria L.
    HELIYON, 2023, 9 (11)
  • [47] Bactericidal Activity of Usnic Acid-Chitosan Nanoparticles against Persister Cells of Biofilm-Forming Pathogenic Bacteria
    Khan, Fazlurrahman
    Yu, Hongsik
    Kim, Young-Mog
    MARINE DRUGS, 2020, 18 (05)
  • [48] Identification and localization of extraradicular biofilm-forming bacteria associated with refractory endodontic pathogens
    Noguchi, N
    Noiri, Y
    Narimatsu, M
    Ebisu, S
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2005, 71 (12) : 8738 - 8743
  • [49] Increase in bacterial biosurfactant production by co-cultivation with biofilm-forming bacteria
    Alves, A. R.
    Sequeira, A. M.
    Cunha, A.
    LETTERS IN APPLIED MICROBIOLOGY, 2019, 69 (01) : 79 - 86
  • [50] Characterization of Biofilm-Forming Marine Bacteria and Their Effect on Attachment and Germination of Algal Spores
    Beleneva, I. A.
    Skriptsova, A. V.
    Svetashev, V. I.
    MICROBIOLOGY, 2017, 86 (03) : 317 - 329