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Interaction of Aeromonas Strains with Lactic Acid Bacteria Via Caco-2 Cells

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Date 2013 Nov 19
PMID 24242240
Citations 2
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Abstract

The genus Aeromonas includes some species that have now been identified as human pathogens of significant medical importance. We investigated the ability of 13 selected Aeromonas strains belonging to nine species isolated from clinical cases (n = 5), environmental waters (n = 5), and fish (n = 3) to adhere to and translocate Caco-2 cells in the absence and presence of two lactic acid bacteria (LAB), i.e., Lactobacillus acidophilus and Bifidobacterium breve. Aeromonas isolates were also assessed for their cytotoxicity, the presence of virulence genes, and hemolysin production. Among the clinical isolates, one strain of Aeromonas veronii biovar veronii and two strains of Aeromonas hydrophila carried cytotoxin (act), heat-labile toxin (alt), hemolysin (hlyA), and aerolysin (aerA) genes, were cytotoxic to Vero cells, produced hemolysin, and showed higher adherence to Caco-2 cells. In contrast, this was seen in only one environmental strain, a strain of A. veronii biovar sobria. When Aeromonas strains were coinoculated with LAB onto Caco-2 cells, their level of adhesion was reduced. However, their rate of translocation in the presence of LAB increased and was significantly (P < 0.05) higher among fish strains. We suggest that either the interaction between Aeromonas and LAB strains could have a detrimental effect on the Caco-2 cells, allowing the Aeromonas to translocate more readily, or the presence of the LAB stimulated the Aeromonas strains to produce more toxins and/or increase their translocation rate.

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References
1.
Vazquez-Juarez R, Romero M, Ascencio F . Adhesive properties of a LamB-like outer-membrane protein and its contribution to Aeromonas veronii adhesion. J Appl Microbiol. 2004; 96(4):700-8. DOI: 10.1111/j.1365-2672.2004.02177.x. View

2.
Gudmundsdottir B, Bjornsdottir B . Vaccination against atypical furunculosis and winter ulcer disease of fish. Vaccine. 2007; 25(30):5512-23. DOI: 10.1016/j.vaccine.2007.02.009. View

3.
Khajanchi B, Fadl A, Borchardt M, Berg R, Horneman A, Stemper M . Distribution of virulence factors and molecular fingerprinting of Aeromonas species isolates from water and clinical samples: suggestive evidence of water-to-human transmission. Appl Environ Microbiol. 2010; 76(7):2313-25. PMC: 2849238. DOI: 10.1128/AEM.02535-09. View

4.
Kilic A, Pavlova S, Ma W, Tao L . Analysis of Lactobacillus phages and bacteriocins in American dairy products and characterization of a phage isolated from yogurt. Appl Environ Microbiol. 1996; 62(6):2111-6. PMC: 167989. DOI: 10.1128/aem.62.6.2111-2116.1996. View

5.
Ottaviani D, Parlani C, Citterio B, Masini L, Leoni F, Canonico C . Putative virulence properties of Aeromonas strains isolated from food, environmental and clinical sources in Italy: a comparative study. Int J Food Microbiol. 2010; 144(3):538-45. DOI: 10.1016/j.ijfoodmicro.2010.11.020. View