| Literature DB >> 29563542 |
Kuili Fang1, Xing Jin1, Seok Hoon Hong2.
Abstract
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Year: 2018 PMID: 29563542 PMCID: PMC5862908 DOI: 10.1038/s41598-018-23180-1
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Single- and dual-species biofilm formation of probiotic E. coli and pathogens. (A) Scheme of dual-species biofilm quantification. (B) Single- and dual-species biofilms were formed in polypropylene culture tubes in M9G for 24 h at 37 °C without shaking, and viable biofilm cells were quantified by colony forming units (CFU). Probiotics E. coli Nissle 1917 (EcN), commensal E. coli BW25113 (BW), enterohemorrhagic E. coli EDL933 (EHEC), P. aeruginosa PAO1 (PA), S. aureus JE2 (SA), and S. epidermidis RP62A (SE) were tested to determine the effect of EcN towards biofilm formation of the other bacteria. (C) Planktonic cell density at the same condition with (B) was quantified. Significant differences of pathogenic biofilms in dual-species biofilms (or planktonic cells) to its single-species biofilms (or planktonic cells) were analyzed by a two-tailed t-test for (B) and (C). Each data point is the average of at least six independent cultures, and one standard deviation is shown. * represents a significant difference with a p-value < 0.01. NS indicates ‘not significant’. (D) Single- and dual-species biofilm images of EcN, BW, and EHEC using a confocal microscope. Biofilms were formed in 24-well plates in M9G medium at 37 °C for 24 h. Scale bar represents 100 μm.
Figure 2Effect of cell-free supernatants in EHEC biofilm formation. (A) EHEC biofilm formation in EcN, BW, and EHEC supernatants at 37 °C for 24 h. Each data point is the average of at least six independent cultures, and one standard deviation is shown. * represents a significant difference with a p-value < 0.01 by a two-tailed t-test. (B) Protein profiles of EcN, BW, and EHEC supernatants on SDS-PAGE gel. Full SDS-PAGE gel is shown in Supplementary Fig. 8A. (C) EHEC biofilm formation in heated EcN supernatant and EcN supernatants with different molecular weights at 37 °C for 24 h. Each data point is the average of at least two independent cultures with triplicates, and one standard deviation is shown. * represents a significant difference with a p-value < 0.01 by a two-tailed t-test.
Figure 3Analysis of proteins secreted from EcN and effect of DegP on EHEC biofilms. (A) The number of proteins in the EcN, BW, and EHEC supernatants identified from mass spectrometry analysis. (B) Single-species biofilms of EcN mutants (EcN∆degP (∆degP), EcN∆degP∆kan (∆degP∆kan), EcN∆degP∆kan/pCA24N-degP (∆degP∆kan/PdegP), EcN∆hslU (∆hslU), and EcN∆sat (∆sat)) and dual-species biofilms between EcN mutants and EHEC were formed in M9G for 24 h at 37 °C without shaking. (C) EHEC biofilm formation in supernatants from EcN wild-type and EcN∆degP at 37 °C for 24 h. (D) DegP protein purified through Strep-tag was shown on the SDS-PAGE gel. DegP with Strep-tag is 50.4 kDa, indicated with an arrow. Full SDS-PAGE gel is shown in Supplementary Fig. 8B. EHEC biofilms (E) and planktonic cells (F) with different concentrations of DegP at 37 °C for 24 h. (G) Dual biofilms between EcN∆degP∆kan and EHEC with different concentrations of DegP at 37 °C for 24 h. For (B), (C), (E), (F), and (G), each data point is the average of at least two independent cultures with triplicates, and one standard deviation is shown. * represents a significant difference with a p-value < 0.01 by a two-tailed t-test.
Figure 4Effect of DegP on SA and SE biofilms. (A) Dual-species biofilms between EcN∆degP and SA or SE in M9G for 24 h at 37 °C without shaking. (B) SA and SE biofilm formation in supernatants from EcN wild-type and EcN∆degP at 37 °C for 24 h. Each data point is the average of at least two independent cultures with triplicates, and one standard deviation is shown. * represents a significant difference with a p-value < 0.01 by a two-tailed t-test.
Strains and plasmids used in this study.
| Strains and plasmids | Genotype/relevant characteristics | Source or reference |
|---|---|---|
|
| ||
| EcN wild-type strain |
[ | |
| EcN strR | EcN with streptomycin resistance |
[ |
| EcN∆m | EcN Δ | This study |
| EcN∆ | EcN lacking | This study |
| EcN∆ | EcN strR lacking | This study |
| EcN∆ | EcN lacking | This study |
| EcN∆ | EcN lacking | This study |
| Enterohemorrhagic | ATCC | |
|
[ | ||
| BW25113 with kanamycin resistance, Δ |
[ | |
| PAO1 wild-type strain |
[ | |
| JE2 wild-type strain |
[ | |
| RP62A wild-type strain |
[ | |
|
| ||
| pJL1-sfGFP | KanR, |
[ |
| pDsRed-express | AmpR, |
[ |
| pKD4 | AmpR, KanR cassette |
[ |
| pKD46 | AmpR, |
[ |
| pCP20 | AmpR, CmR, temperature-sensitive replication and thermal induction of Flp recombinase |
[ |
| pCA24N | CmR; |
[ |
| pCA24N- | CmR, | This study |
| pCA24N-BW- | CmR, | This study |
| pJL1- | KanR, | This study |
strR, kanR, ampR, and cmR indicate streptomycin, kanamycin, ampicillin, and chloramphenicol resistance, respectively.