| Literature DB >> 23844357 |
En Huang1, Liwen Zhang, Yoon-Kyung Chung, Zuoxing Zheng, Ahmed E Yousef.
Abstract
Use of bacteriocins in food preservation has received great attention in recent years. The goal of this study is to characterize enterocin RM6 from Enterococcus faecalis OSY-RM6 and investigate its efficacy against Listeria monocytogenes in cottage cheese. Enterocin RM6 was purified from E. faecalis culture supernatant using ion exchange column, multiple C18-silica cartridges, followed by reverse-phase high-performance liquid chromatography. The molecular weight of enterocin RM6 is 7145.0823 as determined by mass spectrometry (MS). Tandem mass spectrometry (MS/MS) analysis revealed that enterocin RM6 is a 70-residue cyclic peptide with a head-to-tail linkage between methionine and tryptophan residues. The peptide sequence of enterocin RM6 was further confirmed by sequencing the structural gene of the peptide. Enterocin RM6 is active against Gram-positive bacteria, including L. monocytogenes, Bacillus cereus, and methicillin-resistant Staphylococcus aureus (MRSA). Enterocin RM6 (final concentration in cottage cheese, 80 AU/mL) caused a 4-log reduction in population of L. monocytogenes inoculated in cottage cheese within 30 min of treatment. Therefore, enterocin RM6 has potential applications as a potent antimicrobial peptide against foodborne pathogens in food.Entities:
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Year: 2013 PMID: 23844357 PMCID: PMC3697273 DOI: 10.1155/2013/206917
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Preparation of crude extract of enterocin RM6.
| Purification step | Volume (mL) | Arbitrary unit (AU/mLa) | Total activity (×103 AU) | Recovery rate (%) |
|---|---|---|---|---|
| Culture supernatant | 500 | 800 | 400 | 100 |
| Cation exchange | 75 | 1600 | 120 | 30 |
| C18 silica cartridges | 60 | 1600 | 96 | 24 |
aAU/mL: the reciprocal of the highest dilution factor showing a visible inhibitory zone.
Figure 1High-performance liquid chromatography profile of the crude extract of enterocin RM6. The peak with retention time of 31.27 min (indicated by the arrow) showed antimicrobial activity against Lactobacillus cellobiosus OSU 919.
Figure 2Electrospray ionization-mass spectrometry (ESI-MS) analysis of enterocin RM6.
Figure 3Fragmentation of enterocin RM6 examined by tandem mass spectrometry (MS/MS).
Figure 4Structural gene of enterocin RM6 and the deduced peptide sequence.
Antimicrobial spectrum of enterocin RM6.
| Strainsa | Mediab | Diameter of inhibitory |
|---|---|---|
| Gram-positive bacteria | ||
|
| MRS | 17.5 |
|
| MRS | 16.8 |
|
| MRS | 11.4 |
|
| MRS | 13.4 |
|
| MRS | 10.0 |
|
| MRS | 11.1 |
|
| MRS | 14.8 |
|
| TSBYE | 7.4 |
|
| MRS | 8.4 |
|
| TSBYE | 11.3 |
|
| TSBYE | 11.2 |
|
| TSBYE | 5.8 |
|
| NB | 6.1 |
|
| NB | 12.4 |
|
| NA | 10.0 |
| Gram-negative bacteria | ||
|
| TSBYE | — |
|
| LB | — |
|
| LB | — |
aStrains obtained from the culture collection of The Ohio State University food safety laboratory. bMRS: lactobacillus MRS broth; TSBYE: tryptic soy broth supplemented with 0.6% yeast extract; NB: nutrient broth; LB: Luria-Bertani medium.
Figure 5Effect of enterocin RM6 on survival of L. monocytogenes Scott A, inoculated on cottage cheese, using different mediaa. aTSA: tryptic soy agar; PALCAM: a selective media for Listeria; MOX: modified Oxford agar. Data represent the average of two independent experiments.