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Lactobacillus acidophilus BK13 and Lactobacillus paracasei BK57 균주가 생산한 항균물질의 anti-Helicobacter pylori 활성 및 위장상피세포에 대한 세포독성 평가

Evaluation of the anti-Helicobacter pylori and cytotoxic properties of the antimicrobial substances from Lactobacillus acidophilus BK13 and Lactobacillus paracasei BK57

  • 임은서 (동명대학교 식품영양학과)
  • Lim, Eun-Seo (Department of Food Science & Nutrition, Tongmyong University)
  • 투고 : 2015.06.03
  • 심사 : 2015.06.25
  • 발행 : 2015.06.30

초록

Lactobacillus acidophilus BK13과 Lactobacillus paracasei BK57 균주로부터 얻은 세포, 배양상등액 및 박테리오신 용액의 anti-Helicobacter pylori 활성과 위장상피세포에 대한 세포독성을 평가하였다. 실험균주를 MRS 배지 상에서 30시간 배양한 결과, L. acidophilus BK57 ($126.8{\pm}7.9mM$) 보다 L. paracasei BK57 ($155.9{\pm}7.9mM$)가 더 많은 양의 유산을 생산하였다. 또한, BK13 균주의 최대 박테리오신 활성(128 AU/ml)은 $37^{\circ}C$에서 30시간 배양 후 관찰되었으나, 이는 BK57의 활성(256 AU/ml) 보다는 낮았다. BK13 및 BK57 균주의 살아있는 세포를 H. pylori와 혼합 배양한 결과, 유산균의 초기균수에 의존하여 H. pylori의 저해효과가 나타났다. 게다가 BK13과 BK57로부터 얻은 배양상등액과 박테리오신은 H. pylori의 성장을 억제할 뿐만 아니라 위장상피세포에 대한 부착력과 urease 활성도 저해하였다. 한편, 이러한 균주들이 생산한 유산은 위암세포에 대한 세포독성 효과가 대조구보다 유의한 수준으로 높게 나타났다. 따라서 BK13과 BK57 균주의 항균물질은 위장질환의 원인균인 H. pylori를 저해시키는데 효과적이므로 이들 유산균은 H. pylori 감염으로부터 위장을 보호하는데 유용할 것으로 사료된다.

The objective of this study is to investigate the anti-Helicobacter pylori and anti-cancer activities of the live cells (LC), cell-free culture supernatants (CFCS), and bacteriocin solution (BS) obtained from Lactobacillus acidophilus BK13 and Lactobacillus paracasei BK57 strains. After incubation for 30 h in MRS broth, the concentration of lactic acid produced by L. paracasei BK57 ($155.9{\pm}10.2mM$) was higher than in MRS broth using L. acidophilus BK13 ($126.8{\pm}7.9mM$). Maximum bacteriocin activity (128 AU/ml) of BK13 strain was observed after 30 h of cultivation at $37^{\circ}C$, however its magnitude was significantly lower than that of BK57 strain (256 AU/ml). The LC of L. acidophilus BK13 and L. paracasei BK57 were able to inhibit the growth of H. pylori ATCC 43504 at different incubation times, depending on the initial inoculum of the LAB. These CFCS and BS obtained from BK13 and BK57 strains dramatically inhibited the growth, adhesive ability, and enzymatic activity of H. pylori. Meanwhile, the anti-cancer effect of the lactic acid from L. acidophilus BK13 and L. paracasei BK57 strains on AGS cells had significant differences with the control group. Therefore, these antagonistic substances-producing strains are potentially useful as new potential antimicrobial agents for the management and prevention of H. pylori infections.

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