Oral-Derived Bacterial Flora Defends Its Domain by Recognizing and Killing Intruders-A Molecular Analysis Using Escherichia coli as a Model Intestinal Bacterium

Oral-Derived Bacterial Flora Defends Its Domain by Recognizing and Killing Intruders-A Molecular Analysis Using Escherichia coli as a Model Intestinal Bacterium
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DOI:
10.1007/s00248-010-9708-4
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发表时间:
2010-10-01
期刊:
影响因子:
3.6
通讯作者:
Shi, Wenyuan
Shi, Wenyuan
中科院分区:
生物学2区
文献类型:
--
作者:
He, Xuesong;Tian, Yan;Shi, Wenyuan

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Within the same human gastrointestinal tract, substantial differences in the bacterial species that inhabit oral cavity and intestinal tract have been noted. Previous research primarily attributed the differences to the influences of host environments and nutritional availabilities ("host habitat" effect). Our recent study indicated that, other than the host habitat effect, an existing microbial community could impose a selective pressure on incoming foreign bacterial species independent of host-mediated selection ("community selection" effect). In this study, we employed in vitro microbial floras representing microorganisms that inhabit the oral cavities and intestinal tract of mice in combination with Escherichia coli as a model intestinal bacterium and demonstrated that E. coli displays a striking community preference. It thrived when introduced into the intestinal microbial community and survived poorly in the microbial flora of foreign origin (oral community). A more detailed examination of this phenomenon showed that the oral community produced oxygen-free radicals in the presence of wild-type E. coli while mutants deficient in lipopolysaccharides (LPS) did not trigger significant production of these cell-damaging agents. Furthermore, mutants of E. coli defective in the oxidative stress response experienced a more drastic reduction in viability when cocultivated with the oral flora, while the exogenous addition of the antioxidant vitamin C was able to rescue it. We concluded that the oral-derived microbial community senses the E. coli LPS and kills the bacterium with oxygen-free radicals. This study reveals a new mechanism of community invasion resistance employed by established microflora to defend their domains.