Park Kyung-Je, Kang Min-Jin, Kim Songhee H, Lee Hyun-Jung, Lim Jae-Kyu, Choi Sang Ho, Park Soon-Jung, Lee Kyu-Ho
Department of Environmental Science, Hankuk University of Foreign Studies, Yongin, Kyunggi-Do 449-791, Korea.
J Bacteriol. 2004 Jun;186(11):3304-12. doi: 10.1128/JB.186.11.3304-3312.2004.
A gene homologous to rpoS was cloned from a fatal human pathogen, Vibrio vulnificus. The functional role of rpoS in V. vulnificus was accessed by using an rpoS knockout mutant strain. This mutant was impaired in terms of the ability to survive under oxidative stress, nutrient starvation, UV irradiation, or acidic conditions. The increased susceptibility of the V. vulnificus mutant in the exponential phase to H2O2 was attributed to the reduced activity of hydroperoxidase I (HPI). Although sigmaS synthesis was induced and HPI activity reached the maximal level in the stationary phase, the mutant in the stationary phase showed the same susceptibility to H2O2 as the wild-type strain in the stationary phase. In addition, HPII activity, which is known to be controlled by sigmaS in Escherichia coli, was not detectable in V. vulnificus strains under the conditions tested. The mutant in the exponential phase complemented with multiple copies of either the rpoS or katG gene of V. vulnificus recovered both resistance to H2O2 and HPI activity compared with the control strain. Expression of the katG gene encoding HPI in V. vulnificus was monitored by using a katG::luxAB transcriptional fusion. The expression of this gene was significantly reduced by deletion of sigmaS in both the early exponential and late stationary phases. Thus, sigmaS is necessary for increased synthesis and activity of HPI, and sigmaS is required for exponentially growing V. vulnificus to develop the ability to survive in the presence of H2O2.
从一种致命的人类病原体——创伤弧菌中克隆出了一个与rpoS同源的基因。通过使用rpoS基因敲除突变株来探究rpoS在创伤弧菌中的功能作用。该突变株在氧化应激、营养饥饿、紫外线照射或酸性条件下的生存能力受损。创伤弧菌突变株在指数生长期对H2O2的敏感性增加归因于氢过氧化物酶I(HPI)活性降低。尽管在稳定期诱导了sigmaS的合成且HPI活性达到最高水平,但稳定期的突变株对H2O2的敏感性与稳定期的野生型菌株相同。此外,在测试条件下,创伤弧菌菌株中未检测到已知在大肠杆菌中受sigmaS控制的HPII活性。与对照菌株相比,在指数生长期用创伤弧菌的rpoS或katG基因的多个拷贝进行互补的突变株恢复了对H2O2的抗性和HPI活性。通过使用katG::luxAB转录融合来监测创伤弧菌中编码HPI的katG基因的表达。在指数早期和稳定后期,sigmaS的缺失均显著降低了该基因的表达。因此,sigmaS对于增加HPI的合成和活性是必需的,并且sigmaS是指数生长的创伤弧菌在H2O2存在下发展生存能力所必需的。