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在低温导致可培养性丧失过程中,快速生长细菌海生拉恩氏菌的转录组反应。

Transcriptomic responses of the fast-growing bacterium Vibrio natriegens during cold-induced loss of culturability.

机构信息

Department of Agriculture and Biotechnology, Wenzhou Vocational College of Science and Technology (Wenzhou Academy of Agricultural Sciences), Wenzhou, 325006, Zhejiang, People's Republic of China.

Hangzhou Center for Disease Control and Prevention, Hangzhou, 310021, Zhejiang, People's Republic of China.

出版信息

Appl Microbiol Biotechnol. 2023 May;107(9):3009-3019. doi: 10.1007/s00253-023-12487-3. Epub 2023 Mar 25.

Abstract

Vibrio natriegens has massive biotechnological potential owing to its fast growth rate. However, this bacterium rapidly loses its culturability during low-temperature preservation (LTP), the reason for which is still unknown. To reveal the metabolic responses of V. natriegens during LTP, we analyzed and compared the transcriptome before and after 8 days of preservation at 4 or 25 °C (room-temperature preservation (RTP)) in liquid culture medium. Most genes exhibited significant transcriptional responses to LTP. Using gene set enrichment analysis, we compared the transcriptional responses of different V. natriegens Gene Ontology (GO) sets during LTP or RTP. The enrichment of the GO set "SOS response" during LTP, but not RTP, indicated the occurrence of DNA damage during LTP. The GO set "respiratory electron transport chain" was suppressed during LTP and RTP. Although the GO set "response to oxidative stress" was not significantly altered, we observed an increase in reactive oxygen species (ROS) during LTP, suggesting a relationship between ROS and cold-induced loss of culturability (CILC) in V. natriegens. The faster loss of culturability and accumulation of ROS in 20 mL compared to 100 mL of liquid culture medium further suggested a relationship between CILC and oxygen availability. Furthermore, we showed that the deletion of Na-translocating NADH-ubiquinone oxidoreductase, but not type-II NADH dehydrogenase, accelerated CILC and increased intracellular ROS levels in V. natriegens. These findings will help to understand the cause of CILC which may lead to improving the stability of V. natriegens at low temperatures.

摘要

海生盐单胞菌由于其快速的生长速度而具有巨大的生物技术潜力。然而,在低温保存(LTP)过程中,该细菌的可培养性迅速丧失,其原因尚不清楚。为了揭示海生盐单胞菌在 LTP 过程中的代谢反应,我们分析并比较了在 4 或 25°C(室温保存(RTP))下液体培养基中保存 8 天后的转录组。大多数基因对 LTP 表现出显著的转录响应。使用基因集富集分析,我们比较了不同海生盐单胞菌基因本体论(GO)集在 LTP 或 RTP 期间的转录响应。在 LTP 过程中而不是在 RTP 过程中富集的“SOS 反应”GO 集表明 DNA 损伤的发生。在 LTP 和 RTP 过程中,GO 集“呼吸电子传递链”被抑制。尽管“对氧化应激的反应”GO 集没有明显改变,但我们观察到 LTP 期间活性氧(ROS)的增加,表明 ROS 与海生盐单胞菌中冷诱导的可培养性丧失(CILC)之间存在关系。与 100 mL 液体培养基相比,在 20 mL 液体培养基中可培养性丧失更快且 ROS 积累更多,这进一步表明 CILC 与氧气供应之间存在关系。此外,我们表明 Na 转运 NADH-泛醌氧化还原酶的缺失,而不是 II 型 NADH 脱氢酶的缺失,加速了海生盐单胞菌的 CILC 并增加了细胞内 ROS 水平。这些发现将有助于理解 CILC 的原因,这可能导致提高海生盐单胞菌在低温下的稳定性。

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