环境胁迫下枯草芽孢杆菌的抗生素耐受性:物理障碍和诱导存活但不可培养的状态。

microLife Pub Date : 2022-01-01 DOI:10.1093/femsml/uqac010
Luiza P Morawska, Oscar P Kuipers
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引用次数: 0

摘要

细菌群落暴露于栖息地的快速变化中,会遇到不同形式的压力。微环境的波动条件驱动微生物产生多种应激反应以维持生长和分裂,如改变基因表达和改变细胞的生理机能。众所周知,这些保护系统可能产生不同的适应亚群,并间接影响细菌对抗菌素的易感性。本研究的重点是土壤细菌枯草芽孢杆菌对突然渗透变化的适应,包括短暂和持续的渗透上升。在这里,我们证明了预暴露于渗透胁迫引起的生理变化促进枯草芽孢杆菌进入静止状态,帮助它们在暴露于致命的抗生素浓度时存活。我们发现,当细胞暴露于氨基糖苷类抗生素卡那霉素时,对0.6 M NaCl的瞬时渗透上升的适应导致代谢率降低,抗生素介导的ROS产生降低。使用微流控平台结合延时显微镜,我们跟踪了荧光标记卡那霉素的摄取,并在单细胞水平上检查了不同预适应群体的代谢活性。微流控数据显示,在测试条件下,枯草芽孢杆菌通过进入非生长休眠状态来逃避卡那霉素的杀菌活性。结合单细胞研究和不同预适应培养的群体分析,我们证明了卡那霉素耐受的枯草芽孢杆菌细胞被困在一个有活力但不可培养(VBNC)的状态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Antibiotic tolerance in environmentally stressed <i>Bacillus subtilis</i>: physical barriers and induction of a viable but nonculturable state.

Antibiotic tolerance in environmentally stressed <i>Bacillus subtilis</i>: physical barriers and induction of a viable but nonculturable state.

Antibiotic tolerance in environmentally stressed <i>Bacillus subtilis</i>: physical barriers and induction of a viable but nonculturable state.

Antibiotic tolerance in environmentally stressed Bacillus subtilis: physical barriers and induction of a viable but nonculturable state.
Abstract Bacterial communities exposed to rapid changes in their habitat encounter different forms of stress. Fluctuating conditions of the microenvironment drive microorganisms to develop several stress responses to sustain growth and division, like altering gene expression and changing the cell's physiology. It is commonly known that these protection systems may give rise to differently adapted subpopulations and indirectly impact bacterial susceptibility to antimicrobials. This study focuses on the adaptation of a soil-dwelling bacterium, Bacillus subtilis, to sudden osmotic changes, including transient and sustained osmotic upshift. Here, we demonstrate that physiological changes caused by pre-exposure to osmotic stress facilitate B. subtilis' entry into a quiescent state, helping them survive when exposed to a lethal antibiotic concentration. We show that the adaptation to transient osmotic upshift with 0.6 M NaCl causes decreased metabolic rates and lowered antibiotic-mediated ROS production when cells were exposed to the aminoglycoside antibiotic kanamycin. Using a microfluidic platform combined with time-lapse microscopy, we followed the uptake of fluorescently labelled kanamycin and examined the metabolic activity of differently preadapted populations at a single-cell level. The microfluidics data revealed that under the conditions tested, B. subtilis escapes from the bactericidal activity of kanamycin by entering into a nongrowing dormant state. Combining single-cell studies and population-wide analysis of differently preadapted cultures, we demonstrate that kanamycin-tolerant B. subtilis cells are entrapped in a viable but nonculturable (VBNC) state.
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